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<front>
<journal-meta>
<journal-id journal-id-type="publisher-id">Front. Immunol.</journal-id>
<journal-title>Frontiers in Immunology</journal-title>
<abbrev-journal-title abbrev-type="pubmed">Front. Immunol.</abbrev-journal-title>
<issn pub-type="epub">1664-3224</issn>
<publisher>
<publisher-name>Frontiers Media S.A.</publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id pub-id-type="doi">10.3389/fimmu.2017.01262</article-id>
<article-categories>
<subj-group subj-group-type="heading">
<subject>Immunology</subject>
<subj-group>
<subject>Review</subject>
</subj-group>
</subj-group>
</article-categories>
<title-group>
<article-title>Polyfunctional CD4<sup>&#x0002B;</sup> T Cells As Targets for Tuberculosis Vaccination</article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author" corresp="yes">
<name><surname>Lewinsohn</surname> <given-names>Deborah A.</given-names></name>
<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
<xref ref-type="corresp" rid="cor1">&#x0002A;</xref>
<uri xlink:href="http://frontiersin.org/people/u/460208"/>
</contrib>
<contrib contrib-type="author">
<name><surname>Lewinsohn</surname> <given-names>David M.</given-names></name>
<xref ref-type="aff" rid="aff2"><sup>2</sup></xref>
<xref ref-type="aff" rid="aff3"><sup>3</sup></xref>
<uri xlink:href="http://frontiersin.org/people/u/482071"/>
</contrib>
<contrib contrib-type="author">
<name><surname>Scriba</surname> <given-names>Thomas J.</given-names></name>
<xref ref-type="aff" rid="aff4"><sup>4</sup></xref>
<uri xlink:href="http://frontiersin.org/people/u/467649"/>
</contrib>
</contrib-group>
<aff id="aff1"><sup>1</sup><institution>Division of Infectious Disease, Department of Pediatrics, Oregon Health and Science University</institution>, <addr-line>Portland, OR</addr-line>, <country>United States</country></aff>
<aff id="aff2"><sup>2</sup><institution>Pulmonary and Critical Care Medicine, Department of Medicine, Oregon Health and Science University</institution>, <addr-line>Portland, OR</addr-line>, <country>United States</country></aff>
<aff id="aff3"><sup>3</sup><institution>Department of Medicine, VA Portland Health Care System</institution>, <addr-line>Portland, OR</addr-line>, <country>United States</country></aff>
<aff id="aff4"><sup>4</sup><institution>South African Tuberculosis Vaccine Initiative (SATVI), Institute of Infectious Disease and Molecular Medicine (IDM) and Division of Immunology, Department of Pathology, University of Cape Town</institution>, <addr-line>Cape Town</addr-line>, <country>South Africa</country></aff>
<author-notes>
<fn fn-type="edited-by"><p>Edited by: Ulrich Emil Schaible, Forschungszentrum Borstel (LG), Germany</p></fn>
<fn fn-type="edited-by"><p>Reviewed by: Juraj Ivanyi, King&#x02019;s College London, United Kingdom; Camille Locht, Institut national de la sant&#x000E9; et de la recherche m&#x000E9;dicale (INSERM), France</p></fn>
<corresp content-type="corresp" id="cor1">&#x0002A;Correspondence: Deborah A. Lewinsohn, <email>lewinsde&#x00040;ohsu.edu</email></corresp>
<fn fn-type="other" id="fn002"><p>Specialty section: This article was submitted to Vaccines and Molecular Therapeutics, a section of the journal Frontiers in Immunology</p></fn>
</author-notes>
<pub-date pub-type="epub">
<day>05</day>
<month>10</month>
<year>2017</year>
</pub-date>
<pub-date pub-type="collection">
<year>2017</year>
</pub-date>
<volume>8</volume>
<elocation-id>1262</elocation-id>
<history>
<date date-type="received">
<day>14</day>
<month>07</month>
<year>2017</year>
</date>
<date date-type="accepted">
<day>21</day>
<month>09</month>
<year>2017</year>
</date>
</history>
<permissions>
<copyright-statement>Copyright &#x000A9; 2017 Lewinsohn, Lewinsohn and Scriba.</copyright-statement>
<copyright-year>2017</copyright-year>
<copyright-holder>Lewinsohn, Lewinsohn and Scriba</copyright-holder>
<license xlink:href="http://creativecommons.org/licenses/by/4.0/"><p>This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.</p></license>
</permissions>
<abstract>
<p>Tuberculosis (TB), caused by <italic>Mycobacterium tuberculosis</italic> (Mtb), remains a leading cause of morbidity and mortality worldwide, despite the widespread use of the only licensed vaccine, Bacille Calmette Guerin (BCG). Eradication of TB will require a more effective vaccine, yet evaluation of new vaccine candidates is hampered by lack of defined correlates of protection. Animal and human studies of intracellular pathogens have extensively evaluated polyfunctional CD4<sup>&#x0002B;</sup> T cells producing multiple pro-inflammatory cytokines (IFN-&#x003B3;, TNF-&#x003B1;, and IL-2) as a possible correlate of protection from infection and disease. In this study, we review the published literature that evaluates whether or not BCG and/or novel TB vaccine candidates induce polyfunctional CD4<sup>&#x0002B;</sup> T cells and if these T cell responses correlate with vaccine-mediated protection. Ample evidence suggests that BCG and several novel vaccine candidates evaluated in animal models and humans induce polyfunctional CD4<sup>&#x0002B;</sup> T cells. However, while a number of studies utilizing the mouse TB model support that polyfunctional CD4<sup>&#x0002B;</sup> T cells are associated with vaccine-induced protection, other studies in mouse and human infants demonstrate no correlation between these T cell responses and protection. We conclude that induction of polyfunctional CD4<sup>&#x0002B;</sup> T cells is certainly not sufficient and may not even be necessary to mediate protection and suggest that other functional attributes, such as additional effector functions, T cell differentiation state, tissue homing potential, or long-term survival capacity of the T cell may be equally or more important to promote protection. Thus, a correlate of protection for TB vaccine development remains elusive. Future studies should address polyfunctional CD4<sup>&#x0002B;</sup> T cells within the context of more comprehensive immunological signatures of protection that include other functions and phenotypes of T cells as well as the full spectrum of immune cells and mediators that participate in the immune response against Mtb.</p>
</abstract>
<kwd-group>
<kwd>T-cell immunity</kwd>
<kwd>CD4<sup>&#x0002B;</sup> T cells</kwd>
<kwd>vaccine-induced immunity</kwd>
<kwd>tuberculosis</kwd>
<kwd>vaccine</kwd>
<kwd>protective immunity</kwd>
<kwd>BCG</kwd>
<kwd>polyfunctional T cells</kwd>
</kwd-group>
<contract-sponsor id="cn01">Bill and Melinda Gates Foundation<named-content content-type="fundref-id">10.13039/100000865</named-content></contract-sponsor>
<counts>
<fig-count count="0"/>
<table-count count="5"/>
<equation-count count="0"/>
<ref-count count="94"/>
<page-count count="22"/>
<word-count count="17833"/>
</counts>
</article-meta>
</front>
<body>
<sec id="S1" sec-type="introduction">
<title>Introduction</title>
<p>Despite the widespread global use of the only licensed tuberculosis (TB) vaccine, Bacille Calmette Guerin (BCG), TB remains a significant cause of morbidity and mortality, with 10.4 million cases and 1.8 million deaths each year (<xref ref-type="bibr" rid="B1">1</xref>). The WHO End TB strategy cites that a new and more efficacious vaccine is one of the interventions required for worldwide elimination of TB by 2035 (<xref ref-type="bibr" rid="B2">2</xref>). Yet a new vaccine that improves upon the partial protection provided by BCG remains elusive (<xref ref-type="bibr" rid="B3">3</xref>). One of the significant challenges to rational TB vaccine development is lack of identified immune correlates of protection. The absence of bone fide correlates hampers both pre-clinical research as well as clinical trials (<xref ref-type="bibr" rid="B4">4</xref>). The Food and Drug Administration defines a correlate of protection as a laboratory parameter, which is associated with protection from the occurrence of clinical disease as shown after sufficient and controlled trials (<xref ref-type="bibr" rid="B5">5</xref>). Correlates of protection can be further divided into ones that are causally responsible for protection (mechanistic correlates of protection) or ones that are significantly correlated with, though not the cause of protection (non-mechanistic correlates of protection) (<xref ref-type="bibr" rid="B6">6</xref>). The search for correlates of protection in the TB vaccine field has generally focused on mechanistic correlates and in this regard, polyfunctional CD4<sup>&#x0002B;</sup> T cells, defined by the simultaneous co-expression of multiple pro-inflammatory cytokines (e.g., IFN-&#x003B3;, TNF-&#x003B1;, IL-2) on a single cell level, have garnered much attention (<xref ref-type="bibr" rid="B4">4</xref>). While both polyfunctional CD4<sup>&#x0002B;</sup> and CD8<sup>&#x0002B;</sup> T cells have been defined, the TB vaccine literature investigating polyfunctional T cells as a possible correlate of protection, has focused almost exclusively on CD4<sup>&#x0002B;</sup> T cells. Therefore, we limited our review to articles that referred to induction of IFN-&#x003B3;<sup>&#x0002B;</sup>TNF-&#x003B1;<sup>&#x0002B;</sup>IL-2<sup>&#x0002B;</sup> polyfunctional CD4<sup>&#x0002B;</sup> T cells in the context of TB vaccination and vaccine immunogenicity in pre-clinical and clinical studies and focused on reviewing the published evidence that polyfunctional CD4<sup>&#x0002B;</sup> T cells represent a mechanistic correlate of protection for TB vaccines.</p>
<p>With advances in multi-parameter flow cytometry to include seven or more parameters, in combination with intracellular cytokine staining (ICS) techniques, it became possible to evaluate the production of multiple cytokines simultaneously on a single cell basis. Polyfunctional CD4<sup>&#x0002B;</sup> T cells were defined as those cells producing two or more cytokines, and were first defined within the context of examination of vaccine-induced T cell responses (<xref ref-type="bibr" rid="B7">7</xref>). De Rosa et al. showed that vaccines to Hepatitis B virus, tetanus, and HIV induced antigen-specific T cell responses, which were functionally complex, differed from the antigen-specific T cell responses elicited by natural infection, and were underestimated when measured by IFN-&#x003B3; production alone. Furthermore, Bansal et al. demonstrated with an HIV vaccine that vaccines can elicit a more diverse array of T cells than natural infection and that vaccine dose and route can alter the cytokine profile and polyfunctionality of the T cells elicited (<xref ref-type="bibr" rid="B8">8</xref>). Furthermore, by varying the administration of the same vaccine, these authors illustrated that polyfunctional T cells possess a dynamic range that could be evaluated for correlates of protection in vaccine models.</p>
<p>Darrah et al. provided the first definitive evidence that the magnitude of the vaccine-induced polyfunctional CD4<sup>&#x0002B;</sup> T-cell response was highly correlated with protection from infection (<xref ref-type="bibr" rid="B9">9</xref>). Using a mouse model of <italic>Leishmania</italic> disease, various vaccines induced CD4<sup>&#x0002B;</sup> T cells displaying distinct cytokine profiles and different degrees of protection against disease upon <italic>L. major</italic> challenge. In this study, frequencies of MML-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells co-expressing IFN-&#x003B3;, TNF-&#x003B1;, and IL-2 were correlated closely with the various degrees of protection elicited by a panel of vaccines. By comparison, the total number of IFN-&#x003B3;-producing CD4<sup>&#x0002B;</sup> T cells, CD4<sup>&#x0002B;</sup> T cells producing IL-4 or IL-13, or the T regulatory cell response did not correlate with vaccine-induced protection. This study was also the first to show that BCG elicits polyfunctional CD4<sup>&#x0002B;</sup> T cells in both the murine TB model, in which BCG mediates a degree of control of bacterial replication after <italic>Mycobacterium tuberculosis</italic> (Mtb) challenge, and in humans (<xref ref-type="bibr" rid="B9">9</xref>), as discussed further below.</p>
<p>In humans, polyfunctional CD4<sup>&#x0002B;</sup> T cells have been studied with reference to severity of disease due to some intracellular infections [reviewed in Ref. (<xref ref-type="bibr" rid="B10">10</xref>)]. For example, slower progression to AIDS with HIV-2 than HIV-1 infection (<xref ref-type="bibr" rid="B11">11</xref>) and control of HIV-1 without anti-retroviral medications (<xref ref-type="bibr" rid="B12">12</xref>) are associated with high frequency polyfunctional HIV Gag-specific CD4<sup>&#x0002B;</sup> T cells. By comparison, studies of polyfunctional CD4<sup>&#x0002B;</sup> T cells in relationship to host containment of Mtb infection are contradictory. On the one hand, stronger mycobacteria-specific polyfunctional CD4<sup>&#x0002B;</sup> T cell responses are found in adults with sputum smears negative for acid fast bacilli (AFB) than those with AFB smear positive TB (<xref ref-type="bibr" rid="B13">13</xref>), and in adults with latent Mtb infection (LTBI) than in those with TB (<xref ref-type="bibr" rid="B14">14</xref>, <xref ref-type="bibr" rid="B15">15</xref>). Moreover, successful TB treatment, which rapidly reduces the bacterial load, is associated with marked increases in proportions of polyfunctional CD4<sup>&#x0002B;</sup> T cells (<xref ref-type="bibr" rid="B13">13</xref>). On the other hand, other studies demonstrate that polyfunctional CD4<sup>&#x0002B;</sup> T cell responses positively correlate with increased bacillary load. For example, there are also studies that showed stronger mycobacteria-specific polyfunctional CD4<sup>&#x0002B;</sup> T cell responses in adults with TB than those with LTBI (<xref ref-type="bibr" rid="B16">16</xref>, <xref ref-type="bibr" rid="B17">17</xref>) and in adults with TB than in those in healthy household contacts of adults with TB (<xref ref-type="bibr" rid="B18">18</xref>). These contradictory results highlight an important limitation of such correlative studies, which is that it is not possible to discern whether or not polyfunctionality of CD4<sup>&#x0002B;</sup> T cells plays a causal role in immune control of the pathogen, or simply reflects the underlying bacterial burden.</p>
<p>The mechanism(s) by which polyfunctional CD4<sup>&#x0002B;</sup> T cells induced by vaccines or natural infection may be associated with protection from infection and/or disease have not been defined. It is certainly conceivable that cells expressing multiple effector functions may be more effective in controlling infection than those producing a single pro-inflammatory cytokine. For example, IFN-&#x003B3; and TNF-&#x003B1; act synergistically to enhance the ability of macrophages to contain <italic>L. major</italic> infection (<xref ref-type="bibr" rid="B19">19</xref>, <xref ref-type="bibr" rid="B20">20</xref>), which in turn is associated with enhanced control of disease by the combination of IFN-&#x003B3; and TNF-&#x003B1; in the murine model (<xref ref-type="bibr" rid="B20">20</xref>). Similarly, IFN-&#x003B3; and TNF-&#x003B1; synergistically inhibit Mtb replication within murine macrophage cell lines (<xref ref-type="bibr" rid="B21">21</xref>). As first defined in the murine <italic>Leishmania</italic> model, among vaccine-induced CD4<sup>&#x0002B;</sup> T cells producing IFN-&#x003B3;, TNF-&#x003B1;, and/or IL-2, cells producing all three cytokines (3<sup>&#x0002B;</sup> cells) produce more cytokine on a per cell basis [as defined by mean fluorescence intensity (MFI)], than do those that produce two cytokines (2<sup>&#x0002B;</sup> cells), which in turn produce more cytokine than cells producing a single cytokine (1<sup>&#x0002B;</sup> cells) (<xref ref-type="bibr" rid="B9">9</xref>). Moreover, Darrah et al. defined integrated MFI (iMFI), a metric that combines the frequency of each cytokine-producing CD4<sup>&#x0002B;</sup> T cell response with its associated MFI and showed that the iMFI for each of IFN-&#x003B3;, TNF-&#x003B1;, or IL-2, also correlated with the degree of vaccine-induced protection. This analysis is consistent with the interpretation that it may be the high potency of multifunctional T cells to produce cytokines on a per cell basis that is associated with vaccine-induced protection. Finally, Seder et al. proposed a linear differentiation model for CD4<sup>&#x0002B;</sup> T cells based upon their cytokine profile (<xref ref-type="bibr" rid="B22">22</xref>). In this model, na&#x000EF;ve CD4<sup>&#x0002B;</sup> T cells, upon activation with antigen, first acquire the capacity to secrete TNF-&#x003B1; or IL-2, followed by the capacity to produce both cytokines and finally, upon further differentiation, additionally produce IFN-&#x003B3; as well. These early lineage T cells also express CCR7, consistent with central memory T cells (T<sub>CM</sub> cells). Subsequently, with continued antigenic stimulation these polyfunctional T cells lose CCR7 expression and capacity to secrete TNF-&#x003B1; or IL-2, and finally produce only IFN-&#x003B3; in the highly differentiated, terminal effector stage. Thus, according to this model, protective potential of a polyfunctional CD4<sup>&#x0002B;</sup> T cell producing IFN-&#x003B3;, TNF-&#x003B1;, and IL-2 may be associated with its degree of differentiation and simultaneous capacity for memory and for effector function.</p>
</sec>
<sec id="S2">
<title>Polyfunctional T Cells as a Biologically Plausible Candidate for a Mechanistic Correlate of Protection in TB</title>
<p>The literature regarding the possible role of polyfunctional CD4<sup>&#x0002B;</sup> T cells in mediating vaccine-induced protection for TB has primarily investigated those cells co-producing IFN-&#x003B3;, TNF-&#x003B1;, and IL-2, hereafter, we will refer to as &#x0201C;polyfunctional CD4<sup>&#x0002B;</sup> T cells.&#x0201D; There is substantial evidence derived from study of murine TB models and humans that all three of these cytokines are necessary for the control of Mtb infection.</p>
<p>Essential roles in host defense for IFN-&#x003B3;, and for CD4<sup>&#x0002B;</sup> T cells that produce IFN-&#x003B3;, were initially defined in the murine TB model using IFN-&#x003B3;-deficient mice (<xref ref-type="bibr" rid="B23">23</xref>, <xref ref-type="bibr" rid="B24">24</xref>), CD4<sup>&#x0002B;</sup> T cell deficient mice, and adoptive transfer of CD4<sup>&#x0002B;</sup> T cells in the murine TB model [reviewed in Ref. (<xref ref-type="bibr" rid="B25">25</xref>)]. More recently, Green et al. showed that CD4<sup>&#x0002B;</sup> T cells are important as a source of IFN-&#x003B3; mediating protection from Mtb, by demonstrating that IFN-&#x003B3; production from all other cellular sources than CD4<sup>&#x0002B;</sup> T cells was insufficient in controlling chronic infection and maintaining survival and that CD4<sup>&#x0002B;</sup> T cell derived IFN-&#x003B3; promoted CD8<sup>&#x0002B;</sup> T cell responses (<xref ref-type="bibr" rid="B26">26</xref>). Consistent with this, humans deficient in IL-12 receptor expression (<xref ref-type="bibr" rid="B27">27</xref>), IFN-&#x003B3; receptor expression, or IFN-&#x003B3; signaling (<xref ref-type="bibr" rid="B28">28</xref>) are more susceptible to mycobacterial disease. However, it is important to note that these deficiencies are not T cell-specific and thus the precise role of T cell-derived IFN-&#x003B3; vs other sources of IFN-&#x003B3; in humans remains unresolved. At least in the murine TB model, a mechanism by which IFN-&#x003B3; may mediate its effector function is through activation of macrophages, which in turn inhibit Mtb growth <italic>via</italic> induction of iNOS and autophagy [reviewed in Ref. (<xref ref-type="bibr" rid="B29">29</xref>)].</p>
<p>TNF-&#x003B1; is also essential for TB host defense. Mice deficient in TNF receptor or TNF-&#x003B1; are highly susceptible to Mtb infection (<xref ref-type="bibr" rid="B30">30</xref>, <xref ref-type="bibr" rid="B31">31</xref>). There are multiple cell types that produce TNF-&#x003B1;, including innate immune cells, epithelial cells, endothelial cells, and fibroblasts. Early control of Mtb infection in the mouse model, prior to the acquisition of adaptive immunity, is primarily mediated by TNF-&#x003B1; derived from macrophages (<xref ref-type="bibr" rid="B32">32</xref>). Conversely, mice deficient for TNF-&#x003B1; expression in T cells poorly control chronic infection (<xref ref-type="bibr" rid="B32">32</xref>). In humans, pharmacological blockade of TNF-&#x003B1;, used for treatment of rheumatologic disorders, increases susceptibility to mycobacterial disease (<xref ref-type="bibr" rid="B33">33</xref>, <xref ref-type="bibr" rid="B34">34</xref>). As demonstrated in both the murine TB model and in humans, TNF-&#x003B1; promotes the formation of mature granulomas and like IFN-&#x003B3;, also activates infected macrophages, which, at least in mice, contain infection <italic>via</italic> induction of iNOS and autophagy [reviewed in Ref. (<xref ref-type="bibr" rid="B29">29</xref>)].</p>
<p>IL-2 induces proliferation, promotes the survival of TCR-activated T cells [reviewed in Ref. (<xref ref-type="bibr" rid="B35">35</xref>)] and promotes the development of fully competent memory T cells during primary infection (<xref ref-type="bibr" rid="B36">36</xref>). Therefore, IL-2 is generally assumed to aid TB host defense through supporting the expansion and maintenance of the T cell response [reviewed in Ref. (<xref ref-type="bibr" rid="B35">35</xref>)]. IL-2 also has a role in T cell tolerance, through its role in maintaining CD4<sup>&#x0002B;</sup>CD25<sup>&#x0002B;</sup> regulatory T cells. In support of this, IL-2 and IL-2R deficient mice develop early severe autoimmune disease [reviewed in Ref. (<xref ref-type="bibr" rid="B35">35</xref>)]. Consequently, these mice cannot be utilized to determine the role of IL-2 in TB host defense as has been done with IFN-&#x003B3; and TNF-&#x003B1;. Nonetheless, in the murine TB model, induction of IL-2-producing CD4<sup>&#x0002B;</sup> T cells is associated with vaccine-induced protection to Mtb and loss of IL-2-producing CD4<sup>&#x0002B;</sup> T cells is associated with loss of protection [reviewed in Ref. (<xref ref-type="bibr" rid="B37">37</xref>)]. In humans, decreased proportions of polyfunctional CD4<sup>&#x0002B;</sup> T cells in individuals with AFB smear positive TB compared to those with AFB smear negative TB, or in those with TB disease as compared to those with LTBI, was associated with decreases in proportions of total IL-2 producing T cells (<xref ref-type="bibr" rid="B13">13</xref>, <xref ref-type="bibr" rid="B14">14</xref>).</p>
</sec>
<sec id="S3">
<title>TB Vaccines Induce Polyfunctional T Cells in Animal Models</title>
<p>BCG and novel TB vaccine candidates utilizing various antigens and vaccine platforms induce polyfunctional CD4<sup>&#x0002B;</sup> T cells in murine, bovine, and non-human primate (NHP) TB models. These T cell populations possess attributes, which are critical for mediating vaccine-mediated immunity in that they can traffic to the lung and include memory T cell populations that persist in the vaccinated host.</p>
<sec id="S3-1">
<title>BCG and Other Live Mycobacterial Vaccines Elicit Polyfunctional CD4<sup>&#x0002B;</sup> T Cells</title>
<p>As the only licensed TB vaccine and in light of its demonstrated record of partial efficacy, BCG is often used as a control vaccine in the mouse model of TB vaccination (Table <xref ref-type="table" rid="T1">1</xref>). Several studies have shown that BCG induces polyfunctional mycobacteria-specific CD4<sup>&#x0002B;</sup> T cells detected among lung (<xref ref-type="bibr" rid="B9">9</xref>, <xref ref-type="bibr" rid="B38">38</xref>) and splenic (<xref ref-type="bibr" rid="B9">9</xref>, <xref ref-type="bibr" rid="B39">39</xref>&#x02013;<xref ref-type="bibr" rid="B44">44</xref>) lymphocyte populations (Table <xref ref-type="table" rid="T1">1</xref>). Darrah et al. found that polyfunctional mycobacterial CD4<sup>&#x0002B;</sup> T cells produced more cytokine on a per cell basis than do those producing two or one cytokines, similar to <italic>Leishmania</italic>-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells (<xref ref-type="bibr" rid="B9">9</xref>). In the murine TB model, these T cell responses constitute minor (<xref ref-type="bibr" rid="B38">38</xref>, <xref ref-type="bibr" rid="B39">39</xref>, <xref ref-type="bibr" rid="B42">42</xref>, <xref ref-type="bibr" rid="B44">44</xref>), predominant (<xref ref-type="bibr" rid="B43">43</xref>), or major (<xref ref-type="bibr" rid="B9">9</xref>) subsets within the first 2&#x02013;4 months after immunization. In addition, polyfunctional CD4<sup>&#x0002B;</sup> T cells have been detected among CD44<sup>&#x0002B;</sup> memory T cell populations as early as 3&#x02009;weeks after vaccination (<xref ref-type="bibr" rid="B40">40</xref>) and persist as a major subset more than 40&#x02009;weeks after vaccination (<xref ref-type="bibr" rid="B38">38</xref>). By contrast, though detecting polyfunctional CD4<sup>&#x0002B;</sup> T cells as a predominant T cell population 2 and 8&#x02009;months after BCG, Derrick et al. were unable to detect these cells 14&#x02009;months after immunization, suggesting that this subset may not persist long-term (<xref ref-type="bibr" rid="B43">43</xref>). These differences in persistence of polyfunctional CD4<sup>&#x0002B;</sup> T cells and wide phenotypic spectrum in cytokine-producing CD4<sup>&#x0002B;</sup> T cells are not readily reconciled between studies. However, differences in the experimental protocols utilized, such as differences in BCG strain and/or delivery method, mouse strain and/or cell populations studied and the nature and dose of the Mtb challenge, may underlie the inconsistency in findings. Finally, BCG induces polyfunctional T cells in cattle (<xref ref-type="bibr" rid="B45">45</xref>) and rhesus macaque monkeys of Chinese origin (<italic>Macaca mulatta</italic>) (<xref ref-type="bibr" rid="B46">46</xref>). Maggioli et al. showed that BCG induced mycobacteria-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells as a major cytokine expressing subset in peripheral blood mononuclear cells (PBMC) obtained from calves 6&#x02009;weeks after BCG and cultured with antigen for 2&#x02009;weeks <italic>in vitro</italic> (<xref ref-type="bibr" rid="B45">45</xref>). These T cells expressed phenotypic markers consistent with memory T cells. Finally, White et al. showed that BCG delivered by the aerosol route induced PPD-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells as a major subset in both PBMC and bronchoalveolar lavage (BAL), fluid of Chinese rhesus macaque monkeys 8&#x02009;weeks after BCG administration (<xref ref-type="bibr" rid="B46">46</xref>).</p>
<table-wrap position="float" id="T1">
<label>Table 1</label>
<caption><p>BCG induces polyfunctional CD4<sup>&#x0002B;</sup> T cells in animal models of TB.</p></caption>
<table frame="hsides" rules="groups">
<thead>
<tr>
<th valign="top" align="left">BCG strain</th>
<th valign="top" align="left">Study design</th>
<th valign="top" align="left">IA</th>
<th valign="top" align="left">Conclusions</th>
<th valign="top" align="left">Reference</th>
</tr>
</thead>
<tbody>
<tr>
<td align="left" valign="top" rowspan="3">SSI</td>
<td align="left" valign="top">C57BL/6 mice</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells</td>
<td align="left" valign="top" rowspan="3">BCG induced a major subset in lung and spleen at 4&#x02009;months</td>
<td align="left" valign="top" rowspan="3">Darrah et al. (<xref ref-type="bibr" rid="B9">9</xref>)</td>
</tr>
<tr>
<td align="left" valign="top">BCG i.m. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cellular source</italic>: spleen and lung</td>
</tr>
<tr>
<td align="left" valign="top"><italic>IA</italic>: (&#x0002B;4 months)</td>
<td align="left" valign="top"><italic>Antigen(s)</italic>: PPD</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top" rowspan="3">China</td>
<td align="left" valign="top">C57BL/6 mice</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells</td>
<td align="left" valign="top" rowspan="3">BCG induced a minor subset in spleen at 12 and 32&#x02009;weeks</td>
<td align="left" valign="top" rowspan="3">Yuan et al. (<xref ref-type="bibr" rid="B44">44</xref>)</td>
</tr>
<tr>
<td align="left" valign="top">BCG s.c. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cellular source</italic>: spleen</td>
</tr>
<tr>
<td align="left" valign="top"><italic>IA</italic>: (&#x0002B;12, &#x0002B;32 weeks)</td>
<td align="left" valign="top"><italic>Antigen(s)</italic>: Ag85B (p.p.); HspX (p.p.); PPD</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top" rowspan="3">SSI</td>
<td align="left" valign="top">Balb/c mice</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells</td>
<td align="left" valign="top" rowspan="3">BCG induced a minor subset in spleen at 13 and 22&#x02009;weeks</td>
<td align="left" valign="top" rowspan="3">Tchilian et al. (<xref ref-type="bibr" rid="B42">42</xref>)</td>
</tr>
<tr>
<td align="left" valign="top">BCG s.c. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cellular source</italic>: spleen</td>
</tr>
<tr>
<td align="left" valign="top"><italic>IA</italic>: (&#x0002B;13, &#x0002B;22 weeks)</td>
<td align="left" valign="top"><italic>Antigen(s)</italic>: PPD; Ag85A (p.p.)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top" rowspan="3">Pasteur</td>
<td align="left" valign="top">C57BL/6 mice</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells</td>
<td align="left" valign="top" rowspan="3">BCG induced a predominant subset in spleen at 2 and 8&#x02009;months, not detected at 14&#x02009;months</td>
<td align="left" valign="top" rowspan="3">Derrick et al. (<xref ref-type="bibr" rid="B43">43</xref>)</td>
</tr>
<tr>
<td align="left" valign="top">BCG s.c. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cellular source</italic>: spleen</td>
</tr>
<tr>
<td align="left" valign="top"><italic>IA</italic>: (&#x0002B;2, &#x0002B;8, &#x0002B;14 months)</td>
<td align="left" valign="top"><italic>Antigen(s)</italic>: BCG</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top" rowspan="3">Pasteur</td>
<td align="left" valign="top">Balb/c mice</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells</td>
<td align="left" valign="top" rowspan="3">BCG induced a minor subset in spleen at 14&#x02009;weeks</td>
<td align="left" valign="top" rowspan="3">Forbes et al. (<xref ref-type="bibr" rid="B39">39</xref>)</td>
</tr>
<tr>
<td align="left" valign="top">BCG s.c. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cellular source</italic>: spleen and lung</td>
</tr>
<tr>
<td align="left" valign="top"><italic>IA</italic>: (&#x0002B;14 weeks)</td>
<td align="left" valign="top"><italic>Antigen(s)</italic>: PPD; Ag85A (p.p.)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top" rowspan="3">SSI</td>
<td align="left" valign="top">CB6F1</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup>CD44<sup>hi</sup> 3<sup>&#x0002B;</sup> cells</td>
<td align="left" valign="top" rowspan="3">BCG induced TB10.4- but not Ag85B-specific memory T cells in spleen after 3&#x02009;weeks</td>
<td align="left" valign="top" rowspan="3">Elvang et al. (<xref ref-type="bibr" rid="B40">40</xref>)</td>
</tr>
<tr>
<td align="left" valign="top">BCG s.c. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cellular source</italic>: spleen</td>
</tr>
<tr>
<td align="left" valign="top"><italic>IA</italic>: (&#x0002B;3 weeks)</td>
<td align="left" valign="top"><italic>Antigen(s)</italic>: rTB10.4; rAg85B</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top" rowspan="3">SSI</td>
<td align="left" valign="top">C57BL/6 mice</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup>CD44<sup>hi</sup> 3<sup>&#x0002B;</sup> cells</td>
<td align="left" valign="top" rowspan="3">BCG induced a minor subset of memory T cells in lung and spleen at 10&#x02009;weeks</td>
<td align="left" valign="top" rowspan="3">Lindenstrom et al. (<xref ref-type="bibr" rid="B38">38</xref>)</td>
</tr>
<tr>
<td align="left" valign="top">BCG s.c. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cellular source</italic>: lung and spleen</td>
</tr>
<tr>
<td align="left" valign="top"><italic>IA</italic>: (&#x0002B;10 weeks)</td>
<td align="left" valign="top"><italic>Antigen(s)</italic>: PPD</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top" rowspan="3">SSI</td>
<td align="left" valign="top">C57BL/6 mice</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup>CD44<sup>hi</sup> 3<sup>&#x0002B;</sup> cells</td>
<td align="left" valign="top" rowspan="3">BCG induced a major subset of memory T cells in spleen after 40&#x02009;weeks</td>
<td align="left" valign="top" rowspan="3">Lindenstrom et al. (<xref ref-type="bibr" rid="B41">41</xref>)</td>
</tr>
<tr>
<td align="left" valign="top">BCG s.c. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cellular source</italic>: spleen</td>
</tr>
<tr>
<td align="left" valign="top"><italic>IA</italic>: (&#x0003E;40 weeks)</td>
<td align="left" valign="top"><italic>Antigen(s)</italic>: PPD</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top" rowspan="3">SSI</td>
<td align="left" valign="top">Holstein steers</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD45RO<sup>&#x0002B;</sup> CCR7<sup>&#x0002B;</sup> CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells after 2 weeks <italic>in vitro</italic> culture</td>
<td align="left" valign="top" rowspan="3">After 2 weeks of <italic>in vitro</italic> culture, a major subset of memory T cells was identified 6 weeks after BCG</td>
<td align="left" valign="top" rowspan="3">Maggioli et al. (<xref ref-type="bibr" rid="B45">45</xref>)</td>
</tr>
<tr>
<td align="left" valign="top">BCG s.c. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cellular source</italic>: PBMC</td>
</tr>
<tr>
<td align="left" valign="top"><italic>IA</italic>: (&#x0002B;6 weeks)</td>
<td align="left" valign="top"><italic>Antigen(s)</italic>: rAg85A; rTB10.4</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top" rowspan="3">SSI</td>
<td align="left" valign="top"><italic>Macaca mulatta</italic></td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells</td>
<td align="left" valign="top" rowspan="3">BCG induced a major subset of T cells in PBMC and lung (BAL) after 8 weeks</td>
<td align="left" valign="top" rowspan="3">White et al. (<xref ref-type="bibr" rid="B46">46</xref>)</td>
</tr>
<tr>
<td align="left" valign="top">BCG aerosol (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cellular source</italic>: PBMC; BAL</td>
</tr>
<tr>
<td align="left" valign="top"><italic>IA</italic>: (&#x0002B;8 weeks)</td>
<td align="left" valign="top"><italic>Antigen(s)</italic>: PPD</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<p><italic>SSI, Staten Serum Institute; i.m., intramuscular; s.c., subcutaneous; i.d., intradermal; CB6F1, C57BL/6 X Balb/c; 3<sup>&#x0002B;</sup>, IFN-&#x003B3;<sup>&#x0002B;</sup>TNF-&#x003B1;<sup>&#x0002B;</sup>IL-2<sup>&#x0002B;</sup>; PBMC, peripheral blood mononuclear cells; BAL, bronchoalveolar lavage; p.p., peptide pool; BCG, Bacille Calmette Guerin; TB, tuberculosis; IA, immune assay</italic>.</p>
<p><italic>Major subset&#x02009;&#x0003D;&#x02009;subset that constitutes &#x0003E;50% of the total cytokine-producing cells; minor subset&#x02009;&#x0003D;&#x02009;subset that constitutes &#x0003C;20% of the total cytokine-producing cells; predominant subset&#x02009;&#x0003D;&#x02009;subset that constitutes 20&#x02013;50% of the total cytokine-producing cells</italic>.</p>
</table-wrap-foot>
</table-wrap>
<p>Similarly, recombinant BCG constructs (<xref ref-type="bibr" rid="B42">42</xref>, <xref ref-type="bibr" rid="B44">44</xref>) induce polyfunctional CD4<sup>&#x0002B;</sup> T cell responses in mice (Table <xref ref-type="table" rid="T2">2</xref>). Yuan et al. compared BCG overexpressing Ag85B and HspX (rBCG:XB) to non-recombinant BCG and demonstrated that rBCG:XB elicited comparable PPD- and Ag85B-specific and stronger HspX-specific polyfunctional T cell responses 12 and 32&#x02009;weeks after vaccination (<xref ref-type="bibr" rid="B44">44</xref>). Comparing a recombinant BCG expressing membrane-perforating listerolysin (with the rationale of promoting CD8<sup>&#x0002B;</sup> T cell responses from cytosolic antigens) and deficient in urease C (&#x00394;ureC <italic>hly</italic><sup>&#x0002B;</sup>, VPM1002), Tchilian et al. demonstrated low-frequency splenic PPD- and Ag85A-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells, comparable to those induced by BCG, 13 and 22&#x02009;weeks after immunization (<xref ref-type="bibr" rid="B42">42</xref>). Maggioli et al. showed that vaccination with a cocktail of four distinct BCG deletion mutants (&#x00394;fdr8, &#x00394;leuCD, &#x00394;pks16, &#x00394;mmaA2, and &#x00394;metA) induced mycobacteria-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells in 2 weeks cultures of PBMC from bovine calves 6&#x02009;weeks after vaccination. These responses were comparable to those induced by non-recombinant BCG (<xref ref-type="bibr" rid="B45">45</xref>).</p>
<table-wrap position="float" id="T2">
<label>Table 2</label>
<caption><p>TB vaccines induce polyfunctional CD4<sup>&#x0002B;</sup> T cells in animal models of TB.</p></caption>
<table frame="hsides" rules="groups">
<thead>
<tr>
<th valign="top" align="left">TB vaccine</th>
<th valign="top" align="left">Study design</th>
<th valign="top" align="left">IA</th>
<th valign="top" align="left">3<sup>&#x0002B;</sup> cells/protection<xref ref-type="table-fn" rid="tfn1"><sup>a</sup></xref></th>
<th valign="top" align="left">Conclusions</th>
<th valign="top" align="left">Reference</th>
</tr>
</thead>
<tbody>
<tr>
<td align="left" valign="top">BCG (SSI)</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: C57BL/6<break/><italic>Immunization</italic>: BCG i.m: (&#x0002B;0)<break/><italic>Challenge</italic>: Mtb Erdman aerosol (&#x0002B;3 months)<break/><italic>Post-challenge</italic>: lung and spleen CFU (&#x0002B;1 month)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen and lung<break/><italic>Antigen(s)</italic>: PPD<break/><italic>Pre-challenge</italic>: (&#x0002B;4 months)</td>
<td align="left" valign="top">&#x0002B;<break/>BCG induced 3<sup>&#x0002B;</sup> memory T cells and protection in lung and spleen as compared to na&#x000EF;ve mice</td>
<td align="left" valign="top">BCG induced a major subset in lung and spleen at 4&#x02009;months. Correlation of pre-challenge 3<sup>&#x0002B;</sup> T cell frequencies with protection with BCG vs na&#x000EF;ve mice</td>
<td align="left" valign="top">Darrah et al. (<xref ref-type="bibr" rid="B9">9</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">rBCG:XB<break/>BCG (China)</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: C57BL/6 mice<break/><italic>Immunization</italic>: rBCG:XB s.c. vs BCG s.c: (&#x0002B;0)<break/><italic>Challenge</italic>: Mtb H37Rv i.n. (&#x0002B;12 weeks)<break/><italic>Post-challenge</italic>: lung and spleen CFU (&#x0002B;4, &#x0002B;10, &#x0002B;20 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen<break/><italic>Antigen(s)</italic>: Ag85 (p.p.); HspX (p.p.); PPD<break/><italic>Pre-challenge</italic>: (&#x0002B;12, &#x0002B;32 weeks)</td>
<td align="left" valign="top">&#x0002B;&#x0002B;<break/>rBCG:XB vs BCG: 1 log protection in spleen and lung</td>
<td align="left" valign="top">rBCG:XB induced more HspX-specific 3<sup>&#x0002B;</sup> T cells than BCG, which correlated with greater protection in lung and spleen</td>
<td align="left" valign="top">Yuan et al. (<xref ref-type="bibr" rid="B44">44</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">VPM1002<break/>BCG (SSI)<break/>MVA85A</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: Balb/c mice<break/><italic>Immunization</italic>: BCG s.c. (&#x0002B;0) vs VPM1002 s.c. (&#x0002B;0) vs BCG s.c. (&#x0002B;0)/MVA85A i.d. (&#x0002B;10 weeks) vs VPM1002 s.c. (&#x0002B;0)/MVA85A i.d. (&#x0002B;10 weeks)<break/><italic>Challenge</italic>: Mtb H37Rv aerosol (&#x0002B;14 weeks)<break/><italic>Post-challenge</italic>: lung and Spleen CFU (&#x0002B;12 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen<break/><italic>Antigen(s)</italic>: PPD; Ag85A (p.p.)<break/><italic>Pre-challenge</italic>: (&#x0002B;13, &#x0002B;22 weeks)</td>
<td align="left" valign="top">&#x02013;<break/><italic>3<sup>&#x0002B;</sup> T cell response</italic>: BCG/MVA85A&#x02009;&#x0003E;&#x02009;VPM1002/MVA85A&#x02009;&#x0003E;&#x0003E;&#x02009;BCG or VPM1002<break/><italic>Protection</italic>: VPM1002 or VPM1002/MVA85A&#x02009;&#x0003E;&#x02009;BCG or BCG/MVA85A</td>
<td align="left" valign="top">BCG and VPM1002 induced a minor subset of 3<sup>&#x0002B;</sup> T cells. MVA85A boost to either BCG or VPM1002 induced 3<sup>&#x0002B;</sup> T cells. The 3<sup>&#x0002B;</sup> T cell response did not correlate with protection</td>
<td align="left" valign="top">Tchilian et al. (<xref ref-type="bibr" rid="B42">42</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">E6-85: DDA/MPL<break/>AdE6-85<break/>pVax6-85<break/>BCG (Pasteur)</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: C57BL/6<break/><italic>Immunization</italic>: E6-85 in DDA/MPL s.c. (&#x0002B;0, &#x0002B;2, &#x0002B;4 weeks) vs AdE6-85 i.m. (&#x0002B;0, &#x0002B;1 month) vs pVaxE6-85 i.m. (&#x0002B;0, &#x0002B;3, &#x0002B;6 weeks) vs BCG s.c. (&#x0002B;0); vs BCG mixed with E6-85 in DDA/MPL s.c. (&#x0002B;0, &#x0002B;2, &#x0002B;4 weeks)<break/><italic>Challenge</italic>: Mtb Erdman aerosol (&#x0002B;2, &#x0002B;8, &#x0002B;14 months)<break/><italic>Post-challenge</italic>: lung and spleen CFU (&#x0002B;1 month)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen<break/><italic>Antigen(s)</italic>: BCG<break/><italic>Pre-challenge</italic>: (&#x0002B;2, &#x0002B;8, &#x0002B;14 months)</td>
<td align="left" valign="top">&#x0002B;&#x0002B;&#x0002B;<break/>The hierarchy of 3<sup>&#x0002B;</sup> T cell frequencies correlated with that of protection in lung&#x02009;&#x0003E;&#x02009;spleen at 14&#x02009;months</td>
<td align="left" valign="top">Strong correlation between the 3<sup>&#x0002B;</sup> T cell frequency and degree of protection induced by several vaccine regimens</td>
<td align="left" valign="top">Derrick et al. (<xref ref-type="bibr" rid="B43">43</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (Pasteur)<break/>Ad85A</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: Balb/c<break/><italic>Immunization</italic>: BCG s.c. (&#x0002B;0)/Ad85A i.d. (&#x0002B;10 weeks); vs BCG s.c. (&#x0002B;0)/Ad85A i.n. (&#x0002B;10 weeks)<break/><italic>Challenge</italic>: Mtb Erdman aerosol (&#x0002B;14 weeks)<break/><italic>Post-challenge</italic>: lung and spleen CFU (&#x0002B;6 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen and lung<break/><italic>Antigen(s)</italic>: PPD; Ag85A (p.p.)<break/><italic>Pre-challenge</italic>: (&#x0002B;14 weeks)</td>
<td align="left" valign="top">&#x0002B;/&#x02212;<break/>Ad85A i.n. boost induced more 3<sup>&#x0002B;</sup> T cells and more protection in lung than Ad85A i.d. boost. However, Ad85A i.d. boost induced more 3<sup>&#x0002B;</sup> T cells in spleen than Ad85A boost</td>
<td align="left" valign="top">Boosting i.d. but not i.n. induced Ag85A-specific 3<sup>&#x0002B;</sup> T cells as a predominant subset in spleen. Boosting i.n. but not i.d. induced Ag85A-specific 3<sup>&#x0002B;</sup> T cells in lung. Lung, not splenic 3<sup>&#x0002B;</sup> T cells correlated with protection in the lung</td>
<td align="left" valign="top">Forbes et al. (<xref ref-type="bibr" rid="B39">39</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">H4:CAF01<break/>Ad-H4<break/>BCG (SSI)</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: CB6F1<break/><italic>Immunization</italic>: Ad-H4 s.c. (&#x0002B;0) vs H4 in CAF01 s.c. (&#x0002B;0, &#x0002B;2 weeks) vs H4 in CAF01 s.c. (&#x0002B;0)/Ad-H4 (&#x0002B;2 weeks) vs BCG s.c. (&#x0002B;0)<break/><italic>Challenge</italic>: Mtb Erdman aerosol (&#x0002B;8 weeks)<break/><italic>Post-challenge</italic>: lung and spleen CFU (&#x0002B;6 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup>CD44<sup>hi</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen<break/><italic>Antigen(s)</italic>: TB10.4 (p.p.); Ag85B (p.p.)<break/><italic>Pre-challenge</italic>: (&#x0002B;3 weeks)</td>
<td align="left" valign="top">&#x0002B;&#x0002B;<break/>H4:CAF01/Ad-H4 induced more memory 3<sup>&#x0002B;</sup> CD4<sup>&#x0002B;</sup> T cells, and was more protective in lung than H4:CAF01 or Ad-H4 alone</td>
<td align="left" valign="top">Correlation between the 3<sup>&#x0002B;</sup> T cell frequency and degree of protection induced by three different vaccine regimens</td>
<td align="left" valign="top">Elvang et al. (<xref ref-type="bibr" rid="B40">40</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">VSV-836<break/>BCG (SSI)</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: Balb/c<break/><italic>Immunization</italic>: VSV i.n. (&#x0002B;0) vs BCG i.m. (&#x0002B;0) vs BCG i.m. (&#x0002B;0)/VSV i.n. (&#x0002B;12 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen<break/><italic>Antigen(s)</italic>: TFP846<break/><italic>Immunogenicity</italic>: (&#x0002B;18&#x02009;weeks)</td>
<td align="left" valign="top">N/A</td>
<td align="left" valign="top">Neither VSV nor BCG/VSV induced 3<sup>&#x0002B;</sup> T cells</td>
<td align="left" valign="top">Zhang et al. (<xref ref-type="bibr" rid="B49">49</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">rAg85B:CpG<break/>rAg85B:CpG in NP</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: C57BL/6<break/><italic>Immunization</italic>: rAg85B with CpG i.n. vs rAg85B with CpG i.d. vs rAg85B with CpG in NP i.n. vs rAg85B with CpG in NP i.d. (&#x0002B;0, &#x0002B;7, &#x0002B;21&#x02009;days)<break/><italic>Challenge</italic>: Mtb Erdman aerosol (&#x0002B;49&#x02009;days)<break/><italic>Post-challenge</italic>: lung CFU (&#x0002B;1 month)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen<break/><italic>Antigen(s)</italic>: rAg85B<break/><italic>Pre-challenge</italic>: (&#x0002B;28, &#x0002B;49&#x02009;days)</td>
<td align="left" valign="top">&#x0002B;&#x0002B;<break/>rAg85B/CpG/NP i.n. induced more 3<sup>&#x0002B;</sup> T cells and more protection in lung than did rAg85B/CpG</td>
<td align="left" valign="top">rAg85B in CpG&#x02009;&#x000B1;&#x02009;NP induced 3<sup>&#x0002B;</sup> T cells as a predominant subset<break/>Correlation between the 3<sup>&#x0002B;</sup> T cell frequency and degree of protection induced by two different vaccine regimens</td>
<td align="left" valign="top">Ballester et al. (<xref ref-type="bibr" rid="B50">50</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">rMT1721:GLA<break/>DNA-MT1721</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: C57BL/6<break/><italic>Immunization</italic>: rMT1721 in GLA s.c (0)/DNA-MT1721 i.m. (&#x0002B;4, &#x0002B;8 weeks) vs DNA-MT1721 i.m. (0)/rMT1721 in GLA s.c (&#x0002B;4, &#x0002B;8 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen<break/><italic>Antigen(s)</italic>: rMT1721<break/><italic>Immunogenicity</italic>: (&#x0002B;10 weeks)</td>
<td align="left" valign="top">N/A</td>
<td align="left" valign="top">rMT1721 as either a prime or a boost to DNA-MT1721 induced 3<sup>&#x0002B;</sup> T cells as a minor subset in splenocytes</td>
<td align="left" valign="top">Cayabyab et al. (<xref ref-type="bibr" rid="B51">51</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">H4:IC31</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: CB6F1<break/><italic>Immunization</italic>: H4 in IC31 s.c. (&#x0002B;0, &#x0002B;2, &#x0002B;4 weeks) comparing 0.5&#x02009;&#x003BC;g vs 5&#x02009;&#x003BC;g<break/><italic>Challenge</italic>: Mtb Erdman aerosol (&#x0002B;10 weeks)<break/><italic>Post-challenge</italic>: lung CFU (&#x0002B;6 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: PBMC<break/><italic>Antigen(s)</italic>: rAg85B; rTB10.4; H4<break/><italic>Pre-challenge</italic>: (&#x0002B;5 weeks)</td>
<td align="left" valign="top">&#x0002B;&#x0002B;<break/>H4:IC31 induced stronger 3<sup>&#x0002B;</sup> T cells at a lower dose (0.5&#x02009;&#x003BC;g) vs a higher dose (5.0&#x02009;&#x003BC;g), which correlated with better protection in the lung</td>
<td align="left" valign="top">H4:IC31 induced 3<sup>&#x0002B;</sup> T cells, as a major subset in PBMC<break/>Correlation of 3<sup>&#x0002B;</sup> T cell frequencies with protection with H4:IC31 delivered at lower vs higher doses</td>
<td align="left" valign="top">Aagaard et al. (<xref ref-type="bibr" rid="B52">52</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">H1:CAF01<break/>BCG (SSI)</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: C57BL/6<break/><italic>Immunization</italic>: BCG s.c. (&#x0002B;0) vs BCG s.c. (&#x0002B;0)/H1 in CAF01 s.c. (&#x0002B;4 weeks)<break/><italic>Challenge</italic>: Mtb Erdman aerosol (&#x0002B;10 weeks)<break/><italic>Post-challenge</italic>: lung CFU (&#x0002B;7, &#x0002B;26, &#x0002B;50 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup>CD44<sup>hi</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen and lung<break/><italic>Antigen(s)</italic>: PPD<break/><italic>Pre-challenge</italic>: (&#x0002B;10 weeks)</td>
<td align="left" valign="top">&#x0002B;<break/>BCG/H1:CAF01 induced more memory 3<sup>&#x0002B;</sup> memory T cells and protection in lungs as compared to na&#x000EF;ve mice</td>
<td align="left" valign="top">BCG/H1:CAF01 and BCG induced a minor subset of memory 3<sup>&#x0002B;</sup> T cells in lung and spleen<break/>Correlation of pre-challenge 3<sup>&#x0002B;</sup> T cell frequencies with protection with BCG/H1:CAF01 vs na&#x000EF;ve mice</td>
<td align="left" valign="top">Lindenstrom et al. (<xref ref-type="bibr" rid="B38">38</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">H1:CAF01<break/>BCG (SSI)</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: C57BL/6<break/><italic>Immunization</italic>: BCG s.c. (&#x0002B;0) vs H1 in CAF01 s.c. (&#x0002B;0, &#x0002B;2, &#x0002B;4 weeks)<break/><italic>Challenge</italic>: Mtb Erdman aerosol (&#x0002B;14 months)<break/><italic>Post-challenge</italic>: lung CFU (&#x0002B;6 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup>CD44<sup>hi</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen<break/><italic>Antigen(s)</italic>: H1; PPD<break/><italic>Pre-challenge</italic>: (&#x0002B;52 weeks)</td>
<td align="left" valign="top">&#x0002B;<break/>H1:CAF01 and BCG induced comparable levels of 3<sup>&#x0002B;</sup> memory CD4<sup>&#x0002B;</sup> T cells and protection in lung as compared to na&#x000EF;ve mice.</td>
<td align="left" valign="top">H1:CAF01 induced a major subset of memory 3<sup>&#x0002B;</sup> T cells after 52 weeks<break/>Correlation of pre-challenge 3<sup>&#x0002B;</sup> T cell frequencies with protection with H1:CAF01 or BCG vs na&#x000EF;ve mice.</td>
<td align="left" valign="top">Lindenstrom et al. (<xref ref-type="bibr" rid="B41">41</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">H1:MMG/DDA<break/>H1:M<sub>32</sub>MMG/DDA</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: C57BL/6<break/><italic>Immunization</italic>: H1 in MMG/DDA s.c. (&#x0002B;0, &#x0002B;2, &#x0002B;4 weeks) vs H1 in M<sub>32</sub>MMG/DDA s.c. (&#x0002B;0, &#x0002B;2, &#x0002B;4 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen<break/><italic>Antigen(s)</italic>: H1<break/><italic>Immunogenicity</italic>: (&#x0002B;6 weeks)</td>
<td align="left" valign="top">NA</td>
<td align="left" valign="top">H1:MMG/DDA or H1:M<sub>32</sub>MMG/DDA induced 3<sup>&#x0002B;</sup> T cells as a major subset in splenocytes</td>
<td align="left" valign="top">Andersen et al. (<xref ref-type="bibr" rid="B53">53</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">ID93:GLA-SE</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: C57BL/6<break/><italic>Immunization</italic>: ID93 in GLA-SE s.c. (&#x0002B;0, &#x0002B;3, &#x0002B;6 weeks)<break/><italic>Challenge</italic>: Mtb H37Rv aerosol (&#x0002B;9&#x02013;10 weeks)<break/><italic>Post-challenge</italic>: lung and spleen CFU (&#x0002B;4 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> CD44<sup>&#x0002B;</sup>3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen<break/><italic>Antigen(s)</italic>: ID93<break/><italic>Pre-challenge</italic>: (&#x0002B;9 weeks)</td>
<td align="left" valign="top">&#x0002B;<break/>ID93:GLA-SE induced more memory 3<sup>&#x0002B;</sup> memory T cells and protection in lungs as compared to control mice</td>
<td align="left" valign="top">ID93:GLA-SE induced memory 3<sup>&#x0002B;</sup> T cells as a minor subset in splenocytes, which correlated with protection in the lung vs control mice</td>
<td align="left" valign="top">Bertholet et al. (<xref ref-type="bibr" rid="B54">54</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG mutant cocktail (SSI)</td>
<td align="left" valign="top"><italic>Holstein steers</italic>: newborn calves<break/><italic>Immunization</italic>: BCG mutant cocktail s.c. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD45RO<sup>&#x0002B;</sup> CCR7<sup>&#x0002B;</sup> CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells after 2 weeks <italic>in vitro</italic> culture<break/><italic>Cellular source</italic>: PBMC<break/><italic>Antigen(s)</italic>: rAg85A; rTB10.4<break/><italic>Immunogenicity</italic>: (&#x0002B;6 weeks)</td>
<td align="left" valign="top">N/A</td>
<td align="left" valign="top">After 2 weeks of <italic>in vitro</italic> culture, a major subset of memory T cells was identified 6 weeks after BCG mutants</td>
<td align="left" valign="top">Maggioli et al. (<xref ref-type="bibr" rid="B45">45</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (SSI)<break/>AERAS-401<break/>AERAS-402</td>
<td align="left" valign="top"><italic>Monkeys</italic>: <italic>Macaca mulatta</italic><break/><italic>Immunization</italic>: BCG i.d. (&#x0002B;0)/AERAS-402 i.m. (&#x0002B;15, &#x0002B;27 weeks) vs AERAS-401 i.d. (&#x0002B;0)/AERAS-402 i.m. (&#x0002B;15, &#x0002B;27 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: PBMC<break/><italic>Antigen(s)</italic>: Ag85A (p.p.); Ag85B (p.p.); TB10.4 (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;1, &#x0002B;4, &#x0002B;8, &#x0002B;15, &#x0002B;16, &#x0002B;19, &#x0002B;20, &#x0002B;24, &#x0002B;27, &#x0002B;28, &#x0002B;31, &#x0002B;37 weeks)</td>
<td align="left" valign="top">N/A</td>
<td align="left" valign="top">AERAS-402 delivered as a boost to either BCG or AERAS-401 elicited transient 3<sup>&#x0002B;</sup> T cell responses in PBMC 1 week after the first boost</td>
<td align="left" valign="top">Magalhaes et al. (<xref ref-type="bibr" rid="B47">47</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="6"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">AERAS-402</td>
<td align="left" valign="top"><italic>Monkeys</italic>: <italic>M. mulatta</italic><break/><italic>Immunization</italic>: AERAS-402 <italic>via</italic> aerosol (&#x0002B;1, &#x0002B;8, &#x0002B;15&#x02009;days)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: PBMC and BAL<break/><italic>Antigen(s)</italic>: Ag85A/B (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;18, &#x0002B;43&#x02009;days)</td>
<td align="left" valign="top">N/A</td>
<td align="left" valign="top">AERAS-402 delivered <italic>via</italic> aerosol induced weak, detectable 3<sup>&#x0002B;</sup> T cells in PBMC 3 days and in BAL 28 days after completing immunization</td>
<td align="left" valign="top">Hokey et al. (<xref ref-type="bibr" rid="B48">48</xref>)</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<p><italic>SSI, Staten Serum Institute; rBCG:XB, Recombinant BCG overexpressing Ag85B and HspX; VPM1002, Recombinant BCG which is urease C deficient and expressing membrane-perforating listerolysin (<italic>L. monocytogenes</italic>); MVA85A, Modified Vaccinia Ankara expressing Ag85A; E6-85, recombinant ESAT-6 fused to the n-terminus of Ag85B without the signal sequence; DDA, dimethyl dioctadecyl ammonium bromide; MPL, monophosphoryl lipid A; AdE6-85, adenoviral vector (Ad5) expressing E6-85; pVax6-85, DNA construct expressing E6-85; Ad85A, human adenoviral vector expressing Ag85A; H4, Recombinant Ag85B/TB10.4 fusion protein; CAF01, cationic liposomes formulated with synthetic mycobacterial cord factor; Ad-H4, Adenoviral (Ad5) vector expressing H4; VSV-836, Vesicular Stomatitis Virus (VSV) expressing a fusion of Rv3615c, Mtb10.4, Rv2660c (TFP846); rAg85B, recombinant Ag85B; NP, polypropylene sulfide nanoparticles; rMT1721, recombinant MT1721; GLA, glucopyranosyl lipid A; IC31, cationic peptide and oligodeoxynucleotide (ODN1); H1, Recombinant Ag85B/ESAT-6 fusion protein; MMG, monomycoloyl glycerol: M<sub>32</sub>MMG, synthetic analog of MMG; ID93, Recombinant Rv2608, Rv3619, Rv3620, and Rv1813 fusion protein; GLA-SE, synthetic MPL in stable oil-in-water nanoemulsion; BCG mutant cocktail, BCG &#x00394;fdr8, &#x00394;leuCD, &#x00394;pks16, &#x00394;mmaA2, and &#x00394;metA; AERAS-401, Recombinant BCG expressing perfringolysin; AERAS-402, Adenoviral vector (Ad35) expressing Ag85A, Ag85B, and TB10.4; CB6F1, C57BL/6 X Balb/c; i.m., intramuscular; s.c., subcutaneous; i.d., intradermal; i.n., intranasal; CFU, colony forming units; 3<sup>&#x0002B;</sup>, IFN-&#x003B3;<sup>&#x0002B;</sup>TNF-&#x003B1;<sup>&#x0002B;</sup>IL-2<sup>&#x0002B;</sup>; PBMC, peripheral blood mononuclear cells; BAL, bronchoalveolar lavage; p.p., peptide pool; BCG, Bacille Calmette Guerin; TB, tuberculosis, Mtb, <italic>M. tuberculosis</italic>; IA, immune assay</italic>.</p>
<p><italic>&#x0002B;&#x02009;&#x0003D;&#x02009;weak evidence for 3<sup>&#x0002B;</sup> cells as a correlate of protection (positive correlation between 3<sup>&#x0002B;</sup> T cell frequency and one or two similarly performing vaccines vs control); &#x0002B;&#x0002B;&#x02009;&#x0003D;&#x02009;moderate evidence for 3<sup>&#x0002B;</sup> cells as a correlate of protection (positive correlation between 3<sup>&#x0002B;</sup> T cell frequency and at least two differently performing vaccines&#x02009;&#x000B1;&#x02009;control); &#x02013;&#x02009;&#x0003D;&#x02009;evidence against 3<sup>&#x0002B;</sup> cells as a correlate of protection (no correlation between 3<sup>&#x0002B;</sup> T cell frequency and four vaccines); &#x0002B;&#x0002B;&#x0002B;&#x02009;&#x0003D;&#x02009;strongest evidence for 3<sup>&#x0002B;</sup> cells as a correlate of protection (positive correlation between 3<sup>&#x0002B;</sup> T cell frequency and five vaccines); &#x0002B;/&#x02212;&#x02009;&#x0003D;&#x02009;equivocal evidence for 3<sup>&#x0002B;</sup> cells as a correlate of protection; N/A, Not applicable</italic>.</p>
<p><italic>Major subset&#x02009;&#x0003D;&#x02009;subset that constitutes &#x0003E;50% of the total cytokine-producing cells; minor subset&#x02009;&#x0003D;&#x02009;subset that constitutes &#x0003C;20% of the total cytokine-producing cells; predominant subset&#x02009;&#x0003D;&#x02009;subset that constitutes 20&#x02013;50% of the total cytokine-producing cells</italic>.</p>
<fn id="tfn1"><p><italic><sup>a</sup>Vaccine-induced 3<sup>&#x0002B;</sup> T cells correlate with protection from Mtb challenge. Protection is defined as control of Mtb replication</italic>.</p></fn>
</table-wrap-foot>
</table-wrap>
</sec>
<sec id="S3-2">
<title>Vaccine Candidates Utilizing Viral Vectors Can Elicit Polyfunctional CD4<sup>&#x0002B;</sup> T Cells</title>
<p>Adenoviral vectors expressing Mtb proteins also elicit polyfunctional CD4<sup>&#x0002B;</sup> T cells in murine and NHP models of TB (Table <xref ref-type="table" rid="T2">2</xref>). Derrick et al. showed that a replication deficient adenoviral vector, Ad5, expressing ESAT-6 fused to the n-terminus of Ag85B (E6-85) induced BCG-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells, detected in spleen of mice 2 and 8&#x02009;months after vaccination, but no longer detectable 14&#x02009;months after vaccination (<xref ref-type="bibr" rid="B43">43</xref>). Forbes et al. used an Ad5 vector expressing Ag85A as a boost to BCG and compared intradermal (i.d.) to intranasal (i.n.) delivery of the adenovirus (<xref ref-type="bibr" rid="B39">39</xref>). Boosting i.d. but not i.n. induced Ag85A-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells, as a predominant subset in spleen 4&#x02009;weeks after the adenoviral boost vaccination. By contrast, when lung T cells were examined, this adenoviral vector only induced Ag85A-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells when delivered i.n. but not i.d. Elevang et al. showed that an Ad5 vector expressing H4, a recombinant Ag85B/TB10.4 fusion protein (Ad-H4), induced Ag85A and TB10.4-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells, representing a predominant subset of CD44<sup>&#x0002B;</sup> memory T cells in spleen 3&#x02009;weeks following the vaccination and also when administered as a boost to recombinant H4 delivered in CAF01 (H4:CAF01) 1 week following this vaccination (<xref ref-type="bibr" rid="B40">40</xref>). Magalhaes et al. showed that an adenoviral vector, Ad35, expressing Ag85A, Ag85b, and TB10.4 (AERAS-402) delivered i.m. as a boost to either BCG or recombinant BCG expressing perfringolysin (AERAS-401), elicited transient Ag85A/B and TB10.4-specific polyfunctional CD4<sup>&#x0002B;</sup> T cell responses in PBMC of rhesus macaque monkeys of Chinese origin (<italic>M. mulatta</italic>) 1 week after the first boost (<xref ref-type="bibr" rid="B47">47</xref>). Hokey et al. went on to show that AERAS-402 delivered <italic>via</italic> aerosol to Chinese rhesus macaques induced weakly detectable Ag85A/B-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells in PBMC 3&#x02009;days after and in BAL 28&#x02009;days after completion of immunization (<xref ref-type="bibr" rid="B48">48</xref>). Therefore, at least in the short-term, adenoviral vectors expressing Mtb proteins elicit polyfunctional CD4<sup>&#x0002B;</sup> T cells when delivered with alone or as a boost to BCG in mice and NHPs.</p>
<p>Two additional viral vector systems have also been assessed in the mouse TB model (Table <xref ref-type="table" rid="T2">2</xref>). A vesicular stomatitis virus (VSV) construct expressing Rv3615c, Mtb10.4, and Rv2660c elicited dual-cytokine-producing (IFN-&#x003B3;<sup>&#x0002B;</sup>TNF-&#x003B1;<sup>&#x0002B;</sup>; TNF-&#x003B1;<sup>&#x0002B;</sup>IL-2<sup>&#x0002B;</sup>; and IFN-&#x003B3;<sup>&#x0002B;</sup>IL-2<sup>&#x0002B;</sup>) but not triple-cytokine producing (IFN-&#x003B3;<sup>&#x0002B;</sup>TNF-&#x003B1;<sup>&#x0002B;</sup>IL-2<sup>&#x0002B;</sup>) polyfunctional CD4<sup>&#x0002B;</sup> T cell responses when delivered i.n. either alone or as a boost to BCG (<xref ref-type="bibr" rid="B49">49</xref>). By contrast, a modified vaccinia Ankara (MVA) expressing Ag85A (MVA85A), when delivered as a boost to BCG, elicited predominantly Ag85A-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells 3 and 12&#x02009;weeks following MVA immunization (<xref ref-type="bibr" rid="B42">42</xref>). The capacity for MVA85A to elicit polyfunctional CD4<sup>&#x0002B;</sup> T cell responses in humans has been more extensively evaluated and is discussed below.</p>
</sec>
<sec id="S3-3">
<title>Recombinant Antigen Vaccines Elicit Polyfunctional CD4<sup>&#x0002B;</sup> T Cells</title>
<p>Recombinant Mtb antigen subunit vaccines, typically comprising proteins formulated in adjuvant, have been extensively evaluated in the mouse TB model (Table <xref ref-type="table" rid="T2">2</xref>). Several adjuvanted recombinant Mtb proteins or fusions of multiple Mtb proteins have been shown to elicit polyfunctional CD4<sup>&#x0002B;</sup> T cells in mice, including recombinant Ag85B (<xref ref-type="bibr" rid="B50">50</xref>), and MT1721 (<xref ref-type="bibr" rid="B51">51</xref>) and fusion proteins comprised of ESAT-6 fused to the n-terminus of Ag85B (E6-85) (<xref ref-type="bibr" rid="B43">43</xref>), Ag85B/TB10.4 (H4) (<xref ref-type="bibr" rid="B40">40</xref>, <xref ref-type="bibr" rid="B52">52</xref>), Ag85B/ESAT-6 (H1) (<xref ref-type="bibr" rid="B38">38</xref>, <xref ref-type="bibr" rid="B41">41</xref>, <xref ref-type="bibr" rid="B53">53</xref>), and gene products of Rv2608, Rv3619, Rv3620, and Rv1813 (ID93) (<xref ref-type="bibr" rid="B54">54</xref>). These recombinant protein vaccines have successfully utilized several different adjuvant formulations based upon immunostimulatory lipids (<xref ref-type="bibr" rid="B38">38</xref>, <xref ref-type="bibr" rid="B40">40</xref>, <xref ref-type="bibr" rid="B41">41</xref>, <xref ref-type="bibr" rid="B43">43</xref>, <xref ref-type="bibr" rid="B53">53</xref>, <xref ref-type="bibr" rid="B54">54</xref>) or nucleotides (<xref ref-type="bibr" rid="B50">50</xref>&#x02013;<xref ref-type="bibr" rid="B52">52</xref>) to elicit these T cell responses. In addition, adjuvanted recombinant protein vaccines induce polyfunctional CD4<sup>&#x0002B;</sup> T cell responses when used alone (<xref ref-type="bibr" rid="B40">40</xref>, <xref ref-type="bibr" rid="B41">41</xref>, <xref ref-type="bibr" rid="B43">43</xref>, <xref ref-type="bibr" rid="B50">50</xref>, <xref ref-type="bibr" rid="B52">52</xref>&#x02013;<xref ref-type="bibr" rid="B54">54</xref>) and when administered as a boost after BCG prime (<xref ref-type="bibr" rid="B38">38</xref>, <xref ref-type="bibr" rid="B43">43</xref>) or a DNA vaccine prime (<xref ref-type="bibr" rid="B51">51</xref>). Moreover, one study examined antigen dose and found that a lower dose of H4:IC31 [recombinant H4 delivered in IC31 (cationic peptide and oligodeoxynucleotide), 0.5&#x02009;&#x003BC;g] induced greater frequencies of polyfunctional CD4<sup>&#x0002B;</sup> T cells than a higher dose (5&#x02009;&#x003BC;g) (<xref ref-type="bibr" rid="B52">52</xref>). Finally, recombinant protein vaccines induce polyfunctional CD4<sup>&#x0002B;</sup> T cells detected among CD44<sup>&#x0002B;</sup> memory T cell populations (<xref ref-type="bibr" rid="B38">38</xref>, <xref ref-type="bibr" rid="B40">40</xref>, <xref ref-type="bibr" rid="B41">41</xref>) as early as 1 week following completed immunization (<xref ref-type="bibr" rid="B40">40</xref>) and persisted 56&#x02009;weeks when recombinant H1 delivered in CAF01 (H1:CAF01) was used (<xref ref-type="bibr" rid="B41">41</xref>) and as long as 14&#x02009;months when recombinant E6-85 delivered in DD/MPL (liposomal monophosphoryl lipid A, E6-85: DDA/MPL) was used to boost BCG (<xref ref-type="bibr" rid="B43">43</xref>). Therefore, polyfunctional CD4<sup>&#x0002B;</sup> T cells are induced with several distinct adjuvanted recombinant Mtb protein vaccines, when used alone or as a boost to BCG or DNA vaccine, and are included among memory CD4<sup>&#x0002B;</sup> T cell populations.</p>
</sec>
<sec id="S3-4">
<title>TB Vaccines Promote Polyfunctional CD4<sup>&#x0002B;</sup> T Cells in the Lung</title>
<p>Recent studies in the mouse TB demonstrate the importance of tissue location for protective immune responses against <italic>M. tuberculosis</italic> and suggest that lung resident CD4<sup>&#x0002B;</sup> T cells mediate control of Mtb infection better than CD4<sup>&#x0002B;</sup> T cells that reside in the pulmonary vasculature but do not enter the parenchyma [reviewed in Ref. (<xref ref-type="bibr" rid="B37">37</xref>)]. Protective parenchymal CD4<sup>&#x0002B;</sup> T cells express activation markers such as PD-1 and CD69, do not express the terminal differentiation marker KLRG1, and produce less IFN-&#x003B3; than intravascular T cells. Therefore, the ability of TB vaccines to promote the accumulation of lung resident polyfunctional CD4<sup>&#x0002B;</sup> T cells may be an additional important component of vaccine-induced protection by these cells.</p>
<p>Tuberculosis vaccine candidates can elicit polyfunctional CD4<sup>&#x0002B;</sup> T cells in the lung (Table <xref ref-type="table" rid="T3">3</xref>). Darrah et al. showed that BCG delivered i.m. induced PPD-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells, as a major subset, in the lung 4&#x02009;months after vaccination (<xref ref-type="bibr" rid="B9">9</xref>). Lindenstrom et al. showed that BCG and BCG boosted with Ag85B-ESAT-6 fusion protein in CAF01 (H1:CAF01) induced PPD-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells, as a minor subset in lung 10&#x02009;weeks after the completed immunization (<xref ref-type="bibr" rid="B38">38</xref>). By contrast, Forbes et al. showed that an Ag85A-expressing adenoviral vaccine-induced polyfunctional CD4<sup>&#x0002B;</sup> T cells in the lung after i.n. but not i.d. administration of the vaccine (<xref ref-type="bibr" rid="B39">39</xref>). In NHP&#x02019;s, polyfunctional CD4<sup>&#x0002B;</sup> T cells are detected in BAL after aerosol delivery of BCG (<xref ref-type="bibr" rid="B46">46</xref>) or adenoviral vaccine, AERAS-402 (<xref ref-type="bibr" rid="B48">48</xref>).</p>
<table-wrap position="float" id="T3">
<label>Table 3</label>
<caption><p>Lung resident polyfunctional CD4<sup>&#x0002B;</sup> T cells before and after TB vaccination.</p></caption>
<table frame="hsides" rules="groups">
<thead>
<tr>
<th valign="top" align="left">TB vaccine</th>
<th valign="top" align="left">Study design</th>
<th valign="top" align="left">IA</th>
<th valign="top" align="left">Conclusions</th>
<th valign="top" align="left">Reference</th>
</tr>
</thead>
<tbody>
<tr>
<td align="left" valign="top">BCG (SSI)</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: C57BL/6<break/><italic>Immunization</italic>: BCG i.m: (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: lung<break/><italic>Antigen(s)</italic>: PPD<break/><italic>Immunogenicity</italic>: (&#x0002B;4 months)</td>
<td align="left" valign="top">BCG induced a major subset in lung at 4&#x02009;months after vaccination</td>
<td align="left" valign="top">Darrah et al. (<xref ref-type="bibr" rid="B9">9</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (SSI)<break/>H1:CAF01</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: C57BL/6<break/><italic>Immunization</italic>: BCG s.c. (&#x0002B;0) vs BCG s.c. (&#x0002B;0)/rH1 in CAF01 s.c. (&#x0002B;4 weeks)<break/><italic>Challenge</italic>: Mtb Erdman aerosol (&#x0002B;10 weeks)<break/><italic>Post-Challenge</italic>: lung CFU (&#x0002B;7, &#x0002B;26, &#x0002B;50 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup>CD44<sup>hi</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: lung<break/><italic>Antigen(s)</italic>: PPD; Ag85A, ESAT-6, TB10.4 (p.p.)<break/><italic>Pre-challenge</italic>: (&#x0002B;10 weeks)<break/><italic>Post-Challenge</italic>: (&#x0002B;7, &#x0002B;26, &#x0002B;50 weeks)</td>
<td align="left" valign="top">BCG/H1:CAF01 and BCG induced a minor subset of memory 3<sup>&#x0002B;</sup> T cells in lung pre-challenge<break/>For BCG/H1:CAF01, both an increased 3<sup>&#x0002B;</sup> T cell response and decreased CFU in the lung relative to control mice were observed 26&#x02009;weeks after infection. However, when comparing BCG/H1:CAF01 with BCG post-infection, BCG/H1:CAF01 was associated with an increased 3<sup>&#x0002B;</sup> T cell response but not a statistically significant decrease in lung CFU</td>
<td align="left" valign="top">Lindenstrom et al. (<xref ref-type="bibr" rid="B38">38</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (Pasteur) Ad85A</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: Balb/c<break/><italic>Immunization</italic>: BCG s.c. (&#x0002B;0)/Ad85A i.d. (&#x0002B;10 weeks); vs BCG s.c. (&#x0002B;0)/Ad85A i.n. (&#x0002B;10 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: spleen and lung<break/><italic>Antigen(s)</italic>: Ag85A (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;14 weeks)</td>
<td align="left" valign="top">Boosting BCG with Ad85A i.n. but not i.d. induced Ag85A-specific 3<sup>&#x0002B;</sup> T cells in lung</td>
<td align="left" valign="top">Forbes et al. (<xref ref-type="bibr" rid="B39">39</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">rESAT-6: CAF01</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: CB6F1<break/><italic>Immunization</italic>: rESAT-6 s.c. in CAF01 (&#x0002B;0, &#x0002B;2, &#x0002B;4 weeks)<break/><italic>Challenge</italic>: Mtb Erdman aerosol (&#x0002B;10 weeks)<break/><italic>Post-Challenge</italic>: lung CFU (&#x0002B;4, &#x0002B;6, &#x0002B;10 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: lung<break/><italic>Antigen(s)</italic>: ESAT-6<sub>1&#x02013;15</sub> peptide<break/><italic>Post-Challenge</italic>: (&#x0002B;2, &#x0002B;6, &#x0002B;24 weeks)</td>
<td align="left" valign="top">For ESAT-6:CAF01, both an increased 3<sup>&#x0002B;</sup> T cell response and decreased CFU in the lung relative to control mice were observed at all time points measured</td>
<td align="left" valign="top">Aagaard et al. (<xref ref-type="bibr" rid="B55">55</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">H56:CAF01<break/>H1:CAF01<break/>BCG (SSI)</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: CB6F1<break/><italic>Immunization</italic>: H56 s.c. in CAF01 (&#x0002B;0, &#x0002B;2, &#x0002B;4 weeks); H1 s.c. in CAF01 (&#x0002B;0, &#x0002B;2, &#x0002B;4 weeks) BCG (&#x0002B;0)<break/><italic>Challenge</italic>: Mtb Erdman aerosol (&#x0002B;10 weeks)<break/><italic>Post-Challenge</italic>: lung CFU (&#x0002B;6 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup>CD44<sup>hi</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: lung<break/><italic>Antigen(s)</italic>: rAg85B<break/><italic>Post-Challenge</italic>: (&#x0002B;6, &#x0002B;12, &#x0002B;24 weeks)</td>
<td align="left" valign="top">For H56:CAF01 relative to control, both an increased 3<sup>&#x0002B;</sup> T cell response and decreased CFU in the lung were observed at all time points measured<break/>For H56:CAF01 relative to H1:CAF01, both an increased 3<sup>&#x0002B;</sup> T cell response and decreased CFU in the lung were observed at &#x0002B;12 and &#x0002B;24 weeks<break/>For H56:CAF01 relative to BCG, both an increased 3<sup>&#x0002B;</sup> T cell response and decreased CFU in the lung were observed at &#x0002B;24 weeks only</td>
<td align="left" valign="top">Aagaard et al. (<xref ref-type="bibr" rid="B56">56</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">H56:CAF01</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: CB6F1<break/><italic>Immunization</italic>: H56 s.c. in CAF01 (&#x0002B;0, &#x0002B;2, &#x0002B;4 weeks)<break/><italic>Challenge</italic>: Mtb Erdman aerosol (&#x0002B;10 weeks)<break/><italic>Post-Challenge</italic>: lung CFU (&#x0002B;42&#x02009;days)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: lung<break/><italic>Antigen(s)</italic>: rESAT-6<break/><italic>Post-Challenge</italic>: (&#x0002B;42&#x02009;days)</td>
<td align="left" valign="top">For H56:CAF01 relative to control, both an increased 3<sup>&#x0002B;</sup> T cell response and decreased CFU in the lung were observed at &#x0002B;42&#x02009;days</td>
<td align="left" valign="top">Woodworth et al. (<xref ref-type="bibr" rid="B57">57</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (SSI)<break/>VPM1002</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: Balb/c<break/><italic>Immunization</italic>: BCG s.c. (&#x0002B;0); VPM1002 (&#x0002B;0)<break/><italic>Challenge</italic>: Mtb H37Rv aerosol<break/><italic>Post-Challenge</italic>: lung CFU (&#x0002B;90&#x02009;days)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: lung<break/><italic>Antigen(s)</italic>: PPD<break/><italic>Post-Challenge</italic>: (&#x0002B;7, &#x0002B;90&#x02009;days)</td>
<td align="left" valign="top">VPM1002 vaccination prior to challenge resulted in greater frequencies of 3<sup>&#x0002B;</sup> T cells in the lung as compared to BCG-immunized or control mice 7&#x02009;days after challenge. Ninety days after challenge, frequencies of 3<sup>&#x0002B;</sup> T cells in the lung were comparable in VMP1002-immunized, BCG-immunized and control mice. At this same time point, VMP1002-immunized mice controlled infection better than BCG-immunized mice</td>
<td align="left" valign="top">Desel et al. (<xref ref-type="bibr" rid="B58">58</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">H4:CAF01<break/>Ad-H4<break/>BCG (SSI)</td>
<td align="left" valign="top"><italic>Mouse strain</italic>: CB6F1<break/><italic>Immunization</italic>: Ad-H4 s.c. (&#x0002B;0) vs H4 in CAF01 s.c. (&#x0002B;0, &#x0002B;2 weeks) vs H4 in CAF01 s.c. (&#x0002B;0)/Ad-H4 (&#x0002B;2 weeks) vs BCG s.c. (&#x0002B;0)<break/><italic>Challenge</italic>: Mtb Erdman aerosol (&#x0002B;8 weeks)<break/><italic>Post-Challenge</italic>: lung CFU (&#x0002B;6 weeks)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup>CD44<sup>hi</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: lung<break/><italic>Antigen(s)</italic>: TB10.4; Ag85B (p.p.)<break/><italic>Post-Challenge</italic>: (&#x0002B;2 weeks)</td>
<td align="left" valign="top">For H4:/Ad-H4 relative to control, both an increased 3<sup>&#x0002B;</sup> T cell response (&#x0002B;2 weeks) and decreased CFU in the lung (&#x0002B;6 weeks) were observed</td>
<td align="left" valign="top">Elvang et al. (<xref ref-type="bibr" rid="B40">40</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (SSI)</td>
<td align="left" valign="top"><italic>Monkeys</italic>: <italic>Macaca mulatta</italic><break/><italic>Immunization</italic>: BCG aerosol (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: BAL<break/><italic>Antigen(s)</italic>: PPD<break/><italic>Immunogenicity</italic>: (&#x0002B;4, &#x0002B;8, &#x0002B;13 weeks)</td>
<td align="left" valign="top">BCG induced 3<sup>&#x0002B;</sup> T cells as a major subset in BAL fluid 8&#x02009;weeks after vaccination</td>
<td align="left" valign="top">White et al. (<xref ref-type="bibr" rid="B46">46</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">AERAS-402</td>
<td align="left" valign="top"><italic>Monkeys</italic>: <italic>M. mulatta</italic><break/><italic>Immunization</italic>: AERAS-402 <italic>via</italic> aerosol (&#x0002B;1, &#x0002B;8, &#x0002B;15&#x02009;days)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular source</italic>: BAL<break/><italic>Antigen(s)</italic>: Ag85A/B (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;18, &#x0002B;43&#x02009;days)</td>
<td align="left" valign="top">AERAS-402 delivered <italic>via</italic> aerosol induced weak, detectable 3<sup>&#x0002B;</sup> T cells in BAL 28&#x02009;days after completing immunization</td>
<td align="left" valign="top">Hokey et al. (<xref ref-type="bibr" rid="B48">48</xref>)</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<p><italic>SSI, Staten Serum Institute; H1, Recombinant Ag85B/ESAT-6 fusion protein; CAF01, cationic liposomes formulated with synthetic mycobacterial cord factor; Ad85A, human adenoviral vector expressing Ag85A; rESAT-6, recombinant ESAT-6; H56, Recombinant Ag85B/ESAT-6/Rv2660c; VPM1002, Recombinant BCG which is urease C deficient and expressing membrane-perforating listerolysin (<italic>L. monocytogenes</italic>); H4, Recombinant Ag85B/TB10.4 fusion protein; Ad-H4, adenoviral vector expressing H4; AERAS-402, Adenoviral vector (Ad35) expressing Ag85A, Ag85B, and TB10.4; CB6F1, C57BL/6 X Balb/c; i.m., intramuscular; s.c., subcutaneous; i.d., intradermal; i.n., intranasal; CFU, colony forming units; 3<sup>&#x0002B;</sup>, IFN-&#x003B3;<sup>&#x0002B;</sup>TNF-&#x003B1;<sup>&#x0002B;</sup>IL-2<sup>&#x0002B;</sup>; BAL, bronchoalveolar lavage; p.p., peptide pool; rAg85B, recombinant Ag85B; rESAT-6, recombinant ESAT-6; BCG, Bacille Calmette Guerin; TB, Tuberculosis; Mtb, <italic>M. tuberculosis</italic>; IA, immune assay</italic>.</p>
<p><italic>Major subset&#x02009;&#x0003D;&#x02009;subset that constitutes &#x0003E;50% of the total cytokine-producing cells; minor subset&#x02009;&#x0003D;&#x02009;subset that constitutes &#x0003C;20% of the total cytokine-producing cells</italic>.</p>
</table-wrap-foot>
</table-wrap>
<p>Studies utilizing the mouse TB model have also investigated the effect of prior vaccine administration on the magnitude of the polyfunctional CD4<sup>&#x0002B;</sup> T cell response in the lung following Mtb challenge (Table <xref ref-type="table" rid="T3">3</xref>). Vaccination with recombinant ESAT-6 in CAF01 (rESAT-6:CAF01) (<xref ref-type="bibr" rid="B55">55</xref>) or Ag85B/ESAT-6/Rv2660c fusion protein in CAF01 (H56:CAF01) (<xref ref-type="bibr" rid="B56">56</xref>, <xref ref-type="bibr" rid="B57">57</xref>), or VPM1002 (<xref ref-type="bibr" rid="B58">58</xref>), recombinant Ag85B/TB10.4 fusion protein in CAF01 (H4:CAF01), boosted with an Ad5 vector expressing recombinant H4 (Ad-H4) (<xref ref-type="bibr" rid="B40">40</xref>), or BCG boosted with Ag85B-ESAT-6 fusion protein in CAF01 (H1:CAF01) (<xref ref-type="bibr" rid="B38">38</xref>) all resulted in increased Mtb antigen-specific polyfunctional CD4<sup>&#x0002B;</sup> T cell responses in lung relative to control mice 2&#x02009;weeks (<xref ref-type="bibr" rid="B40">40</xref>, <xref ref-type="bibr" rid="B55">55</xref>) up to 26&#x02009;weeks (<xref ref-type="bibr" rid="B38">38</xref>) after Mtb challenge. In most of these studies both an increased polyfunctional CD4<sup>&#x0002B;</sup> T cell response and vaccine-induced protection in the lung, as measured by decreased CFU in the lung relative to control mice, were observed at the same time point after infection. However, Desel et al. showed that 90&#x02009;days after challenge, frequencies of polyfunctional T cells in the lung were comparable in VMP1002-immunized, BCG-immunized and control mice (<xref ref-type="bibr" rid="B58">58</xref>). Despite that, at this same time point, VMP1002-immunized mice controlled infection better than BCG-immunized mice and BCG-immunized mice controlled infection better than na&#x000EF;ve mice. Also, Lindenstrom et al. showed that vaccination with BCG boosted with H1:CAF01 resulted in increased PPD-specific polyfunctional CD4<sup>&#x0002B;</sup> T cell responses in lung relative to control mice and BCG-vaccinated mice, yet differences in lung CFU in BCG/H1:CAF01 vs BCG-vaccinated mice were not statistically significant (<xref ref-type="bibr" rid="B38">38</xref>). In another study, vaccination with recombinant Ag85B/ESAT-6/Rv2660c fusion protein (H56:CAF01) resulted in Ag85B-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells in the lungs, which were not detected in BCG-immunized or control mice, yet both BCG and H56-vaccinated mice demonstrated a similar reduction in lung CFU as compared to control mice at 6 and 12&#x02009;weeks after challenge (<xref ref-type="bibr" rid="B56">56</xref>). In conclusion, in animal models, TB vaccines induce polyfunctional CD4<sup>&#x0002B;</sup> T cells that are present in lung after immunization and in some, but not all studies, an increase in polyfunctional CD4<sup>&#x0002B;</sup> T cells in the lung following Mtb challenge is temporally associated with vaccine-induced control of bacterial replication in the lung relative to control mice.</p>
</sec>
</sec>
<sec id="S4">
<title>Correlation of Polyfunctional T Cell Responses and Protection in the Mouse Model</title>
<p>Whether or not vaccine-induced polyfunctional CD4<sup>&#x0002B;</sup> T cells represent a correlate of protective immunity from Mtb infection has been addressed in several mouse studies investigating the correlation between the magnitude of the polyfunctional CD4<sup>&#x0002B;</sup> T cell response present before Mtb challenge and vaccine-induced control of bacterial replication, the most common measure of vaccine protection against TB in the murine model (Table <xref ref-type="table" rid="T2">2</xref>). The strongest correlative evidence for polyfunctional CD4<sup>&#x0002B;</sup> T cells as a correlate of protective immunity comes from studies in which a correlation between control of bacterial replication and the magnitude of the CD4<sup>&#x0002B;</sup> T cell response was established from experiments including multiple distinct vaccine candidates that elicit a range of protective responses. Conversely, the weakest correlative evidence comes from studies in which a single vaccine candidate both induces a polyfunctional CD4<sup>&#x0002B;</sup> T cell response and demonstrates protection compared to unimmunized control mice. For example, BCG (<xref ref-type="bibr" rid="B9">9</xref>, <xref ref-type="bibr" rid="B41">41</xref>), H1:CAF01 (<xref ref-type="bibr" rid="B38">38</xref>, <xref ref-type="bibr" rid="B41">41</xref>), and ID93:GLA-SE (<xref ref-type="bibr" rid="B54">54</xref>), all induced mycobacteria-specific polyfunctional CD4<sup>&#x0002B;</sup> T cell responses at the time of Mtb challenge, which were associated with protection as compared to na&#x000EF;ve or control mice, who lack these T cell responses. Somewhat better correlative evidence comes from studies comparing two or more vaccine candidates to one another. Comparing rBCG:XB to BCG, Yuan et al. showed that rBCG:XB elicited stronger HspX-specific polyfunctional T cell responses than BCG, which was associated with greater protection than was observed in BCG-vaccinated mice (<xref ref-type="bibr" rid="B44">44</xref>). Ballester et al. showed that recombinant Ag85B delivered in CpG (Ag85B:CpG) with polypropylene sulfide nanoparticles (NP) delivered i.n. induced more polyfunctional Ag85B-specific CD4<sup>&#x0002B;</sup> T cells in spleen pre-challenge than did Ag85B:CpG without NP and this correlated with better protection in the lung (<xref ref-type="bibr" rid="B50">50</xref>). Also, comparing priming alone with prime/boost strategies, Elevang et al. demonstrated that recombinant Ag85B/TB10.4 fusion protein in CAF01 (H4:CAF01), boosted with an Ad5 vector expressing recombinant H4 (Ad-H4) induced more Ag85A- and TB10.4-specific polyfunctional memory CD4<sup>&#x0002B;</sup> T cells, pre-challenge than did either recombinant H4 or Ad-H4 alone, which in turn correlated with better protection in lung after challenge (<xref ref-type="bibr" rid="B40">40</xref>). In addition, comparing different dosages of recombinant antigen, Aagaard et al. showed that H4:IC31 induced stronger Ag85B- and TB10.4-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells in PBMC pre-challenge at a lower dose (0.5&#x02009;&#x003BC;g) vs a higher dose (5.0&#x02009;&#x003BC;g), and this correlated with better protection in the lung at the lower dose (<xref ref-type="bibr" rid="B52">52</xref>). Finally, the strongest degree of correlation was demonstrated using several different vaccine regimens inducing various levels of protection (<xref ref-type="bibr" rid="B43">43</xref>). Derrick et al. showed that both the frequency of polyfunctional CD4<sup>&#x0002B;</sup> T cells and the iMFI for TNF-&#x003B1; and IFN-&#x003B3; at the time of Mtb challenge correlated with vaccine-induced protection in the lung and spleen over a 14-month period. For example, the magnitude of BCG-specific CD4<sup>&#x0002B;</sup> polyfunctional T cell responses at the time of challenge 8&#x02009;months after immunization with BCG or BCG mixed with recombinant E6-85, were greater than those induced by a DNA construct expressing recombinant E6-85 and correlated with greater protection afforded by either of these vaccine BCG regimens than the DNA construct. Moreover, using Pearson correlation analysis of iMFI values at all the challenge time points, these investigators showed that IFN-&#x003B3; iMFI values were highly correlated with protection in the lung and spleen. Yet, of note, these investigators only reported measurements of the polyfunctional CD4<sup>&#x0002B;</sup> T cell response, while other immune parameters that may also be mediators of protection, such as antibody responses and CD8<sup>&#x0002B;</sup> T cell responses, were not evaluated for correlation with control of bacterial replication.</p>
<p>By contrast, two other studies show either equivocal evidence for or evidence against a correlation between pre-challenge polyfunctional CD4<sup>&#x0002B;</sup> T cells and vaccine-induced protection. For example, boosting BCG with an Ad5 vector expressing Ag85A, induced Ag85A-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells pre-challenge in the lung only when delivered i.n. but not i.d. and this correlated with improved protection in the lung in i.n. vaccinated mice (<xref ref-type="bibr" rid="B39">39</xref>). However, i.d. rather than i.n. delivery induced polyfunctional CD4<sup>&#x0002B;</sup> T cells in the spleen, such that only lung, not splenic polyfunctional CD4<sup>&#x0002B;</sup> T cells correlated with the degree of vaccine-induced protection. In another study, both BCG and recombinant BCG (VPM1002) required boosting with MVA85A to elicit PPD- and Ag85A-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells, with BCG boosted with MVA85A eliciting greater T cell responses than VPM1002 boosted with MVA85A (<xref ref-type="bibr" rid="B42">42</xref>). Yet VPM1002 provided better protection in lung compared to BCG and the MVA85A boost, which induced high levels of polyfunctional CD4<sup>&#x0002B;</sup> T cells, did not augment protection obtained with either BCG or VPM1002. Differences in these two studies as compared to numerous studies that support a correlation between polyfunctional CD4<sup>&#x0002B;</sup> T cells are difficult to resolve, but may simply reflect differences in the vaccination protocol, or how polyfunctional T cells or protection was measured. In addition, two studies showed a stronger correlation between dual IL-2 and TNF-&#x003B1; producing CD4<sup>&#x0002B;</sup> T cells and vaccine-induced protection than with triple IL-2, TNF-&#x003B1;, and IFN-&#x003B3;-producing CD4<sup>&#x0002B;</sup> T cells (<xref ref-type="bibr" rid="B38">38</xref>, <xref ref-type="bibr" rid="B41">41</xref>). Finally, Yuan et al. showed a stronger correlation between the magnitude of dual TNF-&#x003B1; and IFN-&#x003B3;-producing CD4<sup>&#x0002B;</sup> T cells and vaccine-induced protection than with triple IL-2, TNF-&#x003B1;, and IFN-&#x003B3;-producing CD4<sup>&#x0002B;</sup> T cells (<xref ref-type="bibr" rid="B44">44</xref>). In summary, studies of the role of polyfunctional CD4<sup>&#x0002B;</sup> T cells in mediating vaccine-induced protection in the mouse TB vaccine model provide evidence that these T cell responses represent at best an imperfect correlate of protection. In addition, these data can neither confirm nor refute CD4<sup>&#x0002B;</sup> polyfunctional T cells as a mechanistic correlate of protection&#x02014;i.e., a causal relationship between the vaccine-induced polyfunctional CD4<sup>&#x0002B;</sup> T cell responses and control of bacterial replication following challenge is uncertain and cannot be ruled in or ruled out based upon these studies.</p>
</sec>
<sec id="S5">
<title>TB Vaccines Induce Polyfunctional T Cells in Humans</title>
<p>Bacille Calmette Guerin and novel TB vaccine candidates utilizing various antigens and vaccine platforms induce polyfunctional CD4<sup>&#x0002B;</sup> T cells in infants, older children and adults. These T cell populations include memory T cell populations that persist for months to years after vaccination.</p>
<sec id="S5-1">
<title>BCG and Other Live Mycobacterial Vaccines Elicit Polyfunctional T Cells</title>
<p>Several studies have demonstrated that BCG induces CD4<sup>&#x0002B;</sup> polyfunctional T cells in infants (Table <xref ref-type="table" rid="T4">4</xref>). BCG induces mycobacteria-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells, in healthy infants from South Africa (<xref ref-type="bibr" rid="B59">59</xref>&#x02013;<xref ref-type="bibr" rid="B62">62</xref>), Uganda (<xref ref-type="bibr" rid="B63">63</xref>), Australia (<xref ref-type="bibr" rid="B64">64</xref>, <xref ref-type="bibr" rid="B65">65</xref>), and the UK (<xref ref-type="bibr" rid="B66">66</xref>). These T cell responses represented the predominant subset among cytokine-producing T cells (<xref ref-type="bibr" rid="B59">59</xref>, <xref ref-type="bibr" rid="B60">60</xref>, <xref ref-type="bibr" rid="B66">66</xref>) peaked between 6 and 10&#x02009;weeks of age and persisted for at least 1 year (<xref ref-type="bibr" rid="B60">60</xref>, <xref ref-type="bibr" rid="B66">66</xref>). Comparison to unimmunized infants demonstrated that the polyfunctional T cell response was elicited by BCG and not by exposure to environmental mycobacteria (<xref ref-type="bibr" rid="B60">60</xref>, <xref ref-type="bibr" rid="B66">66</xref>). Studies of Australian infants (<xref ref-type="bibr" rid="B65">65</xref>), South African infants (<xref ref-type="bibr" rid="B60">60</xref>), and Ugandan infants (<xref ref-type="bibr" rid="B63">63</xref>) compared BCG immunization at birth to delayed immunization at 6&#x02013;10&#x02009;weeks. These studies in general demonstrated no differences in polyfunctional CD4<sup>&#x0002B;</sup> T cell responses during the first few weeks following immunization. However, South African infants who received delayed BCG had higher polyfunctional CD4<sup>&#x0002B;</sup> T cell responses at 1 year of age than did those receiving BCG at birth (<xref ref-type="bibr" rid="B60">60</xref>). Also, Ritz et al. showed that BCG (Denmark, SSI) and BCG (Japan, Tokyo-172) induced higher polyfunctional CD4<sup>&#x0002B;</sup> T cell responses than did BCG (Russian, SL-222), which correlated with more severe local reactions to the vaccine (<xref ref-type="bibr" rid="B64">64</xref>). BCG at birth also induced polyfunctional CD4<sup>&#x0002B;</sup> T cell responses in HIV-infected infants, though at decreased numbers relative to HIV-exposed/uninfected infants and HIV-unexposed infants (<xref ref-type="bibr" rid="B61">61</xref>). Finally, Loxton et al. compared the immunogenicity of BCG to recombinant BCG, VPM1002, in healthy South African newborns and demonstrated comparable frequencies of polyfunctional CD4<sup>&#x0002B;</sup> T cell responses 6&#x02009;weeks, 18&#x02009;weeks and 6&#x02009;months after vaccination (<xref ref-type="bibr" rid="B67">67</xref>). Thus, ample evidence demonstrates that BCG induces polyfunctional CD4<sup>&#x0002B;</sup> T cells in human infants.</p>
<table-wrap position="float" id="T4">
<label>Table 4</label>
<caption><p>TB vaccines induce polyfunctional CD4<sup>&#x0002B;</sup> T cells in human infants.</p></caption>
<table frame="hsides" rules="groups">
<thead>
<tr>
<th valign="top" align="left">Vaccine</th>
<th valign="top" align="left">Study design</th>
<th valign="top" align="left">IA</th>
<th valign="top" align="left">Conclusions</th>
<th valign="top" align="left">Reference</th>
</tr>
</thead>
<tbody>
<tr>
<td align="left" valign="top">BCG (SSI)</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: healthy South African infants born at term; HIV-uninfected/unexposed, TB uninfected/unexposed<break/><italic>Immunization</italic>: BCG i.d. (&#x0002B;0)<break/><italic>Randomized</italic>: birth (<italic>n</italic>&#x02009;&#x0003D;&#x02009;25) vs 10&#x02009;weeks (<italic>n</italic>&#x02009;&#x0003D;&#x02009;21)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: BCG<break/><italic>Immunogenicity</italic>: (&#x0002B;10, &#x0002B;20, &#x0002B;50 weeks)</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were readily detected in both cohorts, which peaked 10 weeks after vaccination. No 3<sup>&#x0002B;</sup> T cells were detected pre-vaccination in the 10-weeks delayed cohort. 3<sup>&#x0002B;</sup> T cells persisted at 1&#x02009;year and the magnitude was greater in the BCG delayed than in the BCG at birth cohort</td>
<td align="left" valign="top">Kagina et al. (<xref ref-type="bibr" rid="B60">60</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (Japanese)</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: 2-year follow-up of healthy South African infants born at term<break/>HIV-uninfected/unexposed<break/>TB (Cx<sup>&#x0002B;</sup>; <italic>n</italic>&#x02009;&#x0003D;&#x02009;29)<break/>Healthy Mtb exposed (<italic>n</italic>&#x02009;&#x0003D;&#x02009;55)<break/>Healthy Mtb unexposed (<italic>n</italic>&#x02009;&#x0003D;&#x02009;55)<break/><italic>Immunization</italic>: BCG (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: BCG<break/><italic>Immunogenicity</italic>: (&#x0002B;10 weeks)</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were equivalent in the TB, TB exposed, and TB unexposed cohorts. There was no correlation between 3<sup>&#x0002B;</sup> T cells at 10 weeks and development of TB within 2 years</td>
<td align="left" valign="top">Kagina et al. (<xref ref-type="bibr" rid="B62">62</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (SSI)</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: South African infants born at term<break/>HIV-infected (ART na&#x000EF;ve, <italic>n</italic>&#x02009;&#x0003D;&#x02009;20)<break/>HIV-exposed (<italic>n</italic>&#x02009;&#x0003D;&#x02009;25)<break/>HIV-unexposed (<italic>n</italic>&#x02009;&#x0003D;&#x02009;25)<break/>HIV was ART na&#x000EF;ve<break/><italic>Immunization</italic>: BCG i.d. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: BCG<break/><italic>Immunogenicity</italic>: (&#x0002B;3, &#x0002B;6, &#x0002B;9, &#x0002B;12 months)</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were equivalent in the HIV-exposed and HIV-unexposed cohorts and decreased in the HIV-infected, ART na&#x000EF;ve cohort. 3<sup>&#x0002B;</sup> T cells peaked at 3 months in all cohorts</td>
<td align="left" valign="top">Mansoor et al. (<xref ref-type="bibr" rid="B61">61</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (SSI)</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: healthy South African infants born at term; HIV-uninfected/unexposed, TB uninfected/unexposed (<italic>n</italic>&#x02009;&#x0003D;&#x02009;29)<break/><italic>Immunization</italic>: BCG i.d. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: BCG<break/><italic>Immunogenicity</italic>: (&#x0002B;10 weeks)</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were readily detected at 10&#x02009;weeks after immunization</td>
<td align="left" valign="top">Soares et al. (<xref ref-type="bibr" rid="B59">59</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: healthy BCG-immunized Ugandan infants, 9&#x02009;months old; HIV-uninfected/unexposed, Mtb unexposed<break/><italic>Immunization</italic>: BCG at birth (<italic>n</italic>&#x02009;&#x0003D;&#x02009;50)<break/>BCG at 6 weeks of age: (<italic>n</italic>&#x02009;&#x0003D;&#x02009;42)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: BCG<break/><italic>Immunogenicity</italic>: once at 9 months of age</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were readily detected in both cohorts and were of comparable magnitude in infants immunized at birth and at 6&#x02009;weeks of age</td>
<td align="left" valign="top">Lutwama et al. (<xref ref-type="bibr" rid="B63">63</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG Danish (SSI)<break/>Japan (Tokyo-172)<break/>Russia (SL-222)</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: healthy Australian infants born at term; HIV-uninfected/unexposed, TB uninfected/unexposed<break/><italic>Immunization</italic>: BCG i.d. (&#x0002B;0)<break/>Denmark (<italic>n</italic>&#x02009;&#x0003D;&#x02009;54)<break/>Japan (<italic>n</italic>&#x02009;&#x0003D;&#x02009;54)<break/>Russia (<italic>n</italic>&#x02009;&#x0003D;&#x02009;57)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: BCG; PPD; heat-killed Mtb (H37Rv)<break/><italic>Immunogenicity</italic>: (&#x0002B;10 weeks)</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were equivalent in infants immunized with the Danish and Japanese BCG strains. BCG- and PPD-specific 3<sup>&#x0002B;</sup> T cells, as well as the local reaction sizes, were greater in infants immunized with the Danish and Japanese BCG strains, than in those immunized with the Russian BCG strain</td>
<td align="left" valign="top">Ritz et al. (<xref ref-type="bibr" rid="B64">64</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (SSI)</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: healthy Australian infants born at term; HIV-uninfected/unexposed<break/><italic>Immunization</italic>: BCG i.d. (&#x0002B;0)<break/>Birth (<italic>n</italic>&#x02009;&#x0003D;&#x02009;54)<break/>2 months (<italic>n</italic>&#x02009;&#x0003D;&#x02009;44)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: BCG; PPD; heat-killed Mtb (H37Rv)<break/><italic>Immunogenicity</italic>: (&#x0002B;10 weeks)</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were a minor subset and equivalent in infants immunized at birth and at 2&#x02009;months of age</td>
<td align="left" valign="top">Ritz et al. (<xref ref-type="bibr" rid="B65">65</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (SSI)</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: healthy term infants born in the UK; HIV-uninfected/unexposed<break/><italic>Immunization</italic>: BCG i.d. at 5.6 (4.3&#x02013;8 weeks; <italic>n</italic>&#x02009;&#x0003D;&#x02009;24) BCG na&#x000EF;ve (<italic>n</italic>&#x02009;&#x0003D;&#x02009;15)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: PPD<break/><italic>Immunogenicity</italic>: (&#x0002B;4&#x02009;months and &#x0002B;1 year of age)</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were a major subset at 4 months and 1&#x02009;year of age. No 3<sup>&#x0002B;</sup> T cells were detected in BCG na&#x000EF;ve infants</td>
<td align="left" valign="top">Smith et al. (<xref ref-type="bibr" rid="B66">66</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (SSI)<break/>VPM1002</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: open-label, randomized Phase II study of healthy South African infants born at term; HIV-uninfected/unexposed<break/><italic>Immunization</italic>: BCG i.d. (&#x0002B;0; <italic>n</italic>&#x02009;&#x0003D;&#x02009;12)<break/>VPM1002 i.d. (&#x0002B;0; <italic>n</italic>&#x02009;&#x0003D;&#x02009;36)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: PPD, BCG<break/><italic>Immunogenicity</italic>: (&#x0002B;6, &#x0002B;18 weeks, &#x0002B;6 months)</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were equivalent in infants immunized with BCG or VPM1002, 6&#x02009;weeks, 18&#x02009;weeks, and 6&#x02009;months after vaccination</td>
<td align="left" valign="top">Loxton et al. (<xref ref-type="bibr" rid="B67">67</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG<break/>AERAS-402</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: double-blinded, randomized placebo-controlled trial in South Africa, Kenya, and Mozambique<break/>Healthy BCG-immunized infants, 16&#x02013;26 weeks-old; HIV-uninfected; Mtb-uninfected<break/><italic>Immunization</italic>: AERAS-402 i.m. (&#x0002B;0, &#x0002B;28, &#x0002B;280&#x02009;days; <italic>n</italic>&#x02009;&#x0003D;&#x02009;60)<break/>Placebo (vaccine buffer) i.m. (&#x0002B;0, &#x0002B;28, &#x0002B;280&#x02009;days; <italic>n</italic>&#x02009;&#x0003D;&#x02009;55)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: Ag85A; Ag85B; TB10.4 (p.p.)<break/><italic>Immunogenicity</italic>: [&#x0002B;308, study end (&#x0002B;448&#x02013;664&#x02009;days)]</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were detected 308&#x02009;days after the first immunization and at the end of the study (448&#x02013;664&#x02009;days). These responses were lower than had been observed in BCG-immunized adults in a prior study</td>
<td align="left" valign="top">Tameris et al. (<xref ref-type="bibr" rid="B68">68</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG<break/>MVA85A</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: open-label Phase 2a trial of healthy BCG-immunized South African infants, 5&#x02013;12 months old; HIV-uninfected, Mtb-uninfected<break/><italic>Immunization</italic>: MVA85A i.d. (&#x0002B;0; <italic>n</italic>&#x02009;&#x0003D;&#x02009;18)<break/>Prevnar i.m. (<italic>n</italic>&#x02009;&#x0003D;&#x02009;12)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells; GM-CSF; IL-17<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: Ag85A (p.p.)<break/><italic>Immunogenicity</italic>: [&#x0002B;0, &#x0002B;28, &#x0002B;168&#x02009;days; and 3.3 (3.2&#x02013;3.5 years)]</td>
<td align="left" valign="top">MVA85A boost to BCG induced a major subset of 3<sup>&#x0002B;</sup> T cells, the majority of which co-expressed GM-CSF, and a minority of which also co-expressed IL-17. These responses peaked at 28&#x02009;days and persisted over 3&#x02009;years following immunization. 3<sup>&#x0002B;</sup> T cells at 3&#x02009;years displayed predominantly an effector memory phenotype (CD45RA<sup>neg</sup>CCR7<sup>neg</sup>)</td>
<td align="left" valign="top">Scriba et al. (<xref ref-type="bibr" rid="B69">69</xref>) and Tameris et al. (<xref ref-type="bibr" rid="B70">70</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (SSI)<break/>MVA85A</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: double-blind Phase 2b trial in healthy BCG-immunized South African infants 4&#x02013;6 months old; HIV-uninfected, Mtb-uninfected/unexposed<break/><italic>Immunization</italic>: MVA85A i.d. (&#x0002B;0; <italic>n</italic>&#x02009;&#x0003D;&#x02009;17)<break/>Candin i.d. (&#x0002B;0; <italic>n</italic>&#x02009;&#x0003D;&#x02009;19)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: Ag85A (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;28&#x02009;days)</td>
<td align="left" valign="top">MVA85A boost to BCG elicited 3<sup>&#x0002B;</sup> T cells 28&#x02009;days after immunization, which were not present prior to vaccination or in placebo recipients. No significant efficacy against Mtb infection or TB disease as compared to BCG alone was observed. These 3<sup>&#x0002B;</sup> T cell responses were lower than had been observed in BCG-immunized adults in a prior study</td>
<td align="left" valign="top">Tameris et al. (<xref ref-type="bibr" rid="B3">3</xref>)</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<p><italic>SSI, Staten Serum Institute; VPM1002, recombinant BCG which is urease C deficient and expressing membrane-perforating listerolysin (<italic>L. monocytogenes</italic>); AERAS-402, adenoviral vector (Ad35) expressing Ag85A, Ag85B, and TB10.4; MVA85A, modified vaccinia Ankara expressing Ag85A. ART, anti-retroviral therapy; Prevnar, pneumococcal 7-valent conjugate vaccine (Wyeth); Candin, <italic>Candida</italic> skin test antigen; i.m., intramuscular; i.d., intradermal; 3<sup>&#x0002B;</sup>, IFN-&#x003B3;<sup>&#x0002B;</sup>TNF-&#x003B1;<sup>&#x0002B;</sup>IL-2<sup>&#x0002B;</sup>; PBMC, peripheral blood mononuclear cells; p.p., peptide pool; BCG, Bacille Calmette Guerin; TB, tuberculosis; Mtb, <italic>M. tuberculosis</italic>; IA, immune assay</italic>.</p>
<p><italic>Minor subset&#x02009;&#x0003D;&#x02009;subset that constitutes &#x0003C;20% of the total cytokine-producing cells; major subset&#x02009;&#x0003D;&#x02009;subset that constitutes &#x0003E;50% of the total cytokine-producing cells</italic>.</p>
</table-wrap-foot>
</table-wrap>
<p>Fewer studies have evaluated polyfunctional CD4<sup>&#x0002B;</sup> T cells in BCG-immunized adults (Table <xref ref-type="table" rid="T5">5</xref>). Two small studies of adults with a remote history of BCG immunization demonstrated mycobacteria-specific polyfunctional CD4<sup>&#x0002B;</sup> T cell responses in these individuals, which represented the predominant subset of cytokine-producing cells (<xref ref-type="bibr" rid="B9">9</xref>, <xref ref-type="bibr" rid="B71">71</xref>) and displayed a memory phenotype (<xref ref-type="bibr" rid="B71">71</xref>). In a small study of BCG na&#x000EF;ve, Mtb-uninfected adults immunized with BCG, BCG-specific polyfunctional CD4<sup>&#x0002B;</sup> T cell responses were variably detected and when present, peaked 8 weeks following vaccination, demonstrated an effector phenotype and correlated with local inflammation at the vaccination site (<xref ref-type="bibr" rid="B72">72</xref>). These responses waned by 1 year after vaccination. Consistent with these results, no polyfunctional CD4<sup>&#x0002B;</sup> T cell responses were observed in British adolescents 1 year after BCG vaccination (<xref ref-type="bibr" rid="B73">73</xref>). Finally, Spertini et al. compared the immunogenicity of BCG with MTBVAC, a live attenuated strain of Mtb, in a randomized double-blind Phase I trial of BCG na&#x000EF;ve, Mtb-uninfected Swiss adults (<xref ref-type="bibr" rid="B74">74</xref>). Both BCG and MTBVAC induced MTBVAC- and BCG-specific polyfunctional CD4<sup>&#x0002B;</sup> T cell responses that persisted up to 210&#x02009;days after vaccination. Therefore, although the evidence is less abundant than for infants, live mycobacterial vaccines also induce polyfunctional CD4<sup>&#x0002B;</sup> T cell responses in adults.</p>
<table-wrap position="float" id="T5">
<label>Table 5</label>
<caption><p>TB vaccines induce polyfunctional CD4<sup>&#x0002B;</sup> T cells in human children, adolescents, and adults.</p></caption>
<table frame="hsides" rules="groups">
<thead>
<tr>
<th valign="top" align="left">Vaccine</th>
<th valign="top" align="left">Study design</th>
<th valign="top" align="left">IA</th>
<th valign="top" align="left">Conclusions</th>
<th valign="top" align="left">Reference</th>
</tr>
</thead>
<tbody>
<tr>
<td align="left" valign="top">BCG</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: BCG-immunized adults from the United States; Mtb-uninfected (RD-1 ELISPOTneg), no history of TB (<italic>n</italic>&#x02009;&#x0003D;&#x02009;20)<break/><italic>Immunization</italic>: BCG (remote)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: Mtb cell wall<break/><italic>Immunogenicity</italic>: once (unknown timing)</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were detected as a major subset in adults with a remote history of BCG immunization</td>
<td align="left" valign="top">Adekambi et al. (<xref ref-type="bibr" rid="B71">71</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: BCG-immunized adults (<italic>n</italic>&#x02009;&#x0003D;&#x02009;4)<break/><italic>Immunization</italic>: BCG (remote)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: PPD<break/><italic>Immunogenicity</italic>: once (unknown timing)</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were detected as a major subset in adults with a remote history of BCG immunization</td>
<td align="left" valign="top">Darrah et al. (<xref ref-type="bibr" rid="B9">9</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (SSI)</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: BCG na&#x000EF;ve adults from the Netherlands; Mtb-uninfected (TSTneg, QFTneg, <italic>n</italic>&#x02009;&#x0003D;&#x02009;12)<break/><italic>Immunization</italic>: BCG i.d. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: BCG<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;4, &#x0002B;8, &#x0002B;12, &#x0002B;52 weeks)</td>
<td align="left" valign="top">BCG induced 3<sup>&#x0002B;</sup> T cells in some individuals with a greater local skin reaction. When observed, 3<sup>&#x0002B;</sup> T cells responses peaked 8&#x02009;weeks after immunization</td>
<td align="left" valign="top">Boer et al. (<xref ref-type="bibr" rid="B72">72</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">BCG (SSI)</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: BCG na&#x000EF;ve adolescents from UK (<italic>n</italic>&#x02009;&#x0003D;&#x02009;8)<break/><italic>Immunization</italic>: BCG (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: PPD<break/><italic>Immunogenicity</italic>: (&#x0002B;12&#x02009;months)</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were not detectable in adolescents 1 year after BCG vaccination</td>
<td align="left" valign="top">Smith et al. (<xref ref-type="bibr" rid="B73">73</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">MTBVAC<break/>BCG (SSI)</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: randomized double-blind Phase I trial of BCG naive adults from Switzerland; BCG na&#x000EF;ve, HIV-uninfected, Mtb-uninfected (RD-1 ELISPOTneg)<break/><italic>Immunization</italic>: MTBVAC i.d. (5&#x02009;&#x000D7;&#x02009;10<sup>3</sup>, 5&#x02009;&#x000D7;&#x02009;10<sup>4</sup>, 5&#x02009;&#x000D7;&#x02009;10<sup>5</sup> CFU; &#x0002B;0, <italic>n</italic>&#x02009;&#x0003D;&#x02009;9, each dose)<break/>BCG i.d. (&#x0002B;0, <italic>n</italic>&#x02009;&#x0003D;&#x02009;9)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: MTBVAC; BCG<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;28, &#x0002B;90, &#x0002B;210&#x02009;days)</td>
<td align="left" valign="top">BCG and MTBVAC induced 3<sup>&#x0002B;</sup> T cells to both BCG and MTBVAC stimulations. MTBVAC at the highest dose (5&#x02009;&#x000D7;&#x02009;10<sup>5</sup> CFU) induced 3<sup>&#x0002B;</sup> T cells, which were still detectable 210&#x02009;days after immunization</td>
<td align="left" valign="top">Spertini et al. (<xref ref-type="bibr" rid="B74">74</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">H4:IC31</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: double-blind, Phase I trial of South African adults; BCG-immunized (remote), HIV-uninfected, Mtb-uninfected (QFTneg), no TB<break/><italic>Immunization</italic>: H4 in IC31 i.m. (5, 15, 50, 150&#x02009;&#x003BC;g; &#x0002B;0, &#x0002B;56&#x02009;days; <italic>n</italic>&#x02009;&#x0003D;&#x02009;8, each dose)<break/>Saline i.m. (&#x0002B;0, &#x0002B;56&#x02009;days; <italic>n</italic>&#x02009;&#x0003D;&#x02009;8)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: Ag85B; TB10.4 (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;14, &#x0002B;28, &#x0002B;56, &#x0002B;70, &#x0002B;84, &#x0002B;182&#x02009;days)</td>
<td align="left" valign="top">H4:IC31 induced 3<sup>&#x0002B;</sup> T cells in Mtb-uninfected, BCG-immunized adults. While all doses elicited 3<sup>&#x0002B;</sup> cells, lower doses induced greater frequency 3<sup>&#x0002B;</sup> T cells than did the highest dose (150&#x02009;&#x003BC;g) and the highest magnitude response was 84&#x02009;days after immunization (15&#x02009;&#x003BC;g)</td>
<td align="left" valign="top">Geldenhuys et al. (<xref ref-type="bibr" rid="B75">75</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">H56:IC31</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: open-label Phase I trial of South African adults; BCG-immunized (remote, assumed), HIV-uninfected, no TB disease, Mtb infections defined with QFT<break/><italic>Immunization</italic>: rH56 in IC31 i.m. (&#x0002B;0, &#x0002B;56, &#x0002B;112&#x02009;days)<break/>Mtb-uninfected (50&#x02009;&#x003BC;g, <italic>n</italic>&#x02009;&#x0003D;&#x02009;8)<break/>Mtb-infected (15&#x02009;&#x003BC;g, <italic>n</italic>&#x02009;&#x0003D;&#x02009;8)<break/>Mtb-infected (50&#x02009;&#x003BC;g, <italic>n</italic>&#x02009;&#x0003D;&#x02009;8)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells, CD45RA, CCR7<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: H56<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;70, &#x0002B;210&#x02009;days)</td>
<td align="left" valign="top">H56:IC31 induced 3<sup>&#x0002B;</sup> T cells in both Mtb-infected and Mtb-uninfected BCG-immunized adults. 3<sup>&#x0002B;</sup> T cell responses were greater in Mtb-infected than in Mtb-uninfected individuals, comprised a predominant subset at &#x0002B;70&#x02009;days and persisted at least to &#x0002B;210&#x02009;days. At &#x0002B;210&#x02009;days, 3<sup>&#x0002B;</sup> T cells displayed a central memory (CD45RA-CCR7<sup>&#x0002B;</sup>) or effector memory (CD45RA-CCR7-) phenotype. Among Mtb-infected individuals, the low dose (15&#x02009;&#x003BC;g) elicited greater frequencies of 3<sup>&#x0002B;</sup> T cells than the high dose (50&#x02009;&#x003BC;g)</td>
<td align="left" valign="top">Luabeya et al. (<xref ref-type="bibr" rid="B76">76</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">H1:IC31</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: observer-blinded Phase II trial of South African adolescents (12&#x02013;18&#x02009;years old); BCG-immunized at birth, HIV-uninfected, no TB disease, comparison of Mtb-infected (QFTpos; <italic>n</italic>&#x02009;&#x0003D;&#x02009;25) to Mtb-infected (QFTneg; <italic>n</italic>&#x02009;&#x0003D;&#x02009;35) individuals<break/><italic>Immunization</italic>: H1 in IC31 i.m. (15&#x02009;&#x003BC;g; &#x0002B;0, &#x0002B;56&#x02009;days)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: Ag85B; ESAT-6 (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;14, &#x0002B;56, &#x0002B;70, &#x0002B;224&#x02009;days)</td>
<td align="left" valign="top">H1:IC31 induced 3<sup>&#x0002B;</sup> T cell responses over baseline in both Mtb-infected and Mtb-uninfected adolescents, which comprised a predominant subset in both cohorts, and persisted at least to &#x0002B;70&#x02009;days in Mtb-infected and to &#x0002B;224&#x02009;days in Mtb-uninfected individuals</td>
<td align="left" valign="top">Mearns et al. (<xref ref-type="bibr" rid="B77">77</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">H1:IC31</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: randomized double-blind Phase II trial of HIV-infected adults from Tanzania; CD4 counts &#x0003E;350, ARV na&#x000EF;ve, no TB disease<break/><italic>Immunization</italic>: H1 in IC31 i.m. (&#x0002B;0, &#x0002B;56&#x02009;days; <italic>n</italic>&#x02009;&#x0003D;&#x02009;20)<break/>Buffer i.m. (&#x0002B;0, &#x0002B;56&#x02009;days; <italic>n</italic>&#x02009;&#x0003D;&#x02009;4)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: H1<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;14, &#x0002B;56, &#x0002B;70, &#x0002B;182&#x02009;days)</td>
<td align="left" valign="top">H1:IC31 induces a predominant subset of 3<sup>&#x0002B;</sup> T cells in HIV-infected adults, which peak 70&#x02009;days and persist at least 182&#x02009;days after initiation of immunization</td>
<td align="left" valign="top">Reither et al. (<xref ref-type="bibr" rid="B78">78</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">Mtb72F: AS02<sub>A</sub></td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: randomized observer blind Phase I/II trial of adults from Switzerland; HIV-uninfected, compared BCG-immunized (remote, <italic>n</italic>&#x02009;&#x0003D;&#x02009;20) to Mtb-infected (TST<sup>&#x0002B;</sup>, <italic>n</italic>&#x02009;&#x0003D;&#x02009;18; included subset with history of TB disease, <italic>n</italic>&#x02009;&#x0003D;&#x02009;5)<break/><italic>Immunization</italic>: Mtb72F in AS02<sub>A</sub> i.m. (&#x0002B;0, &#x0002B;1, &#x0002B;3 months)<break/>AS02<sub>A</sub> i.m. (&#x0002B;0, &#x0002B;1, &#x0002B;3 months)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells, CD40L<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: Mtb32A; Mtb39A (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;60, &#x0002B;90, &#x0002B;240&#x02009;days)</td>
<td align="left" valign="top">In both Mtb-infected and BCG-immunized adults, 3<sup>&#x0002B;</sup> T cells were detected before immunization. Also in both cohorts, Mtb72F:AS02<sub>A</sub>, but not AS02<sub>A</sub> alone, resulted in increased 3<sup>&#x0002B;</sup> T cells after the second vaccination, which were not further boosted by the third vaccination, and persisted at least to &#x0002B;240&#x02009;days. A predominant subset in both cohorts also expressed CD40L</td>
<td align="left" valign="top">Spertini et al. (<xref ref-type="bibr" rid="B79">79</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">M72:AS01<sub>B</sub><break/>M72:AS02<sub>A</sub></td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: randomized observer blind Phase I/II trial of adults from Belgium; HIV-uninfected, Mtb-uninfected (TSTneg)<break/><italic>Immunization</italic>: M72 in AS01<sub>B</sub> i.m. (&#x0002B;0, &#x0002B;1 month; <italic>n</italic>&#x02009;&#x0003D;&#x02009;40)<break/>M72 in AS02<sub>A</sub> i.m. (&#x0002B;0, &#x0002B;1 month; <italic>n</italic>&#x02009;&#x0003D;&#x02009;40)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells, CD40L<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: M72 (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;1, &#x0002B;2, &#x0002B;12, &#x0002B;24, &#x0002B;36 months)</td>
<td align="left" valign="top">M72:AS01<sub>B</sub> and M72:AS02<sub>A</sub> induced 3<sup>&#x0002B;</sup> T cells first detected 1 month after the second immunization (&#x0002B;2 months), which persisted to least 36&#x02009;months. 3<sup>&#x0002B;</sup> T cell responses were greater in M72:AS01<sub>B</sub> than in M72:AS02<sub>A</sub> immunized individuals. The majority of the 3<sup>&#x0002B;</sup> T-cell response co-expressed CD40L</td>
<td align="left" valign="top">Leroux-Roels et al. (<xref ref-type="bibr" rid="B80">80</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">M72: AS01<sub>E</sub></td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: open-label, Phase II trial of South African adults; HIV-uninfected; BCG-immunized (remote), Mtb-infected (TSTpos, 67%); no TB disease (<italic>n</italic>&#x02009;&#x0003D;&#x02009;45)<break/><italic>Immunization</italic>: M72 in AS01<sub>E</sub> i.m. (&#x0002B;0, &#x0002B;30&#x02009;days)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: M72<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;7, &#x0002B;30, &#x0002B;37, &#x0002B;60, &#x0002B;210&#x02009;days)</td>
<td align="left" valign="top">M72:AS01<sub>E</sub> induced 3<sup>&#x0002B;</sup> T cell responses over baseline, which comprised a predominant subset, and persisted at least to &#x0002B;210&#x02009;days</td>
<td align="left" valign="top">Day et al. (<xref ref-type="bibr" rid="B81">81</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">M72:AS01<sub>E</sub></td>
<td align="left" valign="top"><italic>Cohorts</italic>: double-blind, randomized Phase II trial of South African adolescents; HIV-uninfected, BCG-immunized (at birth); Mtb-infected (QFTpos; 53%); no TB disease<break/><italic>Immunization</italic>: M72 in AS01<sub>E</sub> i.m. (&#x0002B;0, &#x0002B;30&#x02009;days; <italic>n</italic>&#x02009;&#x0003D;&#x02009;40)<break/>Saline i.m. (&#x0002B;0, &#x0002B;30&#x02009;days; <italic>n</italic>&#x02009;&#x0003D;&#x02009;20)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells, CD40L<break/><italic>Cellular Source</italic>: whole blood and PBMC<break/><italic>Antigen(s)</italic>: M72 (p.p.); M72<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;7, &#x0002B;30, &#x0002B;37, &#x0002B;60, &#x0002B;120&#x02009;days)</td>
<td align="left" valign="top">M72:AS01<sub>E</sub> induced 3<sup>&#x0002B;</sup> T cell responses over baseline, which comprised a predominant subset, and persisted at least to &#x0002B;210&#x02009;days. 3<sup>&#x0002B;</sup> T cells co-expressed CD40L</td>
<td align="left" valign="top">Penn-Nicholson et al. (<xref ref-type="bibr" rid="B82">82</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">M72:AS01<sub>E</sub></td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: randomized, observer blind, Phase II trial of adults from India; no history of TB disease, comparison of HIV-infected on stable ART (<italic>n</italic>&#x02009;&#x0003D;&#x02009;80) to ART na&#x000EF;ve HIV-infected (<italic>n</italic>&#x02009;&#x0003D;&#x02009;80) to HIV-uninfected (<italic>n</italic>&#x02009;&#x0003D;&#x02009;80)<break/><italic>Immunization</italic>: M72 in AS01<sub>E</sub> i.m. (&#x0002B;0, &#x0002B;1 month; <italic>n</italic>&#x02009;&#x0003D;&#x02009;40, each cohort)<break/>Saline i.m. (&#x0002B;0, &#x0002B;1 month; <italic>n</italic>&#x02009;&#x0003D;&#x02009;40 each cohort)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells, CD40L<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: M72 (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;7, &#x0002B;30, &#x0002B;37, &#x0002B;60&#x02009;days, &#x0002B;7, &#x0002B;13 months)</td>
<td align="left" valign="top">In all cohorts, 3<sup>&#x0002B;</sup> T cells were detected before immunization. Also in the cohorts receiving, M72, but not those receiving placebo, M72 resulted in increased 3<sup>&#x0002B;</sup> T cells, which peaked 37&#x02009;days after immunization and persisted at least 13&#x02009;months. A predominant subset in both cohorts also expressed CD40L</td>
<td align="left" valign="top">Kumarasamy et al. (<xref ref-type="bibr" rid="B83">83</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">M72: AS01<sub>E</sub></td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: randomized, observer blind, Phase I/II trial of HIV-infected adults from Switzerland on ART; No history of TB disease, CD4 &#x0003E;200, BCG-immunized (73%), Mtb-infected (QFT<sup>&#x0002B;</sup>, 3%)<break/><italic>Immunization</italic>: M72 in AS01<sub>E</sub> i.m. (&#x0002B;0, &#x0002B;1 month; <italic>n</italic>&#x02009;&#x0003D;&#x02009;22)<break/>AS01<sub>E</sub> i.m. (&#x0002B;0, &#x0002B;1 month; <italic>n</italic>&#x02009;&#x0003D;&#x02009;8)<break/>Saline i.m. (&#x0002B;0, &#x0002B;1 month; <italic>n</italic>&#x02009;&#x0003D;&#x02009;7)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells, CD40L<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: M72 (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;30, &#x0002B;60, &#x0002B;201&#x02009;days)</td>
<td align="left" valign="top">M72:AS01<sub>E</sub> induced 3<sup>&#x0002B;</sup> T cells in HIV-infected adults that peaked at &#x0002B;60&#x02009;days and persisted at &#x0002B;210&#x02009;days. All 3<sup>&#x0002B;</sup> T cells co-expressed CD40L</td>
<td align="left" valign="top">Thacher et al. (<xref ref-type="bibr" rid="B84">84</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">AERAS-402</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: randomized, double-blind, Phase I trial of BCG-immunized adults from South Africa; HIV-uninfected, Mtb-uninfected (QFTneg and TSTneg)<break/><italic>Immunization</italic>: AERAS-402 i.m. (3&#x02009;&#x000D7;&#x02009;10<sup>8</sup>, 1.3&#x02009;&#x000D7;&#x02009;10<sup>9</sup>, 3&#x02009;&#x000D7;&#x02009;10<sup>10</sup> VP; &#x0002B;0, <italic>n</italic>&#x02009;&#x0003D;&#x02009;7, each dose)<break/>AERAS-402 i.m.(3&#x02009;&#x000D7;&#x02009;10<sup>10</sup> VP; &#x0002B;0, &#x0002B;56; <italic>n</italic>&#x02009;&#x0003D;&#x02009;7)<break/>Diluent i.m. (&#x0002B;0, &#x000B1;56, <italic>n</italic>&#x02009;&#x0003D;&#x02009;12)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: PBMC and whole blood<break/><italic>Antigen(s)</italic>: Ag85A/B, TB10.4 (p.p.)<break/><italic>Immunogenicity</italic>: (0, &#x0002B;7, &#x0002B;28, &#x0002B;84, &#x0002B;182&#x02009;days)</td>
<td align="left" valign="top">In BCG-immunized, Mtb-uninfected adults, AERAS-402 induced 3<sup>&#x0002B;</sup> T cells to all vaccine components that were the predominant subset at &#x0002B;28&#x02009;days, which persisted at &#x0002B;84&#x02009;days, and were not detected at &#x0002B;182&#x02009;days. No differences in immunogenicity were noted in the cohorts that received one dose compared to two doses</td>
<td align="left" valign="top">Abel et al. (<xref ref-type="bibr" rid="B85">85</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">AERAS-402</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: HIV-infected, BCG-immunized South African adults; CD4 &#x0003E;350, no current ARV, Mtb-infected (QFT<sup>&#x0002B;</sup>, 50%)<break/><italic>Immunization</italic>: AERAS-402 i.m. (&#x0002B;0, &#x0002B;1 month; <italic>n</italic>&#x02009;&#x0003D;&#x02009;13)<break/>Buffer i.m. (&#x0002B;0, &#x0002B;1 month; <italic>n</italic>&#x02009;&#x0003D;&#x02009;13)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: Ag85A, Ag85B, TB10.4 (p.p.)<break/><italic>Immunogenicity</italic>: (0, &#x0002B;7, &#x0002B;14, &#x0002B;28, &#x0002B;35, &#x0002B;42, &#x0002B;56, &#x0002B;84, &#x0002B;182&#x02009;days)</td>
<td align="left" valign="top">In HIV-infected, BCG-immunized adults, AERAS-402 induced 3<sup>&#x0002B;</sup> T cells to Ag85A/B, but not to TB10.4, that were the predominant subset and which peaked 2&#x02009;weeks after the second immunization. 3<sup>&#x0002B;</sup> T cell responses were not different in Mtb-infected as compared to Mtb-uninfected individuals</td>
<td align="left" valign="top">Churchyard et al. (<xref ref-type="bibr" rid="B86">86</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">AdHu5Ag85A</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: Phase I trial of adults from Canada: HIV-uninfected; Mtb-uninfected (QFTneg), comparison of BCG-immunized (<italic>n</italic>&#x02009;&#x0003D;&#x02009;12) to BCG na&#x000EF;ve (<italic>n</italic>&#x02009;&#x0003D;&#x02009;12) individuals<break/><italic>Immunization</italic>:AdHu5Ag85A i.m. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: Ag85A (p.p.); Mtb CF<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;2, &#x0002B;4, &#x0002B;8, &#x0002B;24 weeks)</td>
<td align="left" valign="top">AdHu5Ag85A induced 3<sup>&#x0002B;</sup> T cells in both BCG-immunized and BCG na&#x000EF;ve adults, which peaked 2&#x02013;4&#x02009;weeks after vaccination and at some time points represented a predominant subset. 3<sup>&#x0002B;</sup> T cell responses where greater in BCG-immunized than BCG na&#x000EF;ve adults</td>
<td align="left" valign="top">Smaill et al. (<xref ref-type="bibr" rid="B87">87</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">MVA85A</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: open-label Phase I trial of adults from South Africa; HIV-uninfected, Mtb-uninfected (TSTneg), no TB disease, BCG-immunized (50%)<break/><italic>Immunization</italic>: MVA85A i.d. (&#x0002B;0; <italic>n</italic>&#x02009;&#x0003D;&#x02009;24)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: BCG, Ag85A (p.p.)<break/><italic>Immunogenicity</italic>: [&#x02212;14, &#x0002B;7, &#x0002B;168&#x02009;days, &#x0002B;5.7 (5.3&#x02013;6.1) years]</td>
<td align="left" valign="top">In Mtb-uninfected adults, 3<sup>&#x0002B;</sup> T cells were detected before immunization. Then MVA85A boosted 3<sup>&#x0002B;</sup> T cells were a predominant subset and persisted for 5&#x02013;6&#x02009;years after immunization</td>
<td align="left" valign="top">Hawkridge et al. (<xref ref-type="bibr" rid="B88">88</xref>) and Tameris et al. (<xref ref-type="bibr" rid="B70">70</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">MVA85A</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: randomized Phase I trial of BCG-immunized adults from the UK; HIV-uninfected, Mtb-uninfected (RD-1 ELISPOTneg)<break/><italic>Immunization</italic>: MVA85A i.m. &#x0002B;0 (<italic>n</italic>&#x02009;&#x0003D;&#x02009;12)<break/>MVA85 i.d. &#x0002B;0 (<italic>n</italic>&#x02009;&#x0003D;&#x02009;12)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: PPD; Ag85A (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;1, &#x0002B;24 weeks)</td>
<td align="left" valign="top">In BCG-immunized adults, MVA85A, delivered i.m. or i.d. induced 3<sup>&#x0002B;</sup> T cells as a predominant subset equivalently and responses persisted for 24 weeks</td>
<td align="left" valign="top">Meyer et al. (<xref ref-type="bibr" rid="B89">89</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">MVA85A</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: BCG-immunized adults from the UK; HIV-uninfected, Mtb-uninfected (TSTneg; <italic>n</italic>&#x02009;&#x0003D;&#x02009;6)<break/><italic>Immunization</italic>: MVA85A i.d. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells, MIP-1&#x003B2;, CD45RA/RO, CD27, CD57<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: Ag85A (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;1, 2, 8, 24 weeks)</td>
<td align="left" valign="top">MVA85A induced 3<sup>&#x0002B;</sup> T cells in BCG-immunized adults, as a predominant subset that persisted at least 24&#x02009;weeks. Predominant 3<sup>&#x0002B;</sup> T cells subsets co-expressed MIP-1&#x003B2;. 3<sup>&#x0002B;</sup> T cells demonstrated a phenotype consistent with immediate maturity (CD45ROneg/CD27neg/intermediate/CD57neg)</td>
<td align="left" valign="top">Beveridge et al. (<xref ref-type="bibr" rid="B90">90</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">MVA85A</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: open-label Phase IIa trial of South African adults; Mtb infection defined by TST and RD-1 ELISPOT, compared HIV-uninfected, Mtb-infected (<italic>n</italic>&#x02009;&#x0003D;&#x02009;12); HIV-infected, Mtb-uninfected (<italic>n</italic>&#x02009;&#x0003D;&#x02009;12); HIV-infected, Mtb-infected (<italic>n</italic>&#x02009;&#x0003D;&#x02009;12); HIV-infected on ARV (<italic>n</italic>&#x02009;&#x0003D;&#x02009;12)<break/><italic>Immunization</italic>: MVA85A i.d. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: Ag85A (p.p.)<break/><italic>Immunogenicity</italic>: (&#x02212;7 to 14, &#x0002B;7, &#x0002B;28, &#x0002B;84, &#x0002B;364&#x02009;days, 3&#x02013;5&#x02009;years)</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were present prior to immunization in the Mtb-infected, but not the Mtb-uninfected cohorts. MVA85A induced 3<sup>&#x0002B;</sup> T cells in all cohorts, as a predominant subset, which persisted 3&#x02013;5&#x02009;years, except for in the HIV-infected, Mtb-uninfected cohort</td>
<td align="left" valign="top">Scriba et al. (<xref ref-type="bibr" rid="B91">91</xref>) and Tameris et al. (<xref ref-type="bibr" rid="B70">70</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">MVA85A</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: open-label Phase I trial of Mtb-infected adults from the UK; HIV-uninfected, Mtb infection defined with TST and RD-1 ELISPOT, no TB disease (<italic>n</italic>&#x02009;&#x0003D;&#x02009;12)<break/><italic>Immunization</italic>: MVA85A i.d. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells<break/><italic>Cellular Source</italic>: PBMC<break/><italic>Antigen(s)</italic>: Ag85A (p.p.)<break/><italic>Immunogenicity</italic>: (&#x0002B;0, &#x0002B;1, &#x0002B;4, &#x0002B;24 weeks)</td>
<td align="left" valign="top">3<sup>&#x0002B;</sup> T cells were present prior to immunization. MVA85A induced 3<sup>&#x0002B;</sup> T cells as a major subset, which persisted at least 24&#x02009;weeks</td>
<td align="left" valign="top">Sander et al. (<xref ref-type="bibr" rid="B92">92</xref>)</td>
</tr>
<tr>
<td align="left" valign="top" colspan="5"><hr/></td>
</tr>
<tr>
<td align="left" valign="top">MVA85A</td>
<td align="left" valign="top"><italic>Cohort(s)</italic>: open label Phase I/IIa trial of South African, children age 4.3 (1.4&#x02013;7.7) years (<italic>n</italic>&#x02009;&#x0003D;&#x02009;24) and adolescents age (12&#x02013;14 years, <italic>n</italic>&#x02009;&#x0003D;&#x02009;12); HIV-uninfected, Mtb-uninfected; BCG-immunized at birth; no TB disease<break/><italic>Immunization</italic>: MVA85A i.d. (&#x0002B;0)</td>
<td align="left" valign="top"><italic>Cell measured</italic>: CD4<sup>&#x0002B;</sup> 3<sup>&#x0002B;</sup> cells, IL-17, GM-CSF, CD45RA, CCR7<break/><italic>Cellular Source</italic>: whole blood<break/><italic>Antigen(s)</italic>: BCG; Ag85A (p.p.); rAg85A<break/><italic>Immunogenicity</italic>: adolescents: (&#x0002B;7, &#x0002B;28, &#x0002B;168&#x02009;days, &#x0002B;4.6 [4.4&#x02013;4.8] years)<break/>Children: (&#x0002B;7, &#x0002B;84, &#x0002B;168&#x02009;days, &#x0002B;3.7 [3.7&#x02013;3.9] years)</td>
<td align="left" valign="top">MVA85A induced 3<sup>&#x0002B;</sup> T cells in both children and adolescents, as a predominant subset. 3<sup>&#x0002B;</sup> T cells were greater in adolescents than children, peaked at &#x0002B;28 and &#x0002B;84&#x02009;days, in adolescents and children, respectively, and persisted 3&#x02013;5&#x02009;years in both cohorts. In children, a major subset of 3<sup>&#x0002B;</sup> T cells co-expressed IL-17 and GM-CSF. In adolescents, 3<sup>&#x0002B;</sup> T cells co-expressed IL-17 and displayed an effector memory (CD45RAneg/CCR7neg) phenotype</td>
<td align="left" valign="top">Scriba et al. (<xref ref-type="bibr" rid="B69">69</xref>) and Tameris et al. (<xref ref-type="bibr" rid="B70">70</xref>)</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<p><italic>SSI, Staten Serum Institute; MTBVAC, a live attenuated strain of Mtb; H4, recombinant Ag85B/TB10.4 fusion protein; IC31, cationic peptide and oligodeoxynucleotide (ODN1); H56, recombinant Ag85B/ESAT-6/Rv2660c fusion protein; H1, recombinant Ag85B/ESAT-6 fusion protein; Mtb72F, recombinant Mtb32A/Mtb39A fusion protein; AS02<sub>A</sub>, MPL and QS21 in an oil-in-water emulsion; M72, Mtb72F with a point mutation in Mtb32A to improve stability; AS01<sub>B</sub> and AS01<sub>E</sub>, 3-<italic>O</italic>-desacyl-4&#x02032;-monophosphoryl lipid A (MPL) and <italic>Quillaja saponaria</italic> fraction 1 (QS21), combined with liposomes; AERAS-402, Adenoviral vector (Ad35) expressing Ag85A, Ag85B, and TB10.4; AdHu5Ag85A, human adenoviral vector (Ad5) expressing Ag85A; MVA85A, Modified Vaccinia Ankara expressing Ag85A; RD-1 ELISPOT, ELISPOT assay to detect PBMC secreting IFN-&#x003B3; in response to RD-1 antigens, ESAT-6 and CFP-10 as evidence of Mtb infection; TST, tuberculin skin test; QFT, QuantiFERON assay including QuantiFERON Gold and QuantiFERON Gold in-tube; ARV, anti-retroviral therapy; i.m., intramuscular; i.d., intradermal; CFU, Colony Forming Units; VP, viral particles; 3<sup>&#x0002B;</sup>, IFN-&#x003B3;<sup>&#x0002B;</sup>TNF-&#x003B1;<sup>&#x0002B;</sup>IL-2<sup>&#x0002B;</sup>; PBMC, peripheral blood mononuclear cells; p.p., peptide pools; Mtb CF, Mtb culture filtrate; rAg85A, recombinant Ag85A; BCG, Bacille Calmette Guerin; TB, tuberculosis; Mtb, <italic>M. tuberculosis</italic>; IA, immune assay</italic>.</p>
<p><italic>Major subset&#x02009;&#x0003D;&#x02009;subset that constitutes &#x0003E;50% of the total cytokine-producing cells; predominant subset&#x02009;&#x0003D;&#x02009;subset that constitutes 20&#x02013;50% of the total cytokine-producing cells</italic>.</p>
</table-wrap-foot>
</table-wrap>
</sec>
<sec id="S5-2">
<title>Recombinant Protein Subunit Vaccines Elicit Polyfunctional T Cells</title>
<p>Several recombinant antigen TB vaccines have been studied in adults for their capacity to induce polyfunctional CD4<sup>&#x0002B;</sup> T cell responses (Table <xref ref-type="table" rid="T5">5</xref>). Recombinant Ag85B/TB10.4 fusion protein formulated with IC31 adjuvant (H4:IC31), induced H4-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells in previously BCG-vaccinated, Mtb-uninfected South African adults (<xref ref-type="bibr" rid="B75">75</xref>). While all doses induced these T cell responses, lower doses (5 or 15&#x02009;&#x003BC;g) induced higher magnitudes of CD4<sup>&#x0002B;</sup> T cells than higher doses (50 or 150&#x02009;&#x003BC;g), which could be detected up to 182&#x02009;days after vaccination. Recombinant Ag85B/ESAT-6/Rv2660c fusion protein formulated with IC31 (H56:IC31) also induced polyfunctional CD4<sup>&#x0002B;</sup> T cells in both previously BCG-immunized, Mtb-uninfected and Mtb-infected South African adults (<xref ref-type="bibr" rid="B76">76</xref>). Frequencies of these polyfunctional CD4<sup>&#x0002B;</sup> T cells were higher in Mtb-infected than uninfected individuals and comprised the predominant proportion of the cytokine-producing cells 70&#x02009;days after vaccination. These cells persisted, expressing markers of central memory cells, up to 210&#x02009;days after immunization. As in the H4:IC31 study, a lower dose of H56:IC31 resulted in higher proportions of polyfunctional CD4<sup>&#x0002B;</sup> T cells while in recipients of a high 50&#x02009;&#x003BC;g H56 dose, CD4<sup>&#x0002B;</sup> T cells expressing only IFN-&#x003B3; predominated. Recombinant Ag85B/ESAT-6 formulated in IC31 (H1:IC31) induced H1-specific polyfunctional CD4<sup>&#x0002B;</sup> T cells in Mtb-uninfected and infected South African adolescents which persisted at least 70&#x02009;days in Mtb-infected and 224&#x02009;days in Mtb-uninfected individuals (<xref ref-type="bibr" rid="B77">77</xref>), and in HIV-infected Tanzanian adults, which peaked at 70&#x02009;days and persisted for 182&#x02009;days after vaccination (<xref ref-type="bibr" rid="B78">78</xref>). Finally, a recombinant Mtb32A/Mtb39A fusion protein formulated in AS02<sub>A</sub> (Mtb72F:AS02<sub>A</sub>) induced polyfunctional CD4<sup>&#x0002B;</sup> T cells in Mtb-infected and previously BCG-immunized Swiss adults (<xref ref-type="bibr" rid="B79">79</xref>), a recombinant Mtb32A/Mtb39A modified to increase stability formulated in ASO1<sub>B</sub> (M72:ASO1<sub>B</sub>) or in AS02<sub>A</sub> (M72:AS02<sub>A</sub>) induced polyfunctional CD4<sup>&#x0002B;</sup> T cells in BCG na&#x000EF;ve, Mtb-uninfected Belgian adults (<xref ref-type="bibr" rid="B80">80</xref>), and M72 formulated in AS01<sub>E</sub> (M72: AS01<sub>E</sub>) induced polyfunctional CD4<sup>&#x0002B;</sup> T cells in Mtb-infected and uninfected South African adults and adolescents (<xref ref-type="bibr" rid="B81">81</xref>, <xref ref-type="bibr" rid="B82">82</xref>), HIV-infected and uninfected Indian adults (<xref ref-type="bibr" rid="B83">83</xref>), and HIV-infected Swiss adults on anti-retroviral therapy (<xref ref-type="bibr" rid="B84">84</xref>). In the latter study, polyfunctional CD4<sup>&#x0002B;</sup> T cell populations also co-expressed CD40L and persisted from 7&#x02009;months to 3&#x02009;years after immunization. Thus, adjuvanted recombinant protein TB vaccine candidates are good inducers of CD4<sup>&#x0002B;</sup> polyfunctional T cell responses in humans.</p>
</sec>
<sec id="S5-3">
<title>Viral Vector Vaccines Elicit Polyfunctional T Cells</title>
<p>Adenoviral TB vaccine candidates have been studied in a few trials of infants and adults (Tables <xref ref-type="table" rid="T4">4</xref> and <xref ref-type="table" rid="T5">5</xref>). In a Phase I double-blinded randomized placebo-controlled trial of BCG-immunized, Mtb and HIV-uninfected South African adults, an Ad35 expressing Ag85A, Ag85B, and TB10.4 (AERAS-402), induced polyfunctional CD4<sup>&#x0002B;</sup> T cells that constituted the predominant CD4<sup>&#x0002B;</sup> T cell subset 28&#x02009;days after immunization, but this subset was not detectable 182&#x02009;days after immunization (<xref ref-type="bibr" rid="B85">85</xref>). AERAS-402 also induced polyfunctional CD4<sup>&#x0002B;</sup> T cells in BCG-immunized, HIV-infected South African adults, which peaked 42&#x02009;days after the first vaccination (<xref ref-type="bibr" rid="B86">86</xref>). By contrast, in a double-blinded randomized trial of healthy BCG-immunized HIV-uninfected infants performed in South Africa, Kenya, and Mozambique, AERAS-402 induced detectable but low level CD4<sup>&#x0002B;</sup> polyfunctional T cell responses, at frequencies lower than had been observed in BCG-vaccinated adults in the afore mentioned study (<xref ref-type="bibr" rid="B68">68</xref>). Finally, an Ad5 expressing Ag85A vaccine candidate induced polyfunctional CD4<sup>&#x0002B;</sup> T cell responses in both BCG na&#x000EF;ve and previously BCG-vaccinated, Mtb and HIV-uninfected Canadian adults (<xref ref-type="bibr" rid="B87">87</xref>). Polyfunctional CD4<sup>&#x0002B;</sup> T cells comprised the predominant subset of cytokine-producing T cells and peaked at 2&#x02013;4&#x02009;weeks after vaccination. Therefore, adenoviral TB vaccines induce polyfunctional CD4<sup>&#x0002B;</sup> T cell responses in humans that do not persist as long as those induced by protein subunit TB vaccines.</p>
<p>The capacity for MVA expressing A85A (MVA85A) to elicit polyfunctional CD4<sup>&#x0002B;</sup> T cells, as a boost to previous BCG vaccination, has been extensively evaluated in several studies of infants, children, adolescents, and adults (Tables <xref ref-type="table" rid="T4">4</xref> and <xref ref-type="table" rid="T5">5</xref>). MVA85A induced polyfunctional CD4<sup>&#x0002B;</sup> T cell responses in previously BCG-vaccinated Mtb- and HIV-uninfected South African adults (<xref ref-type="bibr" rid="B88">88</xref>), Mtb- and HIV-uninfected British adults (<xref ref-type="bibr" rid="B89">89</xref>, <xref ref-type="bibr" rid="B90">90</xref>), Mtb-infected HIV-uninfected South African adults (<xref ref-type="bibr" rid="B91">91</xref>), Mtb-infected HIV-uninfected British adults (<xref ref-type="bibr" rid="B92">92</xref>), and Mtb- and HIV-uninfected infants (<xref ref-type="bibr" rid="B3">3</xref>, <xref ref-type="bibr" rid="B69">69</xref>), young children (<xref ref-type="bibr" rid="B69">69</xref>) and adolescents (<xref ref-type="bibr" rid="B69">69</xref>). In these studies, polyfunctional CD4<sup>&#x0002B;</sup> T cells represented the predominant subset of cytokine-producing T cells and persisted at least up to 168&#x02009;days after vaccination. Moreover, in a follow-up study of the South Africa cohorts (<xref ref-type="bibr" rid="B69">69</xref>, <xref ref-type="bibr" rid="B88">88</xref>, <xref ref-type="bibr" rid="B91">91</xref>), Tameris et al. demonstrated that MVA85A induced polyfunctional CD4<sup>&#x0002B;</sup> T cell responses persisted 3&#x02013;5&#x02009;years after immunization (<xref ref-type="bibr" rid="B70">70</xref>). Of note, these T cell responses were of lower magnitude in infants (<xref ref-type="bibr" rid="B3">3</xref>) than observed previously in adults (<xref ref-type="bibr" rid="B89">89</xref>). Thus, MVA85A is a potent inducer of polyfunctional CD4<sup>&#x0002B;</sup> T cells responses, which persist for 3&#x02013;5&#x02009;years after vaccination.</p>
</sec>
</sec>
<sec id="S6">
<title>Correlation of Polyfunctional T Cell Responses and Risk of TB in Humans</title>
<p>Understandably little is known about the correlation of polyfunctional CD4<sup>&#x0002B;</sup> T cells and risk of TB, although two infant vaccine trials have evaluated the relationship of vaccine-induced polyfunctional CD4<sup>&#x0002B;</sup> T cells and subsequent development of TB. Kagina et al. performed a subanalysis of a large trial evaluating the immunogenicity of BCG (Japanese) delivered i.d. vs s.c. in South African infants (<xref ref-type="bibr" rid="B62">62</xref>). Infants who developed TB over the 2-year follow-up period were compared to healthy, Mtb exposed, and healthy Mtb unexposed infants. There was no correlation between the magnitude of polyfunctional CD4<sup>&#x0002B;</sup> T cells and subsequent development of TB during 2&#x02009;years of follow-up. More recently, Tameris et al. conducted a double-blind Phase IIb trial in South African infants evaluating the immunogenicity and efficacy of MVA85A as a boost after BCG prime at birth, compared with a placebo (<xref ref-type="bibr" rid="B3">3</xref>). Although MVA85A-vaccinated infants developed polyfunctional Ag85A-specific CD4<sup>&#x0002B;</sup> T cell responses, albeit at lower magnitudes than typically observed in adults, the MVA85A boost provided no additional efficacy against development of TB over BCG alone. By contrast, the majority of mouse TB studies evaluating polyfunctional CD4<sup>&#x0002B;</sup> T cells and vaccine-induced protection have noted a correlative relationship. This discrepancy may reflect differences between the mouse TB vaccine model and vaccine-induced protection from human disease, publication bias, or, in the case of the MVA85A study, possibly induction of inadequate levels of polyfunctional CD4<sup>&#x0002B;</sup> T cells required for protection. Regarding the latter, Fletcher et al. found that immune activation at the time of MVA85A or placebo vaccination was associated with risk of developing TB, which in turn may be associated with poor BCG vaccine take, i.e., lower frequencies of BCG-specific IFN-&#x003B3;-expressing cells (<xref ref-type="bibr" rid="B93">93</xref>). These data suggest that additional factors over and above the functionality of T cells play a role in protective immunity.</p>
<p>Discrepancies between some mouse TB vaccine studies and others, and between mouse and human TB vaccine studies, could reflect that a correlate of protection may be specific for each particular vaccine platform or may vary for different TB antigens. In this regard, standardization of vaccine study protocols and harmonization between animal and human studies could improve the ability to discern correlates of protection. In addition, discrepant results among animal model and human studies of polyfunctional CD4<sup>&#x0002B;</sup> T cells, in general, could reflect that frequencies of polyfunctional CD4<sup>&#x0002B;</sup> T cells correlate with a more accurate, yet-to-be determined correlate of protection. In this regard, mouse studies suggest that total IL-2-producing CD4<sup>&#x0002B;</sup> T cells may be the best correlate of protection against Mtb infection (<xref ref-type="bibr" rid="B38">38</xref>, <xref ref-type="bibr" rid="B41">41</xref>) and in humans, IL-2-producing CD4<sup>&#x0002B;</sup> T cells are associated with successful containment of Mtb infection in persons with LTBI (<xref ref-type="bibr" rid="B13">13</xref>, <xref ref-type="bibr" rid="B14">14</xref>). Conversely, loss of IL-2 expression by IFN-&#x003B3; and/or TNF-expressing Th1&#x02009;cells is likely indicative of greater T cell differentiation, typically observed in scenarios of high bacterial loads, such as TB disease (<xref ref-type="bibr" rid="B13">13</xref>, <xref ref-type="bibr" rid="B14">14</xref>), or following delivery of high doses of vaccine antigens (<xref ref-type="bibr" rid="B76">76</xref>). This is consistent with the linear differentiation model of CD4<sup>&#x0002B;</sup> T cells derived primarily from acute and chronic viral infections (<xref ref-type="bibr" rid="B22">22</xref>). In this model, IL-2-production reflects central memory T cells in early stages of differentiation, with capacity for long-lived memory and proliferation. Loss of IL-2 expression thus reflects more advanced differentiation of CD4<sup>&#x0002B;</sup> T cells, such as effector memory or terminal effector cells. This is further supported by a recent study of CD4<sup>&#x0002B;</sup> T cell responses to Ag85B and ESAT-6 in mice and humans, which showed that Ag85B-specific T cells were significantly less differentiated than ESAT-6-specific T cells, which correlated with lack of persistent Ag85B antigen expression and persistent ESAT-6 expression by the bacterium during chronic infection in the mouse model (<xref ref-type="bibr" rid="B94">94</xref>). Distinct attributes observed between these T cell subsets were higher proportions of polyfunctional and lower proportions of IL-2-expressing ESAT-6-specific T cells, when compared with Ag85B-specific T cells.</p>
</sec>
<sec id="S7">
<title>Conclusion and Perspectives</title>
<p>BCG, as well as novel TB vaccine candidates, induce polyfunctional CD4<sup>&#x0002B;</sup> T cells in both animal models and humans. These cells possess important functional attributes that may potentially play a role in vaccine-mediated protection including long-lived memory function, persistence in the vaccinated host, and at least in animal models, ability to traffic to and persist in the lung. In the mouse model, the magnitude of vaccine-induced polyfunctional CD4<sup>&#x0002B;</sup> T cells often correlates with vaccine-induced protection, making polyfunctional T cells a good candidate for a mechanistic correlate of protection. However, definitive evidence that it is in fact the co-expression of IFN-&#x003B3;, TNF-&#x003B1;, and IL-2 by these T cells, rather than another functional or phenotypic attribute, that mediates host defense against Mtb remains lacking and would require sophisticated knock-down or adoptive transfer experiments. Some mouse studies, and of note, two human infant studies do not support polyfunctional CD4<sup>&#x0002B;</sup> T cells as correlate of protection. Moreover, because these studies focus mainly and often exclusively on defining polyfunctional CD4<sup>&#x0002B;</sup> T cells, it is certainly possible that a stronger immunologic correlate was present and not measured. We conclude that induction of polyfunctional T cells is certainly not sufficient and may not even be necessary to mediate protective immunity against Mtb and speculate that the production of multiple pro-inflammatory cytokines by T cells may reflect properties of T cells that may not necessarily be required for protection. Other functional attributes, such as additional effector functions, the differentiation state, tissue homing potential, long-term survival capacity of the T cell, or their ability to recognize the Mtb-infected cell may be equally or more important to promote protection. It is also possible that the induction of polyfunctional CD4<sup>&#x0002B;</sup> T cells may be dependent upon the particular antigen or adjuvant utilized. Thus, a correlate of protection for TB vaccine development remains elusive. We propose that studies of protective immunity against Mtb should reach well beyond the measurement of IFN&#x003B3;, TNF, and IL-2 by investigating other functions, phenotypes and correlates of immunity. Further, in light of the lack of direct causal association between T cell polyfunctionality and protective immunity, care should be taken not to bias studies in favor of the hypothesis that polyfunctional cells are indeed the mediators of protection. The definition of correlates of protection may benefit from standardization of animal TB vaccine studies and harmonization of these protocols with human trials. Finally, future studies should address the full spectrum of CD4<sup>&#x0002B;</sup> T cell flavors and colors within the context of more complete immunological signatures of protection, including for example, additional phenotypic and functional attributes of CD4<sup>&#x0002B;</sup> T cells, such as IL-17 production, and other major cells, such as classically restricted CD8<sup>&#x0002B;</sup> T cells, donor unrestricted T cells, and NK cells, as well as B cells.</p>
</sec>
<sec id="S8" sec-type="author-contributor">
<title>Author Contributions</title>
<p>DAL performed the literature search and designed the tables. DAL and TS outlined and wrote the manuscript. DAL, DML, and TS discussed and edited the manuscript.</p>
</sec>
<sec id="S9">
<title>Conflict of Interest Statement</title>
<p>The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.</p>
</sec>
</body>
<back>
<fn-group>
<fn fn-type="financial-disclosure">
<p><bold>Funding.</bold> This work was supported by funding from the Bill and Melinda Gates Foundation to DAL and DML.</p>
</fn>
</fn-group>
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