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<front>
<journal-meta>
<journal-id journal-id-type="publisher-id">Front. Cell Dev. Biol.</journal-id>
<journal-title>Frontiers in Cell and Developmental Biology</journal-title>
<abbrev-journal-title abbrev-type="pubmed">Front. Cell Dev. Biol.</abbrev-journal-title>
<issn pub-type="epub">2296-634X</issn>
<publisher>
<publisher-name>Frontiers Media S.A.</publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id pub-id-type="doi">10.3389/fcell.2016.00130</article-id>
<article-categories>
<subj-group subj-group-type="heading">
<subject>Cell and Developmental Biology</subject>
<subj-group>
<subject>Review</subject>
</subj-group>
</subj-group>
</article-categories>
<title-group>
<article-title>Diacylglycerol Kinases in T Cell Tolerance and Effector Function</article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name><surname>Chen</surname> <given-names>Shelley S.</given-names></name>
<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
</contrib>
<contrib contrib-type="author">
<name><surname>Hu</surname> <given-names>Zhiming</given-names></name>
<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
<xref ref-type="aff" rid="aff2"><sup>2</sup></xref>
<uri xlink:href="http://loop.frontiersin.org/people/375038/overview"/>
</contrib>
<contrib contrib-type="author" corresp="yes">
<name><surname>Zhong</surname> <given-names>Xiao-Ping</given-names></name>
<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
<xref ref-type="aff" rid="aff3"><sup>3</sup></xref>
<xref ref-type="aff" rid="aff4"><sup>4</sup></xref>
<xref ref-type="author-notes" rid="fn001"><sup>&#x0002A;</sup></xref>
<uri xlink:href="http://loop.frontiersin.org/people/79436/overview"/>
</contrib>
</contrib-group>
<aff id="aff1"><sup>1</sup><institution>Division of Allergy and Immunology, Department of Pediatrics, Duke University Medical Center</institution> <country>Durham, NC, USA</country></aff>
<aff id="aff2"><sup>2</sup><institution>Institute of Biotherapy, School of Biotechnology, Southern Medical University</institution> <country>Guangzhou, China</country></aff>
<aff id="aff3"><sup>3</sup><institution>Department of Immunology, Duke University Medical Center</institution> <country>Durham, NC, USA</country></aff>
<aff id="aff4"><sup>4</sup><institution>Hematologic Malignancies and Cellular Therapies Program, Duke Cancer Institute, Duke University Medical Center</institution> <country>Durham, NC, USA</country></aff>
<author-notes>
<fn fn-type="edited-by"><p>Edited by: Fumio Sakane, Chiba University, Japan</p></fn>
<fn fn-type="edited-by"><p>Reviewed by: Kaoru Goto, Yamagata University School of Medicine, Japan; Antonia Avila-Flores, Centro Nacional de Biotecnologia - CSIC, Spain</p></fn>
<fn fn-type="corresp" id="fn001"><p>&#x0002A;Correspondence: Xiao-Ping Zhong <email>Xiaoping.zhong&#x00040;duke.edu</email></p></fn>
<fn fn-type="other" id="fn002"><p>This article was submitted to Signaling, a section of the journal Frontiers in Cell and Developmental Biology</p></fn>
</author-notes>
<pub-date pub-type="epub">
<day>10</day>
<month>11</month>
<year>2016</year>
</pub-date>
<pub-date pub-type="collection">
<year>2016</year>
</pub-date>
<volume>4</volume>
<elocation-id>130</elocation-id>
<history>
<date date-type="received">
<day>31</day>
<month>08</month>
<year>2016</year>
</date>
<date date-type="accepted">
<day>27</day>
<month>10</month>
<year>2016</year>
</date>
</history>
<permissions>
<copyright-statement>Copyright &#x000A9; 2016 Chen, Hu and Zhong.</copyright-statement>
<copyright-year>2016</copyright-year>
<copyright-holder>Chen, Hu and Zhong</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>Diacylglycerol kinases (DGKs) are a family of enzymes that regulate the relative levels of diacylglycerol (DAG) and phosphatidic acid (PA) in cells by phosphorylating DAG to produce PA. Both DAG and PA are important second messengers cascading T cell receptor (TCR) signal by recruiting multiple effector molecules, such as RasGRP1, PKC&#x003B8;, and mTOR. Studies have revealed important physiological functions of DGKs in the regulation of receptor signaling and the development and activation of immune cells. In this review, we will focus on recent progresses in our understanding of two DGK isoforms, &#x003B1; and &#x003B6;, in CD8 T effector and memory cell differentiation, regulatory T cell development and function, and invariant NKT cell development and effector lineage differentiation.</p>
</abstract>
<kwd-group>
<kwd>diacylglycerol kinase</kwd>
<kwd>regulatory T cells</kwd>
<kwd>invariant NKT cells</kwd>
</kwd-group>
<contract-num rid="cn001">R01AI079088</contract-num>
<contract-num rid="cn001">R01AI101206</contract-num>
<contract-sponsor id="cn001">National Institute of Allergy and Infectious Diseases<named-content content-type="fundref-id">10.13039/100000060</named-content></contract-sponsor>
<counts>
<fig-count count="2"/>
<table-count count="1"/>
<equation-count count="0"/>
<ref-count count="195"/>
<page-count count="13"/>
<word-count count="12481"/>
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</article-meta>
</front>
<body>
<sec sec-type="intro" id="s1">
<title>Introduction</title>
<p>Diacylglycerol (DAG) and phosphatidic acid (PA) are two key lipid second messengers that facilitate efficient receptor-mediated signaling in immune cells along with many other cells. They regulate numerous intracellular signaling molecules to control cell differentiation, proliferation, survival, and function. Following T cell receptor (TCR) engagement, DAG is produced through the activation of Phospholipase C&#x003B3;1 (PLC&#x003B3;1), which hydrolyzes membrane phosphatidylinositol bisphosphate (PIP<sub>2</sub>) to DAG and inositol trisphosphate (IP3). DAG, together with other signal events, recruits downstream effector molecules to the membrane through their C1 domains and allosterically activates these effectors, with protein kinase C&#x003B8; (PKC&#x003B8;), Ras guanyl&#x02013;releasing protein 1 (RasGRP1), protein kinase D (PKD), Munc13s, and chimaerins being important for T cell development and/or function (Krishna and Zhong, <xref ref-type="bibr" rid="B85">2013a</xref>; Merida et al., <xref ref-type="bibr" rid="B104">2015</xref>).</p>
<p>DAG plays an important role in recruiting PKC&#x003B8; to the plasma membrane and immune synapse in T cells (Diaz-Flores et al., <xref ref-type="bibr" rid="B40">2003</xref>; Carrasco and Merida, <xref ref-type="bibr" rid="B21">2004</xref>). The activation of PKC&#x003B8; leads to TCR-mediated NF-&#x003BA;B and mammalian/mechanistic target of rapamycin complex 1 (mTORC1) activation in T cells (Sun et al., <xref ref-type="bibr" rid="B157">2000</xref>; Isakov and Altman, <xref ref-type="bibr" rid="B70">2002</xref>; Hamilton et al., <xref ref-type="bibr" rid="B65">2014</xref>), which affects key processes, including T cell activation and survival (Manicassamy et al., <xref ref-type="bibr" rid="B95">2006</xref>; Hayashi and Altman, <xref ref-type="bibr" rid="B67">2007</xref>), IL-2 production (Werlen et al., <xref ref-type="bibr" rid="B167">1998</xref>), T<sub>H</sub>2 responses (Cannons et al., <xref ref-type="bibr" rid="B20">2004</xref>; Marsland et al., <xref ref-type="bibr" rid="B98">2004</xref>), T<sub>H</sub>17 responses (Kwon et al., <xref ref-type="bibr" rid="B87">2012</xref>), invariant NKT (<italic>i</italic>NKT) cell development and activation (Schmidt-Supprian et al., <xref ref-type="bibr" rid="B141">2004</xref>; Fang et al., <xref ref-type="bibr" rid="B45">2012</xref>), and Treg development (Gupta et al., <xref ref-type="bibr" rid="B64">2008</xref>; Barnes et al., <xref ref-type="bibr" rid="B10">2009</xref>; Medoff et al., <xref ref-type="bibr" rid="B101">2009</xref>).</p>
<p>Ras guanyl&#x02013;releasing protein 1 (RasGRP1) is another downstream molecule that is recruited to the cytoplasm membrane by DAG (Jones et al., <xref ref-type="bibr" rid="B74">2002</xref>; Carrasco and Merida, <xref ref-type="bibr" rid="B21">2004</xref>). RasGRP1 promotes activation of Ras by exchanging GDP for GTP, leading to the activation of the RAF1-MEK1/2-ERK1/2 pathway (Ebinu et al., <xref ref-type="bibr" rid="B43">1998</xref>; Dower et al., <xref ref-type="bibr" rid="B41">2000</xref>; Roose et al., <xref ref-type="bibr" rid="B130">2005</xref>). Additionally, RasGRP1-Ras-Erk1/2 pathway functions upstream for TCR-induced mTORC1, mTORC2, and PI3K activation in T cells (Gorentla et al., <xref ref-type="bibr" rid="B60">2011</xref>). RasGRP1 plays an essential role in conventional &#x003B1;&#x003B2; T cell development (Dower et al., <xref ref-type="bibr" rid="B41">2000</xref>; Fuller et al., <xref ref-type="bibr" rid="B51">2012</xref>), particularly for the selection of thymocytes that express weak TCR signals (Priatel et al., <xref ref-type="bibr" rid="B124">2002</xref>) and for early iNKT cell development (Shen et al., <xref ref-type="bibr" rid="B143">2011a</xref>). While RasGRP1 appears dispensable for overall &#x003B3;&#x003B4;T cell development, it ensures IL-17 expressing &#x003B3;&#x003B4;T17 lineage differentiation and TCR-induced &#x003B3;&#x003B4;T cell activation (Chen et al., <xref ref-type="bibr" rid="B28">2012</xref>). More recently, it was also found that RasGRP1, together with RasGRP3, promotes early thymic precursor generation (Golec et al., <xref ref-type="bibr" rid="B58">2016</xref>). Additionally, RasGRP1 may play a role in promoting antigen-induced CD8 cell expansion by lowering the threshold of T cell activation (Priatel et al., <xref ref-type="bibr" rid="B123">2010</xref>).</p>
<p>PKDs are recruited by both DAG and DAG-activated PKCs. Upon stimulation, inactive PKDs translocate from the cytosol to the plasma membrane in response to membrane DAG production, where they are then activated by novel PKCs (Rozengurt et al., <xref ref-type="bibr" rid="B131">2005</xref>; Spitaler et al., <xref ref-type="bibr" rid="B154">2006</xref>). PKDs have been shown to exert different effects on VDJ recombination at the TCR&#x003B2; locus and on CD4 and CD8 expression during T cell development based on their localization at the cytosol or plasma membrane (Marklund et al., <xref ref-type="bibr" rid="B97">2003</xref>; Spitaler et al., <xref ref-type="bibr" rid="B154">2006</xref>). Additionally, PKD2 acts as a sensitive digital amplifier of TCR engagement, enabling CD8 T cells to match the production of inflammatory cytokines to the quality and quantity of TCR ligands (Navarro et al., <xref ref-type="bibr" rid="B114">2014</xref>).</p>
<p>Munc13 proteins are mammalian homologs of the <italic>C. elegans</italic> Unc13, which are important for neurotransmitter secretion (Brose and Rosenmund, <xref ref-type="bibr" rid="B16">2002</xref>). Munc13-1, Munc13-2, and Munc13-3 isoforms bind to DAG with high affinity. The Munc13-4 isoform lacks a C1 domain (Koch et al., <xref ref-type="bibr" rid="B82">2000</xref>; Shirakawa et al., <xref ref-type="bibr" rid="B149">2004</xref>), but it is involved in granule maturation and exocytosis in NK cells and cytotoxic T lymphocytes (CTLs) (Feldmann et al., <xref ref-type="bibr" rid="B48">2003</xref>; Menager et al., <xref ref-type="bibr" rid="B102">2007</xref>), phagosomal maturation, and the killing of intracellular bacteria in neutrophils (Johnson et al., <xref ref-type="bibr" rid="B73">2011</xref>; Monfregola et al., <xref ref-type="bibr" rid="B111">2012</xref>). Deficiency of Munc13-4 causes primary immune deficiency in patients (Feldmann et al., <xref ref-type="bibr" rid="B48">2003</xref>; Cichocki et al., <xref ref-type="bibr" rid="B30">2014</xref>).</p>
<p>Chimaerins possess Rac-specific GTPase Activating Protein (GAP) activity (Caloca et al., <xref ref-type="bibr" rid="B19">1999</xref>; Yang and Kazanietz, <xref ref-type="bibr" rid="B179">2007</xref>). Chimaerin isoforms &#x003B1;2 and &#x003B2;2 are expressed at different levels in T cells and have been shown to translocate to the immune synapse and to both participate in TCR signaling and receive regulation from it (Caloca et al., <xref ref-type="bibr" rid="B18">2008</xref>; Siliceo and Merida, <xref ref-type="bibr" rid="B152">2009</xref>). Chimaerins have been found to inhibit TCR-mediated NFAT activation and DAG-dependent actin polymerization to regulate T cell adhesion and chemotaxis (Siliceo et al., <xref ref-type="bibr" rid="B151">2006</xref>).</p>
<p>Phosphatidic acid (PA) is produced both by the activity of DAG kinases (DGKs) and by the phospholipase D (PLD) family of enzymes in T cells. DGKs phosphorylate DAG to convert it to PA, while PLDs mediate the hydrolysis of phosphatidylcholine (Jenkins and Frohman, <xref ref-type="bibr" rid="B72">2005</xref>; Zhong et al., <xref ref-type="bibr" rid="B192">2008</xref>). The removal of PA is mediated by lipins, which can turn off PA-mediated signaling through dephosphorylation, and they have been shown to regulate mast cell function in the immune system (Csaki and Reue, <xref ref-type="bibr" rid="B36">2010</xref>; Shin et al., <xref ref-type="bibr" rid="B148">2013b</xref>). Intracellular levels of PA change dynamically in response to environmental stimuli (Wang et al., <xref ref-type="bibr" rid="B164">2006</xref>). The downstream effector molecules of PA include a multitude of kinases, such as mTOR (Chen and Fang, <xref ref-type="bibr" rid="B26">2002</xref>), phosphatidylinositol-4-phosphate 5-kinase (PIP5K) (Galandrini et al., <xref ref-type="bibr" rid="B53">2005</xref>; Jarquin-Pardo et al., <xref ref-type="bibr" rid="B71">2007</xref>; Micucci et al., <xref ref-type="bibr" rid="B109">2008</xref>; Cockcroft, <xref ref-type="bibr" rid="B31">2009</xref>; Yoon et al., <xref ref-type="bibr" rid="B183">2011</xref>), spingosine kinase (SPHK &#x000BD;), RAF1 (Ghosh et al., <xref ref-type="bibr" rid="B56">1996</xref>; Shome et al., <xref ref-type="bibr" rid="B150">1997</xref>; Rizzo et al., <xref ref-type="bibr" rid="B128">1999</xref>, <xref ref-type="bibr" rid="B129">2000</xref>; Andresen et al., <xref ref-type="bibr" rid="B5">2002</xref>), and other molecules, such as Src homology region 2 domain-containing phosphatase 1 (SHP1) (Frank et al., <xref ref-type="bibr" rid="B50">1999</xref>), kinase suppressor of Ras 1 (KSR1, a scaffolding protein that interacts with several components of the Raf-MEK-ERK cascade) (Morrison, <xref ref-type="bibr" rid="B113">2001</xref>; Kraft et al., <xref ref-type="bibr" rid="B83">2008</xref>), and Sos, another guanine nucleotide exchange factor for Ras activation (Zhao et al., <xref ref-type="bibr" rid="B189">2007</xref>). Both PLD and DGK-derived PA has been shown to directly activate mTOR in non-T cells (Chen and Fang, <xref ref-type="bibr" rid="B26">2002</xref>; Avila-Flores et al., <xref ref-type="bibr" rid="B7">2005</xref>). In these cells, PA can also activate mTOR indirectly via ERK (Winter et al., <xref ref-type="bibr" rid="B171">2010</xref>), but such a mechanism has not been examined in T cells. In T cells, DGK&#x003B1; and &#x003B6; mainly inhibit TCR-induced mTOR signaling by negative control of DAG-mediated RasGRP1 and likely PKC&#x003B8; activation (Gorentla et al., <xref ref-type="bibr" rid="B60">2011</xref>; Hamilton et al., <xref ref-type="bibr" rid="B65">2014</xref>). However, DGK-derived PA has been shown to promote T cell maturation in the thymus (Guo et al., <xref ref-type="bibr" rid="B63">2008</xref>) and to regulate innate immune responses (Liu et al., <xref ref-type="bibr" rid="B91">2007</xref>). Future studies should determine the direct downstream of the effector(s) of PA that mediate its functions in these immune cells.</p>
<p>The diverse and important functions of DAG&#x02014;and PA-mediated signaling suggest their levels must be tightly controlled temporally and spatially. DGKs switch from DAG-mediated signals to PA-mediated signals to dynamically regulate downstream pathways in response to the engagement of the TCR and many other receptors (Merida et al., <xref ref-type="bibr" rid="B105">2008</xref>; Cai et al., <xref ref-type="bibr" rid="B17">2009</xref>; Zhong et al., <xref ref-type="bibr" rid="B195">2011</xref>). In mammals, there are ten DGK isoforms encoded by different genes, some of which also contain splicing variants, adding complexity to this family of enzymes. All DGKs contain a kinase domain and at least two cysteine-rich C1 domains but differ in the homology of their other structural domains as well as their interaction with other biomolecules. Based on their structural distinction and homology, DGKs are classified into five types that may differ in subcellular localization, function, and regulation. The existence of multiple isoforms poses a significant challenge in studying the physiological roles of any specific isoforms in cellular development and functions due to functional redundancies, a fact demonstrated in conventional &#x003B1;&#x003B2; T cell and iNKT cell development in mice deficient in both DGK&#x003B1; and DGK&#x003B6; (Guo et al., <xref ref-type="bibr" rid="B63">2008</xref>; Shen et al., <xref ref-type="bibr" rid="B144">2011b</xref>). Of these ten isoforms, DGK&#x003B1; and DGK&#x003B6; as well as DGK&#x003B4; are the major isoforms expressed in T cells (Zhong et al., <xref ref-type="bibr" rid="B194">2002</xref>; Olenchock et al., <xref ref-type="bibr" rid="B116">2006a</xref>; Sakane et al., <xref ref-type="bibr" rid="B134">2007</xref>). Both DGK&#x003B1; and &#x003B6; have been found to regulate multiple signaling pathways downstream from the TCR (Zhong et al., <xref ref-type="bibr" rid="B194">2002</xref>, <xref ref-type="bibr" rid="B193">2003</xref>; Sanjuan et al., <xref ref-type="bibr" rid="B137">2003</xref>; Baldanzi et al., <xref ref-type="bibr" rid="B9">2011</xref>; Gharbi et al., <xref ref-type="bibr" rid="B55">2011</xref>; Gorentla et al., <xref ref-type="bibr" rid="B60">2011</xref>), such as the RasGRP1-Ras-Erk1/2 pathway, the PKC&#x003B8;-IKK-NF&#x003BA;B pathway, mTOR signaling (Gorentla et al., <xref ref-type="bibr" rid="B60">2011</xref>), and MAP kinase-interacting serine/threonine kinase (Mnk) 1 and 2 signaling (Gorentla et al., <xref ref-type="bibr" rid="B59">2013</xref>). They control T cell development (Outram et al., <xref ref-type="bibr" rid="B119">2002</xref>; Guo et al., <xref ref-type="bibr" rid="B63">2008</xref>; Almena et al., <xref ref-type="bibr" rid="B2">2013</xref>), activation and anergy (Zhong et al., <xref ref-type="bibr" rid="B193">2003</xref>; Olenchock et al., <xref ref-type="bibr" rid="B116">2006a</xref>; Zha et al., <xref ref-type="bibr" rid="B186">2006</xref>; Baldanzi et al., <xref ref-type="bibr" rid="B9">2011</xref>), survival (Baldanzi et al., <xref ref-type="bibr" rid="B9">2011</xref>; Ruffo et al., <xref ref-type="bibr" rid="B132">2016</xref>), secretion (Alonso et al., <xref ref-type="bibr" rid="B3">2007</xref>, <xref ref-type="bibr" rid="B4">2011</xref>; Chauveau et al., <xref ref-type="bibr" rid="B25">2014</xref>), and effector function (Shin et al., <xref ref-type="bibr" rid="B145">2012</xref>; Yang et al., <xref ref-type="bibr" rid="B181">2016b</xref>). Besides T cells, DGK&#x003B6; also regulates the development, survival, and function of mast cells (Olenchock et al., <xref ref-type="bibr" rid="B117">2006b</xref>), B cells (Wheeler et al., <xref ref-type="bibr" rid="B168">2013</xref>), dendritic cells and macrophages (Liu et al., <xref ref-type="bibr" rid="B91">2007</xref>), osteoclasts (Zamani et al., <xref ref-type="bibr" rid="B184">2015</xref>), and NK cells (Yang et al., <xref ref-type="bibr" rid="B180">2016a</xref>). Extensive reviews about DGKs in immune cells have been published recently (Merida et al., <xref ref-type="bibr" rid="B105">2008</xref>, <xref ref-type="bibr" rid="B104">2015</xref>; Zhong et al., <xref ref-type="bibr" rid="B192">2008</xref>; Krishna and Zhong, <xref ref-type="bibr" rid="B86">2013b</xref>). Here, we will focus on recent literature concerning DGKs in T cell tolerance, iNKT cell development and function, and CD8 T cell-mediated antimicrobial and antitumor immunity.</p>
</sec>
<sec id="s2">
<title>DGK&#x003B1; and DGK&#x003B6; in T cell tolerance</title>
<p>Clonal deletion of highly self-reactive T cells in the thymic medulla, generation of properly functioning regulatory T cells (Treg), and T cell anergy are among the most important mechanisms of T cell tolerance that prevent autoimmune diseases (Metzger and Anderson, <xref ref-type="bibr" rid="B106">2011</xref>; Xing and Hogquist, <xref ref-type="bibr" rid="B177">2012</xref>). Although DGK&#x003B1; and &#x003B6; synergistically promote T cell maturation from the CD4<sup>&#x0002B;</sup>CD8<sup>&#x0002B;</sup> double positive (DP) to the CD4<sup>&#x0002B;</sup>CD8<sup>&#x02212;</sup> or CD4<sup>&#x02212;</sup>CD8<sup>&#x0002B;</sup> single positive (SP) stage, no direct evidence has implicated DGK&#x003B1; and &#x003B6; in interference with negative selection in establishing central tolerance (Guo et al., <xref ref-type="bibr" rid="B63">2008</xref>).</p>
<p>Regulatory T cells generated in the thymus (tTregs) dominantly suppress T cells and other immune cells to prevent autoimmune diseases. However, they also negatively regulate antitumor and antipathogen immune responses. tTregs are derived from CD4 SP thymocytes in the thymic medulla after relatively strong but transient TCR-MHC/peptide engagement and signaling (Mahmud et al., <xref ref-type="bibr" rid="B94">2014</xref>; Li and Rudensky, <xref ref-type="bibr" rid="B90">2016</xref>). They express Foxp3, a key transcription factor that is critical for their development, maintenance, and function. TCR signaling is not only essential for tTreg generation but also required for tTreg homeostasis and function (Kim et al., <xref ref-type="bibr" rid="B81">2009</xref>; Delpoux et al., <xref ref-type="bibr" rid="B39">2014</xref>; Levine et al., <xref ref-type="bibr" rid="B89">2014</xref>; Vahl et al., <xref ref-type="bibr" rid="B161">2014</xref>). Multiple DAG-mediated signaling pathways are involved in tTreg development and function, indicated by the impaired tTreg development and function in mice deficient in either RasGRP1-Ras or PKC&#x003B8;-IKK-NF&#x003BA;B signaling. Both NF&#x003BA;B and AP1 are involved in transcriptional activation of Foxp3 expression and possibly in regulating other tTreg properties (Schmidt-Supprian et al., <xref ref-type="bibr" rid="B141">2004</xref>; Willoughby et al., <xref ref-type="bibr" rid="B170">2007</xref>; Chen et al., <xref ref-type="bibr" rid="B27">2008</xref>; Gupta et al., <xref ref-type="bibr" rid="B64">2008</xref>; Barnes et al., <xref ref-type="bibr" rid="B10">2009</xref>; Medoff et al., <xref ref-type="bibr" rid="B101">2009</xref>). Both the percentage and number of tTregs in the CD4<sup>&#x0002B;</sup> population are increased in DGK&#x003B6;-deficient (but not DGK&#x003B1;-deficient) thymocytes and splenocytes, compared to wild-type (WT) controls (Table <xref ref-type="table" rid="T1">1</xref>). Additionally, Foxp3<sup>&#x02212;</sup>CD25<sup>&#x0002B;</sup> cells within the CD4 SP thymocytes are increased in a DGK&#x003B6;-deficient thymus, suggesting that DGK&#x003B6; negatively controls early tTreg development. The inhibitory effect of DGK&#x003B6; on tTreg development is found to be dependent on its negative control of the NF&#x003BA;B/c-Rel and RasGRP1-Ras-Erk pathways (Joshi et al., <xref ref-type="bibr" rid="B75">2013</xref>; Schmidt et al., <xref ref-type="bibr" rid="B140">2013</xref>). Of note are reports that DGK&#x003B1; and &#x003B6; manifest differential effects on TNF&#x003B1;-induced NF&#x003BA;B activation in tumor cells and fibroblasts, with DGK&#x003B1; positively regulating PKC&#x003B6;-mediated p65/RelA at serine 311 residue (Yanagisawa et al., <xref ref-type="bibr" rid="B178">2007</xref>; Kai et al., <xref ref-type="bibr" rid="B77">2009</xref>), while DGK&#x003B6; inhibits TNF&#x003B1;-induced NF&#x003BA;B activation via decreasing NFkB phosphorylation at Ser468/536, its nuclear localization, and its association with CBP (Tsuchiya et al., <xref ref-type="bibr" rid="B160">2015</xref>). It would be interesting to investigate whether such mechanisms also operate in T cells or downstream of TCR to contribute to DGK&#x003B1; and &#x003B6; function in tTreg differentiation. It also remains unclear if DGK&#x003B1; and &#x003B6; act redundantly or synergistically to control Treg differentiation and function.</p>
<table-wrap position="float" id="T1">
<label>Table 1</label>
<caption><p><bold>Comparison of DGK&#x003B1;<sup><bold>&#x02212;/&#x02212;</bold></sup>, DGK&#x003B6;<sup><bold>&#x02212;/&#x02212;</bold></sup>, and DGK&#x003B1;<sup><bold>&#x02212;/&#x02212;</bold></sup>&#x003B6;<sup><bold>&#x02212;/&#x02212;</bold></sup> mice</bold>.</p></caption>
<table frame="hsides" rules="groups">
<thead><tr>
<th/>
<th/>
<th valign="top" align="left"><bold>DGK&#x003B6;<sup>&#x02212;/&#x02212;</sup></bold></th>
<th valign="top" align="left"><bold>DGK&#x003B1;<sup>&#x02212;/&#x02212;</sup></bold></th>
<th valign="top" align="left"><bold>DGK&#x003B1;<sup>&#x02212;/&#x02212;</sup>&#x003B6;<sup>&#x02212;/&#x02212;</sup></bold></th>
<th valign="top" align="left"><bold>References</bold></th>
</tr>
</thead>
<tbody>
<tr>
<td valign="top" align="left">T cell development</td>
<td valign="top" align="left">Positive selection</td>
<td valign="top" align="left">Not affected</td>
<td valign="top" align="left">Not affected</td>
<td valign="top" align="left">Severe decreases of CD4 SP and CD8 SP thymocytes</td>
<td valign="top" align="left">Zhong et al., <xref ref-type="bibr" rid="B193">2003</xref>; Olenchock et al., <xref ref-type="bibr" rid="B116">2006a</xref>; Guo et al., <xref ref-type="bibr" rid="B63">2008</xref></td>
</tr>
<tr style="border-bottom: thin solid #000000;">
<td/>
<td valign="top" align="left">Negative selection</td>
<td valign="top" align="left">Not affected</td>
<td valign="top" align="left">Not affected</td>
<td valign="top" align="left">Not affected</td>
<td valign="top" align="left">Guo et al., <xref ref-type="bibr" rid="B63">2008</xref></td>
</tr> <tr>
<td valign="top" align="left">Regulatory T cell</td>
<td valign="top" align="left">Foxp3<sup>&#x02212;</sup>CD25<sup>&#x0002B;</sup> CD4<sup>&#x0002B;</sup>SP thymocytes</td>
<td valign="top" align="left">Increased frequencies</td>
<td valign="top" align="left">Increased but less obvious than DGK&#x003B6;<sup>&#x02212;/&#x02212;</sup></td>
<td valign="top" align="left">Not reported</td>
<td valign="top" align="left">Joshi et al., <xref ref-type="bibr" rid="B75">2013</xref>; Schmidt et al., <xref ref-type="bibr" rid="B140">2013</xref></td>
</tr>
<tr>
<td/>
<td valign="top" align="left">Foxp3<sup>&#x0002B;</sup> Treg</td>
<td valign="top" align="left">Increased in thymus and spleen</td>
<td valign="top" align="left">Not increased</td>
<td valign="top" align="left">Not reported</td>
<td valign="top" align="left">Schmidt et al., <xref ref-type="bibr" rid="B140">2013</xref></td>
</tr>
<tr style="border-bottom: thin solid #000000;">
<td/>
<td valign="top" align="left">Suppressive function (<italic>in vitro</italic>)</td>
<td valign="top" align="left">Enhanced</td>
<td valign="top" align="left">Not obviously changed</td>
<td valign="top" align="left">Not reported</td>
<td valign="top" align="left">Schmidt et al., <xref ref-type="bibr" rid="B139">2015</xref></td>
</tr> <tr>
<td valign="top" align="left">iNKT cells</td>
<td valign="top" align="left">iNKT cell numbers</td>
<td valign="top" align="left">Not affected</td>
<td valign="top" align="left">Not affected</td>
<td valign="top" align="left">Severely decreased</td>
<td valign="top" align="left">Shen et al., <xref ref-type="bibr" rid="B144">2011b</xref></td>
</tr>
<tr style="border-bottom: thin solid #000000;">
<td/>
<td valign="top" align="left">iNKT17 cell</td>
<td valign="top" align="left">Decreased in numbers due to extrinsic mechanisms</td>
<td valign="top" align="left">Not reported</td>
<td valign="top" align="left">Not reported</td>
<td valign="top" align="left">Wu et al., <xref ref-type="bibr" rid="B172">2013</xref></td>
</tr> <tr>
<td valign="top" align="left">CD8 T cells</td>
<td valign="top" align="left">Primary responses to pathogens</td>
<td valign="top" align="left">Enhanced expansion and cytokine production in response to LCMV</td>
<td valign="top" align="left">Less obvious expansion than DGK&#x003B6;<sup>&#x02212;/&#x02212;</sup> but similar enhanced cytokine production in response to LCMV</td>
<td valign="top" align="left">Severely impaired in migration, expansion, and cytokine production in response to LM-Ova</td>
<td valign="top" align="left">Zhong et al., <xref ref-type="bibr" rid="B193">2003</xref>; Shin et al., <xref ref-type="bibr" rid="B145">2012</xref>; Yang et al., <xref ref-type="bibr" rid="B181">2016b</xref></td>
</tr>
<tr>
<td/>
<td valign="top" align="left">Memory responses</td>
<td valign="top" align="left">Decreased formation; impaired in expansion, enhanced IFN&#x003B3; and TNF&#x003B1; production in recall responses to LCMV</td>
<td valign="top" align="left">Decreased formation; impaired in expansion (more severe than DGK&#x003B6;<sup>&#x02212;/&#x02212;</sup>), enhanced IFN&#x003B3; but not TNF&#x003B1; production in recall responses to LCMV</td>
<td valign="top" align="left">Impaired formation and maintenance; Decreased expansion but enhanced IFN&#x003B3; and TNF&#x003B1; production in recall response to LM-Ova</td>
<td valign="top" align="left">Shin et al., <xref ref-type="bibr" rid="B145">2012</xref>; Yang et al., <xref ref-type="bibr" rid="B181">2016b</xref></td>
</tr>
<tr>
<td/>
<td valign="top" align="left">Sensitivity to TGF-&#x003B2;</td>
<td valign="top" align="left">Decreased</td>
<td valign="top" align="left">Not reported</td>
<td valign="top" align="left">Not reported</td>
<td valign="top" align="left">Arumugam et al., <xref ref-type="bibr" rid="B6">2015</xref></td>
</tr>
<tr>
<td/>
<td valign="top" align="left">Anti-tumor immunity-OT1 T cells</td>
<td valign="top" align="left">Enhanced expansion and effector function; Enhanced tumor control</td>
<td valign="top" align="left">Not reported</td>
<td valign="top" align="left">Not reported</td>
<td valign="top" align="left">Riese et al., <xref ref-type="bibr" rid="B126">2011</xref>, <xref ref-type="bibr" rid="B127">2013</xref></td>
</tr>
<tr>
<td/>
<td valign="top" align="left">Anti-tumor immunity-Meso-CAR T cells</td>
<td valign="top" align="left">Enhanced effector function</td>
<td valign="top" align="left">Enhanced effector function</td>
<td valign="top" align="left">Stronger effector function than DGK&#x003B1; or &#x003B6; single deficiency; Better tumor control</td>
<td valign="top" align="left">Riese et al., <xref ref-type="bibr" rid="B127">2013</xref></td>
</tr>
</tbody>
</table>
</table-wrap>
<p>T cell anergy is a form of peripheral tolerance whereby T cells that recognize self-antigens in the absence of co-stimulatory signals are rendered functionally inactive (Schwartz, <xref ref-type="bibr" rid="B142">2003</xref>; Powell, <xref ref-type="bibr" rid="B121">2006</xref>; Fathman and Lineberry, <xref ref-type="bibr" rid="B46">2007</xref>; Chappert and Schwartz, <xref ref-type="bibr" rid="B24">2010</xref>; Kalekar et al., <xref ref-type="bibr" rid="B78">2016</xref>). In anergic T cells, DAG-mediated signaling, including Ras/Erk1/2, NF&#x003BA;B, and mTOR activation, is diminished, while Ca<sup>&#x0002B;&#x0002B;</sup>-mediated signaling and NFAT are selectively elevated or unhindered (Powell, <xref ref-type="bibr" rid="B121">2006</xref>; Chappert and Schwartz, <xref ref-type="bibr" rid="B24">2010</xref>; Xie et al., <xref ref-type="bibr" rid="B176">2012</xref>; Figure <xref ref-type="fig" rid="F1">1</xref>). Both DGK&#x003B1; and &#x003B6; are expressed at higher levels in anergic T cells than in activated T cells (Macian et al., <xref ref-type="bibr" rid="B93">2002</xref>; Olenchock et al., <xref ref-type="bibr" rid="B116">2006a</xref>; Zha et al., <xref ref-type="bibr" rid="B186">2006</xref>). Deficiency of either DGK&#x003B1; or &#x003B6; or inhibition of DGK activity contributes T cell resistance to anergic induction (Olenchock et al., <xref ref-type="bibr" rid="B116">2006a</xref>; Zha et al., <xref ref-type="bibr" rid="B186">2006</xref>), while overexpression of DGK&#x003B1; promotes T cell anergy (Zha et al., <xref ref-type="bibr" rid="B186">2006</xref>). Because DAG and IP3 are produced at an equimolar ratio by PLC&#x003B3;1 from PIP2, the elevated DGK&#x003B1; and &#x003B6; expression in anergic T cells may shift the equilibrium of IP3 and DAG toward the predominance of IP3-Ca<sup>&#x0002B;&#x0002B;</sup>-NFAT signaling over DAG signaling and subsequent AP1 induction. NFAT forms a NFAT/AP1 dimer to promote T cell activation, but it also functions as a monomer to induce transcription of anergy-promoting molecules, such as Cbl-b and TRAIL (Macian et al., <xref ref-type="bibr" rid="B93">2002</xref>; Wu et al., <xref ref-type="bibr" rid="B175">2006</xref>). It is postulated that elevated DGK activity may lead to NFAT monomer predominance over NFAT/AP1 dimer for anergy induction (Zhong et al., <xref ref-type="bibr" rid="B192">2008</xref>; Krishna and Zhong, <xref ref-type="bibr" rid="B85">2013a</xref>), although experimental evidence has not yet been presented.</p>
<fig id="F1" position="float">
<label>Figure 1</label>
<caption><p><bold>DGK&#x003B1; and DGK&#x003B6; in T cell activation and anergy</bold>. Engagement of the TCR in the presence of co-stimulation results in strong activation of the PI3K-PDK1-Akt pathway (<bold>left panel</bold>). This pathway leads to mTORC2 signaling. Together with activation of the RasGRP1/Ras-Erk1/2 and PKC&#x003B8;-CARMA1 pathways, they leads to mTORC1 activation. mTORC2 also promotes Akt activation via phosphorylation. Activated Akt phosphorylates Foxo1, leading to it sequestration in the cytosol and failure to activate DGK&#x003B1; transcription. In activated T cells, miR-34a is upregulated, which in turn downregulates DGK&#x003B6; expression. Decreased DGK&#x003B1; and &#x003B6; expression leads to strong DAG-mediated signaling including increases of AP-1 and NF&#x003BA;B activity. AP-1 associates with NFAT to promote T cell activation. At the same time, AP-1 reduces monomeric NFAT to prevent it from inducing anergy promoting molecules. Strong DAG signaling together with IP3-CaN (calcineurin)-NFAT signaling allows full activation of T cells. In contrast, engagement of TCR in the absence of co-stimulation decreases PI3K-Akt-mTOR signaling, leading to increased nuclear Foxo1 and DGK&#x003B1; transcription (<bold>right panel</bold>). miR-34a mediated repression of DGK&#x003B6; might also be lost under anergy inducing conditions. Increased DGK&#x003B1; and &#x003B6; expression may lead to a skewed balance between IP3 and DAG toward strong or selective Ca<sup>&#x0002B;&#x0002B;</sup>-NFAT signaling and induction of Egr1/2, which further induce transcription of DGK&#x003B1; and DGK&#x003B6; as well as other anergy promoting molecules. Selective IP3-Ca<sup>&#x0002B;&#x0002B;</sup>-NFAT signaling in the presence of weak DAG-mediated signaling induces T cells to enter an anergic state.</p></caption>
<graphic xlink:href="fcell-04-00130-g0001.tif"/>
</fig>
<p>An important issue is how DGK&#x003B1; and &#x003B6; expression is regulated. The transcription factor early growth response gene 2 (Egr2) is upregulated in anergic T cells and plays an important role in T cell anergy (Zheng et al., <xref ref-type="bibr" rid="B190">2012</xref>). It binds directly to both <italic>Dgka</italic> and <italic>Dgkz</italic> promoters to increase the expression of these genes as well as several other anergy-promoting genes (Zheng et al., <xref ref-type="bibr" rid="B190">2012</xref>, <xref ref-type="bibr" rid="B191">2013</xref>). Another transcription factor, Foxo1, also directly promotes <italic>Dgka</italic> transcription (Martinez-Moreno et al., <xref ref-type="bibr" rid="B99">2012</xref>). Foxo1 function, which is regulated by its subcellular localization between the cytosol and nuclei, is sequestered in the cytosolic compartment following Akt-mediated phosphorylation, which prevents it from association with target genes. In na&#x000EF;ve or unstimulated T cells, nuclear Foxo1 activates <italic>Dgka</italic> expression. TCR engagement in the presence of CD28 costimulation induces strong PI3K/Akt activation, which may reduce nuclear Foxo1 and subsequent DGK&#x003B1; expression to ensure full T cell activation and avoidance of anergy (Martinez-Moreno et al., <xref ref-type="bibr" rid="B99">2012</xref>). DGK&#x003B6; expression has also been found to be regulated by microRNA. Two conserved sequences that match to the miR-34a seed sequence are located in the coding region and 3&#x02032; untranslated region (3&#x02032; UTR) of <italic>Dgkz</italic>. miR-34a expression is greatly upregulated in activated T cells. miR-34a directly represses DGK&#x003B6; expression through targeting both <italic>Dgkz</italic> 3&#x02032; UTR and the coding region to promote T cell activation (Shin et al., <xref ref-type="bibr" rid="B147">2013a</xref>).</p>
</sec>
<sec id="s3">
<title>DGKs in iNKT cell development and function</title>
<p>Invariant NKT (iNKT) cells express the invariant V&#x003B1;14J&#x003B1;18 TCR, which recognizes lipid antigens presented by MHC class I-like CD1d molecules (Kawano et al., <xref ref-type="bibr" rid="B79">1997</xref>; Mendiratta et al., <xref ref-type="bibr" rid="B103">1997</xref>; Gapin et al., <xref ref-type="bibr" rid="B54">2001</xref>). They are derived from a unique innate-like lymphoid cell lineage and can rapidly respond to agonist stimulation in both innate and adaptive immune responses via production of cytokines, such as IL-4, IL-17, IL-10, IL-13, IFN&#x003B3;, and TNF&#x003B1; (Bendelac et al., <xref ref-type="bibr" rid="B12">2007</xref>; Coquet et al., <xref ref-type="bibr" rid="B33">2008</xref>; Godfrey et al., <xref ref-type="bibr" rid="B57">2010</xref>; Milpied et al., <xref ref-type="bibr" rid="B110">2011</xref>; Brennan et al., <xref ref-type="bibr" rid="B15">2013</xref>; Salio et al., <xref ref-type="bibr" rid="B135">2014</xref>). iNKT cells participate in host defense against microbial infection, antitumor immunity, and many diseases, such as allergies, asthma, graft-vs.-host disease, and obesity (Osman et al., <xref ref-type="bibr" rid="B118">2000</xref>; Terashima et al., <xref ref-type="bibr" rid="B158">2008</xref>; Van Kaer et al., <xref ref-type="bibr" rid="B163">2013</xref>; Berzins and Ritchie, <xref ref-type="bibr" rid="B13">2014</xref>).</p>
<p>Based on surface CD24, CD44, and NK1.1 expression, iNKT cells are traditionally defined by four developmental stages in the thymus: stage 0 (CD24<sup>&#x0002B;</sup>CD44<sup>&#x02212;</sup>NK1.1<sup>&#x02212;</sup>), stage 1 (CD24<sup>&#x02212;</sup>CD44<sup>&#x02212;</sup>NK1.1<sup>&#x02212;</sup>), stage 2 (CD24<sup>&#x02212;</sup>CD44<sup>&#x0002B;</sup>NK1.1<sup>&#x02212;</sup>), and stage 3 (CD24<sup>&#x02212;</sup>CD44<sup>&#x0002B;</sup>NK1.1<sup>&#x0002B;</sup>) (Bendelac et al., <xref ref-type="bibr" rid="B12">2007</xref>; Godfrey et al., <xref ref-type="bibr" rid="B57">2010</xref>; Figure <xref ref-type="fig" rid="F2">2</xref>). Recently, iNKT cells have also been defined into multiple terminally differentiated effector lineages, such as IFN-&#x003B3;-producing iNKT1, IL-4-producing iNKT2, and IL-17-producing iNKT17 lineage (Matsuda et al., <xref ref-type="bibr" rid="B100">2006</xref>; Michel et al., <xref ref-type="bibr" rid="B107">2007</xref>, <xref ref-type="bibr" rid="B108">2008</xref>). In addition, IL-10-producing iNKT10, T follicular helper (Tfh)-like iNKT cells (iNKT<sub>FH</sub>), and regulatory T cell (Treg)-like iNKT cells have also recently been described (Chang et al., <xref ref-type="bibr" rid="B23">2012</xref>; Tonti et al., <xref ref-type="bibr" rid="B159">2012</xref>; Sag et al., <xref ref-type="bibr" rid="B133">2014</xref>; Lynch et al., <xref ref-type="bibr" rid="B92">2015</xref>; Rampuria and Lang, <xref ref-type="bibr" rid="B125">2015</xref>). iNKT1 and iNKT17 cells mostly reside in the CD44<sup>&#x0002B;</sup>NK1.1<sup>&#x0002B;</sup> and the CD44<sup>&#x0002B;</sup>NK1.1<sup>&#x02212;</sup>ICOS<sup>&#x0002B;</sup> populations, respectively (Watarai et al., <xref ref-type="bibr" rid="B165">2012</xref>; Constantinides and Bendelac, <xref ref-type="bibr" rid="B32">2013</xref>; Lee et al., <xref ref-type="bibr" rid="B88">2013</xref>; Wu et al., <xref ref-type="bibr" rid="B174">2014b</xref>).</p>
<fig id="F2" position="float">
<label>Figure 2</label>
<caption><p><bold>Regulation of iNKT cell development by DGK&#x003B1; and DGK&#x003B6;</bold>. CD4<sup>&#x0002B;</sup>CD8<sup>&#x0002B;</sup> DP thymocytes expressing the <italic>i</italic>V&#x003B1;14TCR undergo positive selection to become iNKT cells. RasGRP1/mTOR signaling is critical for generation of stage 0 iNKT cells. Constitutive DGK&#x003B1; inhibits iNKT generation possibly by inhibiting RasGRP1/Erk1/2 activation. DGK&#x003B1; and &#x003B6; double deficiency or overactivation of IKK&#x003B2; causes similar blockade of early iNKT cell development. Overactivation of mTORC1 due to TSC1 deficiency leads to blockade of iNKT terminal maturation. DGK&#x003B1; and &#x003B6; double deficiency or expression of a constitutively active KRas also results in impaired iNKT terminal maturation, correlated with elevated mTORC1 activation.</p></caption>
<graphic xlink:href="fcell-04-00130-g0002.tif"/>
</fig>
<p>Both the RasGRP1-Ras-Erk1/2 and PKC&#x003B8;-IKK-NF&#x003BA;B pathways have been shown to play important roles in iNTK cell development (Yang et al., <xref ref-type="bibr" rid="B182">2015</xref>). Although it was initially thought that Ras and Erk1/2 activation were dispensable for iNKT cell ontogeny, two recent studies have provided evidence that the RasGRP1-Ras-Mek1/2-Erk1/2 pathway is critical for early iNKT cell development (Hu et al., <xref ref-type="bibr" rid="B68">2011</xref>; Shen et al., <xref ref-type="bibr" rid="B143">2011a</xref>). In RasGRP1-deficient mice, stage 0 iNKT cells as well as total iNKT cell count are significantly decreased, suggesting defective positive selection (Shen et al., <xref ref-type="bibr" rid="B143">2011a</xref>). In concordance with these observations, mice expressing dominant negative Ras in developing thymocytes demonstrated iNKT cell developmental defects (Hu et al., <xref ref-type="bibr" rid="B68">2011</xref>). The RasGRP1-Ras-Erk1/2 pathway activates mTORC1 and mTORC2 signaling as well as Mnk1/2 in developing thymocytes (Gorentla et al., <xref ref-type="bibr" rid="B60">2011</xref>, <xref ref-type="bibr" rid="B59">2013</xref>). Both mTORC1 and mTORC2, but not Mnk1/2, are important for early iNKT cell development (Gorentla et al., <xref ref-type="bibr" rid="B59">2013</xref>; Shin et al., <xref ref-type="bibr" rid="B146">2014</xref>; Wei et al., <xref ref-type="bibr" rid="B166">2014</xref>; Zhang et al., <xref ref-type="bibr" rid="B187">2014</xref>; Prevot et al., <xref ref-type="bibr" rid="B122">2015</xref>), revealing a RasGRP1-Ras-Erk1/2-mTOR signal cascade in iNKT cells for their development. mTORC1, but not mTORC2, promotes PLZF nuclear localization, which may ensure iNKT cell maturation in stage 1 and differentiation to cytokine-producing cells (Shin et al., <xref ref-type="bibr" rid="B146">2014</xref>; Prevot et al., <xref ref-type="bibr" rid="B122">2015</xref>). In iNKT cells, both the DAG and the SLAM (signaling lymphocytic-activation molecule)-SAP (SLAM adaptor protein)-FynT pathway are involved in PKC&#x003B8; and subsequent NF&#x003BA;B activation. The PKC&#x003B8;-IKK-NF&#x003BA;B pathway is essential in the ontogeny of iNKT cells, at least in part by increasing expression of antiapoptotic proteins, such as Bcl-xL (Elewaut et al., <xref ref-type="bibr" rid="B44">2003</xref>; Sivakumar et al., <xref ref-type="bibr" rid="B153">2003</xref>; Schmidt-Supprian et al., <xref ref-type="bibr" rid="B141">2004</xref>; Stanic et al., <xref ref-type="bibr" rid="B155">2004</xref>; Chung et al., <xref ref-type="bibr" rid="B29">2005</xref>; Nichols et al., <xref ref-type="bibr" rid="B115">2005</xref>; Pasquier et al., <xref ref-type="bibr" rid="B120">2005</xref>; Griewank et al., <xref ref-type="bibr" rid="B62">2007</xref>; Fang et al., <xref ref-type="bibr" rid="B45">2012</xref>), but it is independent of CARMA1 and Malt1 (Mucosa-associated lymphoid tissue lymphoma translocation protein 1) (Medoff et al., <xref ref-type="bibr" rid="B101">2009</xref>). CARMA1 contributes to TCR-induced mTORC1 activation in T cells (Hamilton et al., <xref ref-type="bibr" rid="B65">2014</xref>). Given the minimal requirement of CARMA1 for iNKT cell development, it would be interesting to determine if TCR-induced mTORC1 activation in iNKT cells would be independent of CARMA1.</p>
<p>Emerging evidence demonstrates that tight regulation of DAG-mediated signaling by DGK activity is critical for the development of iNKT cells. Elevated DGK&#x003B1; activity brought about by expressing a membrane-targeted caDGK&#x003B1; in thymocytes under the control of the proximal Lck promoter caused reduced Erk1/2 activation in thymocytes and a 50% decrease of thymic iNKT cells (Almena et al., <xref ref-type="bibr" rid="B2">2013</xref>). Germline deletion of either DGK&#x003B1; or &#x003B6; did not significantly alter iNKT cell numbers in mice. However, simultaneous ablation of both enzymes resulted in a drastic decrease in the number of iNKT cells in the thymus and in peripheral lymphoid organs (Shen et al., <xref ref-type="bibr" rid="B144">2011b</xref>), correlated with prolonged DAG accumulation, elevated Ras-Erk1/2 and PKC&#x003B8;-IKK signaling, and enhanced activation of both mTORC1 and mTORC2 activities in DP thymocytes (Guo et al., <xref ref-type="bibr" rid="B63">2008</xref>; Gorentla et al., <xref ref-type="bibr" rid="B60">2011</xref>). In DGK&#x003B1; and &#x003B6; double knockout mice, there was a decrease in the number of stage 1 to stage 3 iNKT cells. Stage 0 iNKT cells were not examined. The remaining iNKT cells in these mice were mostly CD44<sup>&#x0002B;</sup>NK1.1<sup>&#x02212;</sup> stage 2 cells, suggesting that DGK&#x003B1; and &#x003B6; promote both early and terminal iNKT cell maturation (Shen et al., <xref ref-type="bibr" rid="B144">2011b</xref>). Interestingly, expression of constitutive active (CA) IKK&#x003B2; in developing thymocytes caused a severe reduction in the number of stage 1&#x02013;3 iNKT cells. Thus, DGK&#x003B1; and &#x003B6; double deficiency may cause dysregulation of the PKC&#x003B8;-IKK-NF&#x003BA;B pathway, leading to early iNKT cell developmental blockage. Different from CA-IKK&#x003B2;, expression of CA-KRas in thymocytes caused a selective blockage of the transition from stage 2 to 3 of iNKT cells and was associated with decreased T-bet expression (Shen et al., <xref ref-type="bibr" rid="B144">2011b</xref>). Because CA-KRas and DGK&#x003B1; and &#x003B6; double deficiency caused elevated mTORC1 signaling (Gorentla et al., <xref ref-type="bibr" rid="B60">2011</xref>) and overactivation of mTORC1 in the absence of TSC1 also resulted in a similar iNKT cell terminal maturation defect (Wu et al., <xref ref-type="bibr" rid="B174">2014b</xref>), DGK&#x003B1; and &#x003B6; may synergistically promote iNKT cell terminal maturation at least in part by preventing overactivation of the RasGRP1-Ras-Erk1/2-mTORC1 signaling cascade.</p>
<p>The role of DGKs in iNKT effector functions, however, is less clear. DAG-mediated signaling pathways play important roles in T cell activation, effector lineage differentiation, and tolerance (Chen et al., <xref ref-type="bibr" rid="B28">2012</xref>). They are thus expected to be important in iNKT activation and function. For example, PKC&#x003B8; is essential for iNKT-mediated liver inflammation (Fang et al., <xref ref-type="bibr" rid="B45">2012</xref>). In germline DGK&#x003B6;-deficient mice, iNKT17, but not iNKT1 cell number, was selectively decreased. Interestingly, iNKT-17 defects caused by DGK&#x003B6; deficiency can be corrected in chimeric mice reconstituted with mixed WT and DGK&#x003B6;-deficient bone marrow cells, suggesting that DGK&#x003B6; controls iNKT-17 differentiation via an extrinsic mechanism (Wu et al., <xref ref-type="bibr" rid="B172">2013</xref>). Future investigation should define the type of cells that provide such a DGK&#x003B6;-regulated extrinsic control of iNKT-17 development. Additionally, mTORC1 deficient iNKT cells are defective in activation and are not able to inflict liver damage (Shin et al., <xref ref-type="bibr" rid="B146">2014</xref>). Overactivation of mTORC1 due to TSC1 deficiency shapes iNKT cell effector lineage fates and contributes to their resistance to anergy and enhanced antitumor immunity (Wu et al., <xref ref-type="bibr" rid="B173">2014a</xref>,<xref ref-type="bibr" rid="B174">b</xref>). Given the ability of DGKs in regulating mTOR and PKC&#x003B8; signaling, future studies should determine if DGKs intrinsically regulate iNKT cell functions and effector lineage differentiation under steady state and in various pathologic conditions.</p>
</sec>
<sec id="s4">
<title>DGK&#x003B1; and &#x003B6; in CD8 T cell-mediated antipathogen immune responses</title>
<p>CD8 T cells play important roles in immune responses against pathogens, particularly intracellular pathogens. Upon microbial infection, na&#x000EF;ve CD8 T cells are activated after engagement of their TCRs with pathogen-derived peptides presented by antigen-presenting cells. They massively expand and differentiate into cytotoxic T cells that are equipped to kill pathogen-infected target cells and secrete proinflammatory cytokines. A typical antigen-specific CD8 T cell-mediated response includes an expansion phase in which CD8 cells proliferate rapidly and differentiate into effector cells, a contraction phase in which 90&#x02013;95% of effector CD8 cells die due to apoptosis, and a memory maintenance phase in which the remaining 5&#x02013;10% of cells are retained as fast-responding memory cells (Williams et al., <xref ref-type="bibr" rid="B169">2006</xref>; Harty and Badovinac, <xref ref-type="bibr" rid="B66">2008</xref>; Zhang and Bevan, <xref ref-type="bibr" rid="B188">2011</xref>). During the expansion phase, effector CD8 T cells differentiate into short-lived effector cells (SLECs, CD127<sup>low</sup>KLRG1<sup>hi</sup>) and memory precursor effector cells (MPECs, CD127<sup>hi</sup>KLRG1<sup>low</sup>) (Kaech et al., <xref ref-type="bibr" rid="B76">2003</xref>; Sarkar et al., <xref ref-type="bibr" rid="B138">2008</xref>). SLECs produce high levels of cytokines but are prone to death, while MPECs have high potential to differentiate to long-lived memory cells.</p>
<p>Engagement of the TCR on na&#x000EF;ve CD8 T cells provides a critical signal that initiates their activation and expansion. TCR signal strength and quality regulate both the magnitude of expansion and the effector fates of CD8 T cells (Zehn et al., <xref ref-type="bibr" rid="B185">2009</xref>; Iborra et al., <xref ref-type="bibr" rid="B69">2013</xref>; Marchingo et al., <xref ref-type="bibr" rid="B96">2014</xref>; Fulton et al., <xref ref-type="bibr" rid="B52">2015</xref>) through the Ras-Erk1/2-AP1 and PKC&#x003B8;-IKK-NF&#x003BA;B signaling pathways (Sun et al., <xref ref-type="bibr" rid="B157">2000</xref>; Priatel et al., <xref ref-type="bibr" rid="B124">2002</xref>; Zhong et al., <xref ref-type="bibr" rid="B192">2008</xref>; Merida et al., <xref ref-type="bibr" rid="B104">2015</xref>). An initial study found that DGK&#x003B6;-deficient mice mounted an enhanced antiviral immune response following lymphocytic choriomeningitis virus (LCMV) infection. These mice showed enhanced expansion of viral-specific effector CD4 and CD8 T cells that contained higher percentages of IFN&#x003B3;-producing cells 7 days after LCMV infection, which resulted in a quicker clearance of the virus than in WT mice (Zhong et al., <xref ref-type="bibr" rid="B193">2003</xref>). A subsequent study further revealed that DGK&#x003B1; and &#x003B6; differentially regulate effector and memory CD8 T cell differentiation. While a deficiency of either DGK&#x003B1; or &#x003B6; resulted in enhanced effector CD8 T cell expansion, it slightly decreased memory CD8 T cell formation and response to LCMV infection, which correlated with elevated mTORC1 signaling in these cells (Shin et al., <xref ref-type="bibr" rid="B145">2012</xref>).</p>
<p>Although deficiency of either DGK&#x003B1; or &#x003B6; enhances antiviral immune responses, DGK&#x003B1; and &#x003B6; double deficiency actually caused severe impairment of CD8 T cell-mediated responses to <italic>Listeria monocytogenes</italic> (LM) infection (Yang et al., <xref ref-type="bibr" rid="B181">2016b</xref>). In an ovalbumin (OVA) specific OT1 TCR transgenic model and newly generated floxed DGK&#x003B6; conditional-deficient mice where DGK&#x003B1; and &#x003B6; activity can be selectively deleted in na&#x000EF;ve and memory CD8 T cells, it was found that ablation of both DGK&#x003B1; and &#x003B6;, but not of the individual DGK&#x003B1; or &#x003B6; isoform, impaired primary CD8 T cell responses (Table <xref ref-type="table" rid="T1">1</xref>). At the earliest hours after LM-OVA infection, DGK&#x003B1; and &#x003B6; double deficient CD8 T cells expressed decreased levels of chemokine receptors CCR4, CCR5, and CXCR3 and showed impaired migration to the draining lymph nodes (dLNs). Cells that migrated to the dLNs were compromised in their proliferative ability due to not yet defined mechanism(s). In contrast to this <italic>in vivo</italic> setting, DGK&#x003B1; and &#x003B6; double deficient CD8 T cells proliferated more vigorously than WT controls <italic>in vitro</italic> following antigen stimulation, suggesting that the defect in proliferation was not due to intrinsic defects. It would be interesting to determine if DGK&#x003B1; and &#x003B6; are involved in regulating T cell/APC engagement for initiation of T cell activation. As a consequence of impaired expansion of DGK&#x003B1; and &#x003B6; double deficient CD8 T cells during primary immune responses, formation of memory cells was severely decreased as well. In addition, DGK&#x003B1; and &#x003B6; double deficiency compromised memory CD8 T cell function in homeostasis. Ablation of DGK&#x003B1; and &#x003B6; in preformed memory CD8 T cells accelerated the decline of these cells due to increased death and decreased homeostatic proliferative renewal (Yang et al., <xref ref-type="bibr" rid="B181">2016b</xref>).</p>
<p>In DGK&#x003B1; and &#x003B6; double deficient CD8 T cells, TCR-induced NF&#x003BA;B nuclear localization was surprisingly diminished, although nuclear NF&#x003BA;B was elevated before stimulation (Yang et al., <xref ref-type="bibr" rid="B181">2016b</xref>). A similar situation was also observed in T cells expressing a constitutive active IKK&#x003B2;. CD8 T cells expressing a constitutive active IKK&#x003B2; are defective in expansion <italic>in vivo</italic> following LM-OVA infection and are impaired in TCR-induced nuclear NF&#x003BA;B translocation (Krishna et al., <xref ref-type="bibr" rid="B84">2012</xref>). It is likely, then, that elevated DAG levels may lead to an increase of basal activation of the PKC&#x003B8;-IKK-NF&#x003BA;B pathway, which may trigger a negative feedback inhibition for TCR-induced activation of this pathway. Further studies should illustrate the exact negative feedback mechanism caused by DGK&#x003B1; and &#x003B6; double deficiency and by overactivation of IKK&#x003B2;.</p>
<p>One consequence of decreased NF&#x003BA;B activation in DGK&#x003B1; and &#x003B6; double deficient CD8 T cells was decreased miR-155 expression and, subsequently, increased SOCS1 expression (Yang et al., <xref ref-type="bibr" rid="B181">2016b</xref>). miR-155 promotes expansion of effector CD8 T cells and generation of memory CD8 T cells by targeting SOCS1 expression to ensure signaling from the common &#x003B3; (&#x003B3;c) chain cytokine receptors (Dudda et al., <xref ref-type="bibr" rid="B42">2013</xref>; Gracias et al., <xref ref-type="bibr" rid="B61">2013</xref>). Common &#x003B3; chain receptor signaling is known to be critical for CD8 effector and memory responses (Becker et al., <xref ref-type="bibr" rid="B11">2002</xref>; Kieper et al., <xref ref-type="bibr" rid="B80">2002</xref>; Carrio et al., <xref ref-type="bibr" rid="B22">2004</xref>; Bachmann et al., <xref ref-type="bibr" rid="B8">2007</xref>; Cui and Kaech, <xref ref-type="bibr" rid="B38">2010</xref>; Sandau et al., <xref ref-type="bibr" rid="B136">2010</xref>; Feau et al., <xref ref-type="bibr" rid="B47">2011</xref>; Boyman and Sprent, <xref ref-type="bibr" rid="B14">2012</xref>; Van Der Windt et al., <xref ref-type="bibr" rid="B162">2012</xref>; Starbeck-Miller et al., <xref ref-type="bibr" rid="B156">2014</xref>; Cui et al., <xref ref-type="bibr" rid="B37">2015</xref>); SOCS1 negatively controls signaling from these &#x003B3;c-chain cytokine receptors (Cornish et al., <xref ref-type="bibr" rid="B34">2003</xref>). Overexpression of miR-155 restored signaling from these receptors in DGK&#x003B1; and &#x003B6; double deficient CD8 T cells and partially corrected their defective responses. The data identified a DGK-NF&#x003BA;B-miR-155-SOCS1 axis that bridges TCR and &#x003B3;c-chain cytokine signaling for robust CD8 T-cell primary and memory responses to bacterial infection (Yang et al., <xref ref-type="bibr" rid="B181">2016b</xref>).</p>
</sec>
<sec id="s5">
<title>DGK&#x003B1; and &#x003B6; regulate CD8 T cell and CAR-T cell mediated antitumor immunity</title>
<p>A tumor microenvironment suppresses T cell mediated antitumor immunity, rendering tumor-infiltrating T cells hyporesponsive or anergic (Abe and Macian, <xref ref-type="bibr" rid="B1">2013</xref>; Crespo et al., <xref ref-type="bibr" rid="B35">2013</xref>). DGK&#x003B6;-deficient CD8 T cells contain elevated antitumor immunity. DGK&#x003B6;-deficient mice subcutaneously injected with the EL-4 thymoma had reduced tumor burdens and increased tumor-specific proliferative CD8 effector T cells compared to WT controls (Riese et al., <xref ref-type="bibr" rid="B126">2011</xref>, <xref ref-type="bibr" rid="B127">2013</xref>). Both increased Erk1/2 activation and decreased sensitivity to the suppressive cytokine TGF-&#x003B2; in DGK&#x003B6;-deficient CD8 T cells may be responsible for stronger activation and antitumor immunity (Arumugam et al., <xref ref-type="bibr" rid="B6">2015</xref>).</p>
<p>Recently, chimeric antigen receptor (CAR) T cells (CAR-T cells) have demonstrated superior activity in tumor control and, in some cases, tumor eradication (Fesnak et al., <xref ref-type="bibr" rid="B49">2016</xref>). However, CAR-T cells have manifested limited efficacy for solid tumors in that they are subjected to suppression by the local tumor environment and may become hyporesponsive or anergic. Such hyporesponsive or anergic tumor-infiltrating T cells or CAR-T cells show decreased Ras/Erk activation but elevated DGK&#x003B1; and &#x003B6; levels (Moon et al., <xref ref-type="bibr" rid="B112">2014</xref>). Both type 1 and type 2 DGK inhibitors are capable of reversing such hyporesponsiveness in tumor-infiltrating CAR-T cells <italic>ex vivo</italic>, leading to increased cytotoxicity (Moon et al., <xref ref-type="bibr" rid="B112">2014</xref>). Consistent with this finding, genetic ablation of DGK&#x003B1;, &#x003B6;, or both DGK&#x003B1; and &#x003B6; enhanced CD8 T cells transduced with a mesoCAR, a CAR with high affinity to the human tumor antigen mesothelin. DGK&#x003B1; and &#x003B6; single or double deficient mesoCAR-T cells produced elevated IFN&#x003B3; production and demonstrated stronger antitumor cytotoxicity than WT controls, which correlated with reduced sensitivity to TGF&#x003B2; and increased expression of FasL and TRAIL, ligands for the death receptors FAS and TRAIL-RI/RII. Importantly, DGK-deficient mesoCAR-T cells controlled mesothelioma <italic>in vivo</italic> better than WT controls (Riese et al., <xref ref-type="bibr" rid="B127">2013</xref>). The enhancement of CAR-T function by DGK&#x003B1; and &#x003B6; double deficiency sharply contrasts with the defective anti-LM responses of DGK&#x003B1; and &#x003B6; double deficient CD8 T cells, suggesting differential requirements of DAG-mediated signaling downstream of CARs and TCR and for CAR-T and conventional CD8 T cell activation.</p>
</sec>
<sec id="s6">
<title>Summary</title>
<p>Over the past few years, our understanding of the DGK family of enzymes in immune cells has been significantly advanced. DGK&#x003B1; and &#x003B6; act individually to negatively control T cell activation, effector CD8 T cell differentiation and function during antimicrobial and antitumor immune responses, and tTreg generation. DGK&#x003B1; and &#x003B6; also manifest functional redundancy in promoting conventional &#x003B1;&#x003B2; T cell and iNKT cell development and in enhancing CAR-T cell function. The unexpected severe impairment of CD8 T cell-mediated immune responses to microbial infection in the absence of both DGK&#x003B1; and &#x003B6; underscores the importance of fine-tuning DAG levels and also suggests potential negative feedback mechanisms triggered by deregulated DAG-mediated signaling. Defining such mechanisms should shed additional light on the regulation of DAG-mediated signaling pathways. Additional efforts are also needed to illustrate the underlying mechanisms of differential effects of DGK&#x003B1; and &#x003B6; double deficiency on CD8 T cells during antitumor and antipathogen immune responses. While DGK&#x003B1; and &#x003B6; perform similar or redundant functions, a more prominent role of DGK&#x003B6; than DGK&#x003B1; in certain aspects of T cell biology, such as effector CD8 T cell differentiation and Treg, development has been noted (Table <xref ref-type="table" rid="T1">1</xref>); however, determinants of such differences between DGK&#x003B1; and &#x003B6; remain unclear. The drastic differences observed between DGK&#x003B1; and &#x003B6; double and single deficient CD8 T cells during immune responses beg for development of DGK isoform-specific inhibitors. Such inhibitors used individually or in combination may provide great advantages over pan-DGK inhibitors in modulating immune responses for therapeutic purposes in different disease settings to minimize undesirable side effects. Key elements, such as transcription factors, microRNAs, and posttranslational modifications that control the dynamic individual and synergistic functions of DGK isoforms in T cells are beginning to be appreciated and require further exploration for better understanding of their physiological importance and the development of novel strategies enabling selective modulation of DGK &#x003B1; and &#x003B6; expression and activities for treating autoimmune diseases, viral infections, and cancer.</p>
</sec>
<sec id="s7">
<title>Author contributions</title>
<p>SC, ZH, and X-PZ are involved in preparation of the manuscript.</p>
<sec>
<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>
</sec>
</body>
<back>
<ack>
<p>This work is supported by the National Institutes of Health (R01AI079088 and R01AI101206) for X-PZ.</p>
</ack>
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