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<front>
<journal-meta>
<journal-id journal-id-type="publisher-id">Front. Pharmacol.</journal-id>
<journal-title>Frontiers in Pharmacology</journal-title>
<abbrev-journal-title abbrev-type="pubmed">Front. Pharmacol.</abbrev-journal-title>
<issn pub-type="epub">1663-9812</issn>
<publisher>
<publisher-name>Frontiers Media S.A.</publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id pub-id-type="publisher-id">1108915</article-id>
<article-id pub-id-type="doi">10.3389/fphar.2023.1108915</article-id>
<article-categories>
<subj-group subj-group-type="heading">
<subject>Pharmacology</subject>
<subj-group>
<subject>Review</subject>
</subj-group>
</subj-group>
</article-categories>
<title-group>
<article-title>NF-&#x3ba;B mediated regulation of tumor cell proliferation in hypoxic microenvironment</article-title>
<alt-title alt-title-type="left-running-head">Rastogi et al.</alt-title>
<alt-title alt-title-type="right-running-head">
<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.3389/fphar.2023.1108915">10.3389/fphar.2023.1108915</ext-link>
</alt-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name>
<surname>Rastogi</surname>
<given-names>Shubham</given-names>
</name>
<xref ref-type="aff" rid="aff1">
<sup>1</sup>
</xref>
<uri xlink:href="https://loop.frontiersin.org/people/1402793/overview"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Aldosary</surname>
<given-names>Sara</given-names>
</name>
<xref ref-type="aff" rid="aff2">
<sup>2</sup>
</xref>
<uri xlink:href="https://loop.frontiersin.org/people/573710/overview"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Saeedan</surname>
<given-names>Abdulaziz S.</given-names>
</name>
<xref ref-type="aff" rid="aff3">
<sup>3</sup>
</xref>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Ansari</surname>
<given-names>Mohd. Nazam</given-names>
</name>
<xref ref-type="aff" rid="aff3">
<sup>3</sup>
</xref>
<uri xlink:href="https://loop.frontiersin.org/people/386494/overview"/>
</contrib>
<contrib contrib-type="author" corresp="yes">
<name>
<surname>Singh</surname>
<given-names>Manjari</given-names>
</name>
<xref ref-type="aff" rid="aff4">
<sup>4</sup>
</xref>
<xref ref-type="corresp" rid="c001">&#x2a;</xref>
<xref ref-type="fn" rid="fn1">
<sup>&#x2020;</sup>
</xref>
<uri xlink:href="https://loop.frontiersin.org/people/790694/overview"/>
</contrib>
<contrib contrib-type="author" corresp="yes">
<name>
<surname>Kaithwas</surname>
<given-names>Gaurav</given-names>
</name>
<xref ref-type="aff" rid="aff1">
<sup>1</sup>
</xref>
<xref ref-type="corresp" rid="c001">&#x2a;</xref>
<xref ref-type="fn" rid="fn1">
<sup>&#x2020;</sup>
</xref>
</contrib>
</contrib-group>
<aff id="aff1">
<sup>1</sup>
<institution>Department of Pharmaceutical Sciences</institution>, <institution>School of Biosciences and Biotechnology</institution>, <institution>Babasaheb Bhimrao Ambedkar University</institution>, <addr-line>Lucknow</addr-line>, <addr-line>Uttar Pradesh</addr-line>, <country>India</country>
</aff>
<aff id="aff2">
<sup>2</sup>
<institution>Department of Pharmaceutical Sciences</institution>, <institution>King Faisal University</institution>, <addr-line>Al-Ahsa</addr-line>, <country>Saudi Arabia</country>
</aff>
<aff id="aff3">
<sup>3</sup>
<institution>Department of Pharmacology</institution>, <institution>College of Pharmacy</institution>, <institution>Prince Sattam Bin Abdulaziz University</institution>, <addr-line>Al-Kharj</addr-line>, <country>Saudi Arabia</country>
</aff>
<aff id="aff4">
<sup>4</sup>
<institution>Department of Pharmaceutical Sciences</institution>, <institution>Assam Central University</institution>, <addr-line>Silchar</addr-line>, <country>India</country>
</aff>
<author-notes>
<fn fn-type="edited-by">
<p>
<bold>Edited by:</bold> <ext-link ext-link-type="uri" xlink:href="https://loop.frontiersin.org/people/984649/overview">Zhaofeng Liang</ext-link>, Jiangsu University, China</p>
</fn>
<fn fn-type="edited-by">
<p>
<bold>Reviewed by:</bold> <ext-link ext-link-type="uri" xlink:href="https://loop.frontiersin.org/people/716264/overview">Jung-whan Kim</ext-link>, The University of Texas at Dallas, United States</p>
<p>
<ext-link ext-link-type="uri" xlink:href="https://loop.frontiersin.org/people/1169645/overview">Shizhen Zhang</ext-link>, Zhejiang University, China</p>
</fn>
<corresp id="c001">&#x2a;Correspondence: Manjari Singh, <email>manjari.pharm@gmail.com</email>, <email>drmanjari.singh@aus.ac.in</email>; Gaurav Kaithwas, <email>gauravpharm@hotmail.com</email>
</corresp>
<fn fn-type="equal" id="fn1">
<label>
<sup>&#x2020;</sup>
</label>
<p>These authors have contributed equally to this work</p>
</fn>
<fn fn-type="other">
<p>This article was submitted to Pharmacology of Anti-Cancer Drugs, a section of the journal Frontiers in Pharmacology</p>
</fn>
</author-notes>
<pub-date pub-type="epub">
<day>20</day>
<month>02</month>
<year>2023</year>
</pub-date>
<pub-date pub-type="collection">
<year>2023</year>
</pub-date>
<volume>14</volume>
<elocation-id>1108915</elocation-id>
<history>
<date date-type="received">
<day>26</day>
<month>11</month>
<year>2022</year>
</date>
<date date-type="accepted">
<day>01</day>
<month>02</month>
<year>2023</year>
</date>
</history>
<permissions>
<copyright-statement>Copyright &#xa9; 2023 Rastogi, Aldosary, Saeedan, Ansari, Singh and Kaithwas.</copyright-statement>
<copyright-year>2023</copyright-year>
<copyright-holder>Rastogi, Aldosary, Saeedan, Ansari, Singh and Kaithwas</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) and the copyright owner(s) 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>Hypoxia is caused by a cancer-promoting milieu characterized by persistent inflammation. NF-&#x3ba;B and HIF-1&#x3b1; are critical participants in this transition. Tumor development and maintenance are aided by NF-&#x3ba;B, while cellular proliferation and adaptability to angiogenic signals are aided by HIF-1&#x3b1;. Prolyl hydroxylase-2 (PHD-2) has been hypothesized to be the key oxygen-dependent regulator of HIF-1&#x3b1; and NF-transcriptional B&#x2019;s activity. Without low oxygen levels, HIF-1&#x3b1; is degraded by the proteasome in a process dependent on oxygen and 2-oxoglutarate. As opposed to the normal NF-&#x3ba;B activation route, where NF-&#x3ba;B is deactivated by PHD-2-mediated hydroxylation of IKK, this method actually activates NF-&#x3ba;B. HIF-1&#x3b1; is protected from degradation by proteasomes in hypoxic cells, where it then activates transcription factors involved in cellular metastasis and angiogenesis. The Pasteur phenomenon causes lactate to build up inside the hypoxic cells. As part of a process known as lactate shuttle, MCT-1 and MCT-4 cells help deliver lactate from the blood to neighboring, non-hypoxic tumour cells. Non-hypoxic tumour cells use lactate, which is converted to pyruvate, as fuel for oxidative phosphorylation. OXOPHOS cancer cells are characterized by a metabolic switch from glucose-facilitated oxidative phosphorylation to lactate-facilitated oxidative phosphorylation. Although PHD-2 was found in OXOPHOS cells. There is no clear explanation for the presence of NF-kappa B activity. The accumulation of the competitive inhibitor of 2-oxo-glutarate, pyruvate, in non-hypoxic tumour cells is well established. So, we conclude that PHD-2 is inactive in non-hypoxic tumour cells due to pyruvate-mediated competitive suppression of 2-oxo-glutarate. This results in canonical activation of NF-&#x3ba;B. In non-hypoxic tumour cells, 2-oxoglutarate serves as a limiting factor, rendering PHD-2 inactive. However, FIH prevents HIF-1&#x3b1; from engaging in its transcriptional actions. Using the existing scientific literature, we conclude in this study that NF-&#x3ba;B is the major regulator of tumour cell growth and proliferation <italic>via</italic> pyruvate-mediated competitive inhibition of PHD-2.</p>
</abstract>
<abstract abstract-type="graphical">
<title>Graphical Abstract</title>
<p>
<graphic xlink:href="FPHAR_fphar-2023-1108915_wc_abs.tif" position="anchor"/>
</p>
</abstract>
<kwd-group>
<kwd>lactate shuttle</kwd>
<kwd>cancer</kwd>
<kwd>HIF-1&#x3b1;</kwd>
<kwd>NF-&#x3ba;B</kwd>
<kwd>hypoxia</kwd>
<kwd>PHD2</kwd>
</kwd-group>
</article-meta>
</front>
<body>
<sec id="s1">
<title>1 Introduction</title>
<p>Cancer is a genetic abnormality in which the body&#x2019;s old or flawed cells evade signals of programmed cell death and acquire uncontrolled replicative potential. Cancer can be categorized as solid tumors (carcinoma, sarcoma, melanoma, and lymphoma) and leukemia (no cell mass formation). However, all genetic aberrations that result in abnormal cell growth is not cancer. Mutation in cells results in the formation of &#x201c;neoplasm&#x201d;.The neoplasm may either bud into an enormous cell mass that is not malignant as well as remains confined to a particular location is referred to as a &#x201c;benign tumor&#x201d; (like adenomas, fibroids, hemangiomas and lipomas) or may possess malignant characteristics and metastasize to nearby organs and tissues through blood and lymph referred to as a &#x201c;malignant tumour&#x201d; (like adenocarcinomas, basal cell carcinomas and squamous cell carcinomas) (<xref ref-type="bibr" rid="B210">Cooper and Hausman, 2007</xref>); <xref ref-type="bibr" rid="B211">Fares et al., 2020</xref>). Although there are several causes of cancer, inflammation remains a significant one. An essential contributor to the formation of malignant tumours is an exaggerated immune response to inflammation that results in a condition known as chronic inflammation (<xref ref-type="bibr" rid="B213">Karin et al., 2006</xref>; <xref ref-type="bibr" rid="B214">Schottenfeld and Beebe-Dimmer, 2006</xref>). TNF-, IL-1, IL-7, IL-8, IL-17, and other pro-tumorigenic cytokines and interleukins are secreted by infiltrating immune cells at the site of infection in a chronic inflammatory microenvironment (<xref ref-type="bibr" rid="B212">Le&#xf3;n et al.</xref>; <xref ref-type="bibr" rid="B215">Hung et al., 2012</xref>; <xref ref-type="bibr" rid="B216">Fu et al., 2015</xref>; <xref ref-type="bibr" rid="B217">Hospital, 2018</xref>; <xref ref-type="bibr" rid="B218">Seol et al., 2019</xref>).In combination with reactive oxygen species (ROS), these pro-tumorigenic cytokines lead to DNA damage by inducing genotypic changes in degraded tissue mucosa in favour of tumour initiation and development (<xref ref-type="bibr" rid="B219">Kryston et al., 2011</xref>; <xref ref-type="bibr" rid="B220">Kidane et al., 2014</xref>) (<xref ref-type="fig" rid="F1">Figure 1</xref>). In the initial phase of tumor growth, oxygen supply is not a limiting factor for mutant cell survival because of easy access to pO2 from nearby vasculature. As the size of the tumor increases to more than 400&#xb5;m, a hypoxic environment is created, especially at the center of cancer, because nutrients and oxygen can diffuse only up to a radius of 200&#xa0;&#xb5;m (<xref ref-type="bibr" rid="B27">Christensen et al., 2010</xref>; <xref ref-type="bibr" rid="B69">Grimes et al., 2014</xref>; <xref ref-type="bibr" rid="B33">D&#xe4;ster et al., 2017</xref>; <xref ref-type="bibr" rid="B153">Riffle and Hegde, 2017</xref>). In this regard, the tumor mass can be divided into three distinct zones: the non-hypoxic zone, intermittent hypoxic zone (OXOPHOS), and severe hypoxic zone. Bioenergetics in these three zones is highly interdependent and complex. Early transmuted (non-hypoxic) cells that make up the lining of blood vessels aerobically derive energy from glucose through glycolysis and oxidative phosphorylation. However, in fast-proliferating cells, O<sub>2</sub> is a limiting factor for oxidative phosphorylation.</p>
<fig id="F1" position="float">
<label>FIGURE 1</label>
<caption>
<p>Crosstalk between NF-&#x3ba;B signaling in inflammatory cells and premalignant cells. I. NF-&#x3ba;B activation in inflammatory cells involves binding of PAMPs, DAMPs, and endogenous TLR ligands with TLR receptors, which are associated with TRAF-6. II. Binding of PAMPs, DAMPs, and endogenous TLR ligands with TLR&#x2019;s leads to activation of the IKK&#x3b1;&#x3b2;&#x3b3; complex, which further results in phosphorylation, ubiquitination, and degradation of I&#x3ba;B. III. Degradation of I&#x3ba;B renders p50 and p65 heterodimers free to migrate to the nucleus and activate NF-&#x3ba;B. IV. Activation of NF-&#x3ba;B in inflammatory cells results in the secretion of pro-inflammatory cytokines, including TNF-&#x3b1; and IL- 1. V. Released pro-inflammatory cytokines bind to their specific receptors on pre-malignant cells and activate the IKK&#x3b1;&#x3b2;&#x3b3; complex, which further results in phosphorylation, ubiquitination, and degradation of I&#x3ba;B. VI. Degradation of I&#x3ba;B renders p50 and p65 heterodimer free to migrate to the nucleus and activates the transcription of genes responsible for cell survival, proliferation, migration, metastasis, and angiogenesis. VII. ROS generated by phagocytic NADPH to counter infectious pathogens, along with the ROS generated by activation of NF-&#x3ba;B in inflammatory cells, enters the cytosol. VIII. Oxidative stress caused by large amounts of ROS not only damages DNA, but also ionizes Fe<sup>2&#x2b;</sup> to Fe<sup>3&#x2b;</sup>. As a result, PHD-2, which requires Fe<sup>2&#x2b;</sup> as a cofactor for its activity, is inactivated. ROS-induced DNA damage and PHD-2 inactivation further contribute to NF-&#x3ba;B activation in pre-malignant cells.</p>
</caption>
<graphic xlink:href="fphar-14-1108915-g001.tif"/>
</fig>
<p>Consequently, glycolysis is the only source of energy in rapidly proliferating tumor cells, which is evident from the increased intracellular accumulation of glycolysis&#x2019;s end product, pyruvate. Accumulated pyruvate is converted into lactate in hypoxic cells. The lactate generated is transferred into non-hypoxic and OXOPHOS cells through monocarboxylate transporter-1 (MCT-1). Hypoxic cells that form the core of the tumor mass are under the control of hypoxia-inducible factor -1&#x3b1; (HIF-1&#x3b1;). The stabilization and transcriptional activity of HIF-1&#x3b1; is controlled by two oxygen-dependent dioxygenases, namely, prolyl hydroxylase-2 (PHD-2) and factor inhibiting hypoxia-inducible factor-1 (FIH-1), through the N-terminal and C-terminal domains, respectively (<xref ref-type="bibr" rid="B147">Qutub and Popel, 2006</xref>; <xref ref-type="bibr" rid="B15">Brahimi-Horn and Pouyss&#xe9;gur, 2007</xref>; <xref ref-type="bibr" rid="B78">Hu et al., 2007</xref>; <xref ref-type="bibr" rid="B95">Koh and Powis, 2012</xref>; <xref ref-type="bibr" rid="B3">Akanji et al., 2019</xref>).It would be appropriate to mention that previous studies have pointed out differential regulation of HIF-1&#x3b1; by NTAD and CTAD (<xref ref-type="bibr" rid="B34">Dayan et al., 2009</xref>); only CTAD is reported to directly bind with the co-activators CBP/P300 through the CH-1 region and regulate HIF-1&#x3b1; transcriptional activity. In contrast to CTAD, the mechanism that regulates the transcriptional function of NTAD is poorly understood. Moreover, it has also been reported that NTAD is responsible for gene specificity and regulates proteasomal degradation rather than transcriptional activation of HIF-1&#x3b1; (<xref ref-type="bibr" rid="B35">Dayan et al., 2006</xref>; <xref ref-type="bibr" rid="B78">Hu et al., 2007</xref>).</p>
<p>Studies have shown that as the oxygen gradient in solid tumors falls from 40&#xa0;mmHg pO2 (5% O<sub>2</sub>) in the non-hypoxic zone to 10&#xa0;mmHg pO<sub>2</sub> (1% O<sub>2</sub>) in the intermittent hypoxic (OXOPHOS) zone, PHD-2 loses its activity, whereas FIH-1 is inhibited only under severely hypoxic conditions &#x3c;10&#xa0;mmHg pO<sub>2</sub> (1% O<sub>2</sub>) (<xref ref-type="bibr" rid="B35">Dayan et al., 2006</xref>; <xref ref-type="bibr" rid="B34">2009</xref>). Thus, in the non-hypoxic zone where PHD-2 and FIH-1 are functional, HIF-1&#x3b1; is degraded and transcriptionally inactivated. In contrast, in the OXOPHOS zone, HIF-1&#x3b1; is stabilized due to the inactivation of PHDs but remains transcriptionally inactive due to the presence of FIH. In the hypoxic zone, HIF-1&#x3b1; is both stable and transcriptionally active due to the inactivation of both PHDs and FIH-1. As the O<sub>2</sub> concentration diminishes in the intermittent hypoxic and severely hypoxic zone during tumor development, HIF-1&#x3b1; becomes stabilized and progressively becomes transcriptionally active due to the inactivation of PHD first and FIH-1 second. In such cases, angiogenesis, glycolysis, fatty acid synthesis, migration, metastasis, malignant cell survival, and proliferation are regulated in non-hypoxic and intermittent hypoxic zones to support tumor progression. There is an intriguing possibility that during the early stage of tumor initiation and progression when oxygen tension is limiting for transcriptional activity HIF- 1&#x3b1;, other mechanisms could be responsible for regulating malignant cell survival and proliferation.</p>
<p>Research over the past decade has pointed out that NF-&#x3ba;B is a driver of inflammation that gives rise to cancer under a chronic inflammatory microenvironment (<xref ref-type="bibr" rid="B141">Pikarsky et al., 2004</xref>). Activation of NF-&#x3ba;B in both premalignant cells and cells of the microenvironment (phagocytes, T cells, and B cells) is crucial in the early stages of tumor development and progression (<xref ref-type="bibr" rid="B191">Wang et al., 2014</xref>). NF-&#x3ba;B is activated firstly in cells of tumor microenvironment in response to binding of pathogen-associated microbial patterns (PAMPs) and danger-associated molecular patterns (DAMPs) with toll-like receptors (TLRs). This association eventually activates the IKK complex, leading to transcriptional activation of NF-&#x3ba;B in cells of the microenvironment. In response to NF-&#x3ba;B actuation, cells in the tumor microenvironment secrete proinflammatory mediators, such as TNF-&#x3b1; and IL-1. These proinflammatory mediators act on their specific receptors present on premalignant cells and further lead to the induction of NF-&#x3ba;B in premalignant cells through the IKK&#x3b2;-mediated canonical NF-&#x3ba;B signaling pathway (<xref ref-type="bibr" rid="B114">Martins et al., 2016</xref>). This canonical stimulation of NF-&#x3ba;B induces genes involved in cellular proliferation, survival, angiogenesis, and metastasis.</p>
<p>In this study, we propose to determine the possible role of lactate shuttle in the activation of NF-&#x3ba;B in non-hypoxic and intermittent hypoxic malignant cells. We have also directed our study to answer few specific questions.<list list-type="simple">
<list-item>
<p>a) How, NF-kappa B and HIF-1&#x03B1; play a crucial role in tumorigenesis and progression.</p>
</list-item>
<list-item>
<p>b) To what extent does factor inhibiting HIF-1&#x03B1; (FIH1) continue to function while Prolylhydroxylase-2 (PHD-2) activity is suppressed by the lactate shuttle in non-hypoxic and intermittently hypoxic cells?</p>
</list-item>
<list-item>
<p>c) Under normoxia, NF-&#x03BA;B is activated at the expense of HIF-1&#x03B1; due to the downregulation of PHD2 mediated by the lactate shuttle.</p>
</list-item>
<list-item>
<p>d) In the early stages of carcinogenesis, when oxygen tension is normal, HIF-1&#x03B1; is inactive. How can NF-&#x03BA;B promote tumour initiation and survival during this time?</p>
</list-item>
<list-item>
<p>e) PHD2 mediates NF-&#x03BA;B and HIF-1&#x03B1; double regulation, suggesting it may be a useful novel pharmacological target.</p>
</list-item>
</list>
</p>
</sec>
<sec id="s2">
<title>2 How inflammation contributes to the formation of neoplasm?</title>
<sec id="s2-1">
<title>2.1 Inflammation</title>
<p>Inflammation is the first line of the body&#x2019;s defense mechanism that protects against infection and injury. Inflammation is defined by a sequence of responses involving vasodilation, migration of immune cells, and leakage of plasma proteins at the site of disease or injury. Phagocytic cells that arrive at the site of inflammation, especially neutrophils, macrophages, and dendritic cells, express pattern recognition receptors called &#x201c;Toll-Like Receptors&#x201d; (TLR&#x2019;s). The binding of inflammatory factors (such as cytokines, chemokines, PAMPs, and DAMPs) with TLRs triggers a signaling cascade that leads to the induction of NF-&#x3ba;B (<xref ref-type="bibr" rid="B57">Freedman et al., 2002</xref>; <xref ref-type="bibr" rid="B186">Tolle and Standiford, 2013</xref>; <xref ref-type="bibr" rid="B26">Chen et al., 2018</xref>). NF-&#x3ba;B is a primary transcriptional regulator of inflammation and regulates tissue repair and wound healing (<xref ref-type="bibr" rid="B101">Land&#xe9;n et al., 2016</xref>).</p>
<p>The inflammatory response to an infection or injury usually subsides after tissue repair; however, an exaggerated inflammatory response results in a condition known as chronic inflammation. During chronic inflammation, leaky vasculature and increased ATP requirement cause hypoxia. Under such a hypoxic inflammatory microenvironment, infiltrating immune cells at the site of infection or injury produce reactive oxygen species (ROS), which causes damage to the DNA by altering gene expression and genetic sequences. The accumulation of ROS and cytokines further elevates NF-&#x3ba;B activity to create a pro-tumorigenic microenvironment that favors tumor initiation and development (<xref ref-type="bibr" rid="B107">Liou and Storz, 2010</xref>). Thus, the NF-&#x3ba;B pathway mediates the crosstalk between chronic inflammation and cancer, in which early transmuted malignant cells proliferate and form tiny tumors (<xref ref-type="bibr" rid="B9">Ben-Neriah and Karin, 2011</xref>).</p>
</sec>
<sec id="s2-2">
<title>2.2 NF-&#x3ba;B regulatory machinery</title>
<p>NF-&#x3ba;B has been reported to govern the expression of the immunoglobulin &#x3ba;-light chain in B lymphocytes. Later, NF-&#x3ba;B was recorded as a group of transcription regulators consisting of NF-&#x3ba;Bp65 (RelA), RelB, Rel-c, (p50/p105), and (p52/p100) subunits (<xref ref-type="bibr" rid="B166">Sen and Baltimore, 1986</xref>). These transcription factors comprise a preserved Rel homology domain (RHD) that facilitates them to undergo homo or hetero-dimerization (<xref ref-type="bibr" rid="B137">Perkins, 2012</xref>).The major heterodimer of NF-&#x3ba;B is p65/50, which remains segregated in the cytoplasm and tightly clubbed with an inhibitor of kappa B (I&#x3ba;B) family proteins (comprising I&#x3ba;B&#x3b1;, I&#x3ba;B&#x3b2;, and I&#x3ba;B&#x3b5;) along with two precursors, that is, p105/I&#x3ba;B&#x3b3; and p100/I&#x3ba;B&#x3b4;) (<xref ref-type="bibr" rid="B65">Ghosh et al., 1995</xref>). The binding of NF-&#x3ba;B dimers to I&#x3ba;Bs with the help of 7&#x2013;8 ankyrin repeats (<xref ref-type="bibr" rid="B111">Malek et al., 2003</xref>) prevents nuclear translocation of NF-&#x3ba;B dimers and consequently inhibits their transcriptional activity (<xref ref-type="bibr" rid="B112">Marienfeld et al., 2003</xref>).</p>
<p>Pathways regulating NF-&#x3ba;B transcriptional activity include the canonical pathway (or classical pathway) and the alternative pathway (or the non-canonical pathway) (<xref ref-type="bibr" rid="B181">Sun, 2011</xref>; <xref ref-type="bibr" rid="B180">Sun et al., 2013</xref>; <xref ref-type="bibr" rid="B48">Dorrington and Fraser, 2019</xref>). The key regulator of these pathways is a cytoplasmic complex known as the &#x201c;IKK complex.&#x201d; The IKK complex is composed of the catalytic subunits IKK&#x3b1; (or IKK1) and IKK&#x3b2; (or IKK2) along with the modulatory subunit IKK&#x3b3; (or NEMO). Both IKK&#x3b1; and IKK&#x3b2; share 52% sequence chronology and 70% homology but play distinct yet pivotal roles in pan NF-&#x3ba;B regulation (<xref ref-type="bibr" rid="B109">Liu et al., 2012</xref>). NEMO/IKK&#x3b3; has an N-terminal coiled-coil domain that interacts with IKK&#x3b1; and IKK&#x3b2; and mainly functions as a regulatory subunit in the IKK complex. IKK&#x3b1; and IKK&#x3b2; are essential regulators of I&#x3ba;Bs, and their activation is necessary for all NF-&#x3ba;B signaling pathways, whether classical or alternative (<xref ref-type="bibr" rid="B131">Oeckinghaus et al., 2011</xref>). Release of NF-&#x3ba;Bp65 dimer from the inhibitor of kappa B (I&#x3ba;B) requires phosphorylation of IKK&#x3b1; or IKK&#x3b2; at specific serine residues in the activation loop, that is, serine-176(S-176) and serine-180(S-180) for IKK&#x3b1; and serine-177(S-177), and serine-181(S-181) for IKK&#x3b2;. Once activated, IKK&#x3b1; or IKK&#x3b2;, in turn, phosphorylates inhibitor of kappa B (I&#x3ba;Bs), further leading to &#x3b2;-TrCP-dependent E3 ubiquitin ligase-mediated 26s-proteasomal degradation of inhibitor of kappa B (I&#x3ba;Bs). Henceforth, the NF-&#x3ba;B dimer can migrate from the cytoplasmic space to the nucleus, triggering gene expression (<xref ref-type="bibr" rid="B66">Gilmore, 2006</xref>; <xref ref-type="bibr" rid="B48">Dorrington and Fraser, 2019</xref>).</p>
<sec id="s2-2-1">
<title>2.2.1 I&#x3ba;B kinase (IKK) function</title>
<p>The pivotal step in NF-&#x3ba;B induction is cytokine-inducible phosphorylation specific for amino-terminal regulatory serines at Ser32 and Ser 36 of I&#x3ba;B&#x3b1; or at Ser19 and Ser 23 in I&#x3ba;B&#x3b2;. Even though various enzymes mediate phosphorylation of I&#x3ba;B, only IKK meets the acrostics of I&#x3ba;B&#x3b1;/&#x3b2; degradation, which includes fast signal induction and concurrent phosphorylation of the pair of serine residues, Ser32 together with Ser 36 of I&#x3ba;B&#x3b1; and Ser19 along with Ser 23 in I&#x3ba;B&#x3b2;, respectively (<xref ref-type="bibr" rid="B66">Gilmore, 2006</xref>).</p>
<p>Another essential characteristic of IKK-mediated phosphorylation is the choice of serine as a target for phosphorylation over thionine, which matches I&#x3ba;B&#x3b1;/&#x3b2; degradation. As discussed previously, IKK&#x3b1; and IKK&#x3b2; are catalytic subunits of the IKK complex, which are stimulated in cells in response to TNF-&#x3b1; and IL-1. Both subunits possess an activation loop in their kinase domains, similar to other protein kinases, along with a sequence homology between both kinases (<xref ref-type="bibr" rid="B82">Johnson et al., 1996</xref>; <xref ref-type="bibr" rid="B120">Mercurio et al., 1997</xref>). The activation loop contains specific sites on IKK&#x3b1; (S176, S180) and IKK&#x3b2; (S177, S181), the phosphorylation of which results in a conformational change that is responsible for kinase activation (<xref ref-type="bibr" rid="B106">Ling et al., 1998</xref>). Moreover, replacing serine with alanine inhibits the activation of IKK, although a similar substitution with glutamic acid imitates activity equal to phosphoserine. It would be appropriate to mention that modification in S176 and S180 of IKK&#x3b1; to alanine, either on one or both of the serine residues, does not have any effect on TNF-&#x3b1;-and IL-1 mediated IKK activity (<xref ref-type="bibr" rid="B120">Mercurio et al., 1997</xref>; <xref ref-type="bibr" rid="B39">Delhase, 1999</xref>). This finding suggests that, in the case of proinflammatory stimuli, phosphorylation of IKK&#x3b1; is not necessary for stimulation of the IKK complex. Research has also indicated that similar modifications of S177 and S181 in IKK&#x3b2; to alanine abolished TNF-&#x3b1;-and IL-1 mediated IKK activity. Thus, activation of the IKK complex by proinflammatory stimuli depends entirely on the phosphorylation of IKK&#x3b2; and not on IKK&#x3b1;.</p>
</sec>
<sec id="s2-2-2">
<title>2.2.2 The canonical pathway (classical pathway)</title>
<p>The canonical pathway is activated by the binding of TNF-&#x3b1;, interleukins, and chemokines to their specific receptors on cell membranes, which starts the IKK complex. The exact mechanism and the proteins involved in the activation of this complex are under investigation. However, stimulation by proinflammatory cytokines such as Il&#x3b2;1, TNF-&#x3b1;, and TLR ligands in the case of toll-like receptors (TLR) in macrophages and mouse embryonic fibroblasts (MEFs), triggers TGF-&#x3b2;-activated kinase 1 (TAK-1)-mediated phosphorylation of IKK&#x3b2; at S177, which subsequently catalyzes autophosphorylation at S181, resulting in activation of the IKK&#x3b2; complex. Furthermore, this activated cytoplasmic complex phosphorylates I&#x3ba;B&#x3b1; at serine residues S32 and S36, whereas for I&#x3ba;B&#x3b2; at serine residues S19 and S23. This phosphorylation primes I&#x3ba;Bs for ubiquitination by the (SCF)/(&#x3b2;-TCP) E3 ubiquitin ligase complex, followed by proteasomal degradation, which facilitates the release of NF-&#x3ba;B dimers. NF-&#x3ba;B dimers, released, are free to migrate to the nucleus and trigger transcription of genes involved in various cellular functions and bioenergetics, including cellular proliferation and metabolism (<xref ref-type="bibr" rid="B66">Gilmore, 2006</xref>; <xref ref-type="bibr" rid="B131">Oeckinghaus et al., 2011</xref>) (<xref ref-type="fig" rid="F2">Figure 2</xref>).</p>
<fig id="F2" position="float">
<label>FIGURE 2</label>
<caption>
<p>
<bold>(A)</bold> Canonical NF-&#x3ba;B pathway. I- Represent binding of TNF-&#x3b1;, Interleukins, Lipopolysaccharides and other cytokines with their specific receptor resulting in activation of TAK kinase-1. II- Activation of TAK-1 result in phosphorylation of IKK&#x392; unit of the triad consisting of IKK&#x3b1;, IKK&#x3b2; and IKK&#x3b3;. III- Phosphorylation of IKK&#x392; further result in phosphorylation of I&#x3ba;B at Ser19 and Ser23. IV- This phosphorylation allows for ubiquitination and proteasomal degradation of I&#x3ba;B. V- This modification renders NF-&#x3ba;B dimer (p65 and p50) free to translocate to the nucleus. VI- NF-&#x3ba;B dimer (p65 and p50) further binds with specific response elements on DNA and triggers gene transcription of several genes involved in angiogenesis, metastasis, migration and cellular proliferation. <bold>(B)</bold> Non- canonical NF-&#x3ba;B pathway. I- denotes the binding of TNFR ligands to their respective receptors, which results in the activation of NF-&#x03BA;B inducing kinase-1 (NIK). II- NIK phosphorylates IKK&#x3b1;, causing it to be activated. III- Finally, activated IKK&#x3b1; phosphorylates p100. IV- IKK&#x3b1; mediated phosphorylation of p100 marks it for ubiquitination and proteasomal processing to yield p52. V-p52 forms an active dimer with Rel B and translocates to the nucleus. VI- p52 and Rel B dimer bind to the DNA and cause gene transcription.</p>
</caption>
<graphic xlink:href="fphar-14-1108915-g002.tif"/>
</fig>
</sec>
<sec id="s2-2-3">
<title>2.2.3 The non-canonical or alternative pathway</title>
<p>Unlike the canonical NF-KB pathway, which is fast and activated by a wide range of inflammatory cytokines and other external factors, the non-canonical pathway is slow and only activated by a small subset of TNF-superfamily receptors, such as LT&#x3b2;R, BAFFR, CD40, CD30, CD27, RANK, TNFR2, FN14, and CD134. Henceforth, the biological functions of this pathway are more specialized and specifically associated with lymphoid organ and immune cell development, as well as immunological response and homeostasis (<xref ref-type="bibr" rid="B182">Sun, 2017</xref>).</p>
<p>Briefly, the non-canonical NF-&#x3ba;B pathway is activated by NF-&#x3ba;B inducing kinase (NIK). In the inactive state, NIK remains bound to TRAF3 which is complexed with TRAF2 and cIAP1/2. Further, cIAP1/2 ubiquitinates NIK, marking it for proteasomal degradation. However, binding of TNFR ligands (such as BAFF, RANKL, LT&#x3b1;1&#x3b2;2, TWEAK, etc.) with their specific receptors, TRAF3, TRAF2, and cIAP1/2 triad complex is recruited to the membrane binding site of the receptor-ligand complex, leaving NIK unbound. Moreover, cIAP1/2, instead of ubiquitinating NIK now ubiquitinates TRAF3 and marks it for proteasomal degradation which further facilitates the stabilization of NIK. As a result, NIK starts accumulating, and its level inside the cell increases. Consequently, NIK phosphorylates and induces IKK&#x3b1; homodimer. Activated IKK&#x3b1; in turn phosphorylates C-terminal serine residues (866 and 870) of the p100 subunit of inactive RelB and p100 heterodimer. The subsequent transduction mechanism involves p100 ubiquitination by the (SCF)/(&#x3b2;-TCP) E3 ubiquitin ligase complex followed by proteasomal processing to yield a p52 subunit. This event is followed by the association of p52 with RelB to form an active dimer which translocates to the nucleus and triggers gene transcription (<xref ref-type="fig" rid="F2">Figure 2</xref>) (<xref ref-type="bibr" rid="B181">Sun, 2011</xref>).</p>
<p>Solid tumors primarily exhibit canonical signaling, whereas hematological cancers primarily exhibit non-canonical signaling (<xref ref-type="bibr" rid="B86">Kaltschmidt et al., 2018</xref>). Therefore, canonical signaling is the main subject of this review.</p>
</sec>
</sec>
<sec id="s2-3">
<title>2.3 Biological effects of NF-&#x3ba;B in cancer cells</title>
<sec id="s2-3-1">
<title>2.3.1 Effect of NF-&#x3ba;B on cell cycle</title>
<p>NF-&#x3ba;B is the critical modulator of the tumor microenvironment in the early stages of tumor development. NF-&#x3ba;B is integral to tumorigenesis, involving tumor initiation (formation of transformed cells), tumor promotion (early transformed cells proliferate rapidly and increase in both size and number), and tumor progression (transformed cells acquire malignant potential) (<xref ref-type="bibr" rid="B145">Pitot et al., 1981</xref>; <xref ref-type="bibr" rid="B6">Barcellos-Hoff et al., 2013</xref>). It takes approximately three to five oncogenic mutations for a normal cell to become malignant. This is because most oncogenic mutations are acquired <italic>de novo</italic>, and rarely, germline mutations result in cancer (<xref ref-type="bibr" rid="B54">Fearon and Vogelstein, 1990</xref>; <xref ref-type="bibr" rid="B70">Grivennikov et al., 2010</xref>).</p>
<p>Under non-hypoxic or intermittent hypoxic conditions, wherein HIF-1&#x3b1; is dormant, NF-&#x3ba;B initiates tumor growth by enhancing reactive nitrogen species and ROS generation that cause damage and impart oncogenic characteristics. Moreover, NF-&#x3ba;B activation results in cell cycle alterations and ensures that both DNA strands acquire mutations and transfer to progenitor cells (<xref ref-type="bibr" rid="B103">Ledoux and Perkins, 2014</xref>; <xref ref-type="bibr" rid="B93">Kiraly et al., 2015</xref>). NF-&#x3ba;B may also cause aneuploidy and epigenetic changes, resulting in tumorigenesis (<xref ref-type="bibr" rid="B151">Ren et al., 2011</xref>; <xref ref-type="bibr" rid="B128">Nakshatri et al., 2015</xref>). Further, by inhibiting p53 induced cell death, NF-&#x3ba;B activation favors the malignant transformation of DNA damaged cells (<xref ref-type="bibr" rid="B72">Gudkov et al., 2011</xref>). Henceforth, in solid tumors, NF-&#x3ba;B regulates the transformation of normal cells to premalignant cells and other premalignant cells to malignant cells by inhibiting p53 induced programmed cell death and enhancing the production of ROS and reactive nitrogen species.</p>
</sec>
<sec id="s2-3-2">
<title>2.3.2 Effect of NF-&#x3ba;B on programmed cell death</title>
<p>NF-&#x3ba;B suppresses apoptosis and enhances cellular proliferation in various cancer pathologies, including B-cell lymphoma, neuroblastoma, and breast carcinoma (<xref ref-type="bibr" rid="B175">Smith et al., 2014</xref>; <xref ref-type="bibr" rid="B209">Zhi et al., 2014</xref>; <xref ref-type="bibr" rid="B94">Knies et al., 2015</xref>). A common determinant among various tumors is the intrinsic NF-&#x3ba;B activity that confabs intransigence to cell death by up-regulating anti-apoptotic genes. Moreover, in the tumor microenvironment, NF-&#x3ba;B operates in a paracrine fashion to expedite tumor cell proliferation (<xref ref-type="bibr" rid="B68">Greten et al., 2004</xref>; <xref ref-type="bibr" rid="B7">Bass&#xe8;res and Baldwin, 2006</xref>). To repress apoptosis, NF-&#x3ba;B activates a group of targeted genotypes that impede distinct steps of the extrinsic and intrinsic apoptotic pathways. The targets of NF-&#x3ba;B-mediated suppression of apoptosis include inhibitors of apoptotic proteins such as XIAP, c-IAP1, and c-IAP2. It is relevant to mention that XIAP, c-IAP1, and c-IAP2 are involved in the inhibition of pro-caspase-9 and blockade of caspase-3 and caspase-7 activity. Among other targeted genes, BCL-2, BCL-XL, and NR13, which belong to the BCL-2 family (<xref ref-type="bibr" rid="B108">Liston et al., 2003</xref>; <xref ref-type="bibr" rid="B58">Fulda, 2014</xref>). Therefore, NF-&#x3ba;B has a pivotal role in tumor cell survival by activating IAP&#x2019;s and BCL-2 family proteins. Therefore, by activation of inhibitors of apoptotic proteins and BCL-2 family proteins, NF-&#x3ba;B plays a pivotal role in malignant cell survival in solid tumors.</p>
</sec>
<sec id="s2-3-3">
<title>2.3.3 Effect of NF-&#x3ba;B on angiogenesis</title>
<p>Inflammation, as well as in an NF-&#x3ba;B dependent manner, stimulates angiogenesis. Research has shown that constitutive NF-&#x3ba;B activity regulates IL-8 and VEGF activity in cancer cells (<xref ref-type="bibr" rid="B79">Huang et al., 2000</xref>; <xref ref-type="bibr" rid="B12">Bonavia et al., 2012</xref>). Furthermore, NF-&#x3ba;B, in conjunction with iNOS, stimulates the production of proteases and NO, which has a pivotal function in inflammation-induced angiogenesis (<xref ref-type="bibr" rid="B206">Zhang et al., 2005</xref>; <xref ref-type="bibr" rid="B30">Costa et al., 2007</xref>). In addition, NF-&#x3ba;B-targeted genes such as fibroblast growth factor, IL-8, matrix metalloproteinase-9 (MMP-9), and others are involved in various steps in the regulation of angiogenesis (<xref ref-type="bibr" rid="B206">Zhang et al., 2005</xref>). It is pertinent to mention that MMP-2, 3, and 9 play an integral role in the breakdown of the basement membrane as well as in remodeling of the extracellular matrix, which not only facilitates cell migration but also favors either angiogenesis (endothelial cells) or metastasis (malignant cells) depending on the microenvironment (<xref ref-type="bibr" rid="B80">Huber et al., 2004</xref>). Furthermore, in the tumor microenvironment, cancer-associated fibroblasts (CAFs) facilitate the deposition of collagen and another extracellular matrix (ECM) components. CAFs are activated partially in an NF-&#x3ba;B-dependent manner and are vital in the actuation of proinflammatory genes that regulate TNF-&#x3b1;, interleukin (IL-1&#x3b2; and IL-6, VEGF, CXCL2, SDF-1, and many other chemokines, thereby enhancing angiogenesis (<xref ref-type="bibr" rid="B44">Disis, 2010</xref>; <xref ref-type="bibr" rid="B51">Erez et al., 2010</xref>; <xref ref-type="bibr" rid="B85">Kalluri, 2016</xref>). The above findings suggest that NF-&#x3ba;B, through stimulation of iNOS, cytokines, chemokines, and CAF in the tumor microenvironment, facilitates new vessel formation to support budding tumors.</p>
</sec>
<sec id="s2-3-4">
<title>2.3.4 NF-&#x3ba;B in invasion and metastasis</title>
<p>The key factor contributing to invasion in the case of solid tumors is acidosis. To survive under non-hypoxic and intermittent hypoxic conditions malignant cells depend upon glycolysis despite the presence of O2, a phenomenon called the &#x201c;Warburg Effect&#x201d; (<xref ref-type="bibr" rid="B195">Warburg, 1956</xref>; <xref ref-type="bibr" rid="B25">Chandel, 2021</xref>). Whereas, under hypoxic conditions malignant cells utilize anaerobic glycolysis for energy production, a phenomenon called the &#x201c;Pasteur Effect&#x201d; (<xref ref-type="bibr" rid="B92">Kim et al., 2006</xref>; <xref ref-type="bibr" rid="B121">Milane et al., 2011</xref>). However, the end product of glycolysis, in both the cases, is lactic acid, resulting in the accumulation of lactic acid inside the cell (<xref ref-type="bibr" rid="B62">Gatenby et al., 2007</xref>). To survive, efflux of lactic acid from the cell by MCT-4 is necessary. The resultant increase in acidity and decrease in pH of the extracellular environment generates ROS and facilitates the activation of NF-&#x3ba;B (<xref ref-type="bibr" rid="B61">Gatenby and Gillies, 2004</xref>; <xref ref-type="bibr" rid="B74">Gupta et al., 2014</xref>).</p>
<p>NF-&#x3ba;B can directly trigger the expression of genes that stimulate epithelial to mesenchymal transition (EMT) and offer invasive characteristics to malignant cells, such as TWIST1, SLUG, and SNAIL (<xref ref-type="bibr" rid="B198">Wu and Zhou, 2009</xref>; <xref ref-type="bibr" rid="B143">Pires et al., 2017</xref>). Stimulation of these genes initiates neoangiogenesis and promotes EMT-induced cancer cell extravasation into the blood and lymphatic vessels. Therefore, preparing a protective pre-metastatic niche that allows for the survival and proliferation of metastatic initiating tumor cells (<xref ref-type="bibr" rid="B146">Psaila and Lyden, 2009</xref>).</p>
<p>Other mechanisms by which NF-&#x3ba;B promotes migration and metastasis is through upregulation of proto-oncogenes such as c-myc and cyclin D1 (<xref ref-type="bibr" rid="B202">You et al., 2002</xref>; <xref ref-type="bibr" rid="B103">Ledoux and Perkins, 2014</xref>), regulating selectins and integrins, which are essential players in invasion and colonization at distal sites (<xref ref-type="bibr" rid="B29">Collins et al., 1995</xref>; <xref ref-type="bibr" rid="B130">Nguyen et al., 2009</xref>), and increasing cell surface expression of the chemokine receptor CXCR4, thereby promoting metastasis and invasion (<xref ref-type="bibr" rid="B76">Helbig et al., 2003</xref>). From the above discussion, it is clear that lactic acidosis is a prominent regulator of NF-&#x3ba;B in solid tumors, which provides cells with invasive potential and protects them with a pre-metastatic niche.</p>
<p>Till now, we have seen that hypoxia arising from an exaggerated immune response to inflammation activates NF-&#x3ba;B, which regulates downstream mechanisms of tumor initiation and development. Now, as the tumor size keeps on increasing, as it increases more than 400&#xa0;&#x3bc;m, cells at the center of the tumor are under severely hypoxic conditions. To survive under such a hostile environment, these cells take the help of another transcription regulator that we will see in the following section of this manuscript.</p>
</sec>
</sec>
</sec>
<sec id="s3">
<title>3 How do tumor cells adapt under hypoxia?</title>
<sec id="s3-1">
<title>3.1 Hypoxia</title>
<p>Perturbation in oxygen supply results in a condition termed hypoxia, characterized by reduced pO<sub>2</sub> in a particular tissue compared to pO<sub>2</sub> in well-vasculature tissues (<xref ref-type="bibr" rid="B164">Semenza, 2014</xref>). Tumor hypoxia results from either reduced oxygen delivery due to occlusion or leakage of blood vessels or increased oxygen consumption, which may be attributed to rapid cellular division (<xref ref-type="bibr" rid="B188">Vaupel et al., 2004</xref>).</p>
</sec>
<sec id="s3-2">
<title>3.2 Mechanistic regulation of HIF-1&#x3b1;</title>
<p>One of the significant factors contributing to the adaptation of malignant cells to the hypoxic tumor environment is the hypoxia-inducible factor (HIF) (<xref ref-type="bibr" rid="B188">Vaupel et al., 2004</xref>; <xref ref-type="bibr" rid="B163">Semenza, 2012</xref>). The master transcriptional regulator HIF belongs to a group of two bHLH domain-containing proteins from the PAS (PER-ARNT-SIM) family (<xref ref-type="bibr" rid="B192">Wang et al., 1995</xref>), with three isoforms: HIF-1, 2, and 3 (<xref ref-type="bibr" rid="B193">Wang and Semenza, 1995</xref>; <xref ref-type="bibr" rid="B71">Gu et al., 1998</xref>; <xref ref-type="bibr" rid="B89">Keith et al., 2012</xref>). Each isoform of HIF has two subunits, &#x3b1;, and &#x3b2;. The &#x3b1;-subunit is present in the cytoplasm and is regulated by hypoxia. The aryl hydrocarbon receptor nuclear translocator (ARNT), commonly referred to as the &#x3b2;-subunit, is integrally expressed in the nucleus and is induced by dimerization with the &#x3b1;-subunit (<xref ref-type="bibr" rid="B81">Jiang et al., 1996</xref>; <xref ref-type="bibr" rid="B40">D&#xe9;ry et al., 2005</xref>). HIF-1&#x3b1; acts as an oxygen sensor and is regulated by two sets of enzymes belonging to a class of 2- oxoglutarate, ascorbate, and iron-dependent dioxygenases called prolyl hydroxylases (PHDs) and factor inhibiting hypoxia-inducible factor-1 (FIH-1). Prolyl hydroxylase exists in three isoforms: PHD-1, 2, and 3. Among all PHDs, PHD-2 is the most prominent regulator of HIF-1&#x3b1; in solid tumors (<xref ref-type="bibr" rid="B83">Kaelin and Ratcliffe, 2008</xref>)].</p>
<p>Under non-hypoxic conditions (pO<sub>2</sub> &#x3e; 40&#xa0;mmHg) (<xref ref-type="fig" rid="F3">Figures 3</xref>), HIF-1&#x3b1; undergoes proteasomal degradation by PHD-2 <italic>via</italic> a process that involves post-translational hydroxylation of HIF-1&#x3b1; at proline residues (P402 and P564) in the human sequence present in O2 dependent degradation (ODD) domain (<xref ref-type="bibr" rid="B18">Bruick, 2001</xref>; <xref ref-type="bibr" rid="B161">Schofield and Ratcliffe, 2005</xref>). Hydroxylation eventually allows the binding of von Hippel-Lindau tumor suppressor protein (pVHL) and recruitment of E3-ubiquitin ligase that combine to form the E3-ubiquitin ligase complex, which ultimately marks HIF- 1&#x3b1; for degradation by the 26-S proteasome (<xref ref-type="bibr" rid="B117">Maxwell et al., 1999</xref>; <xref ref-type="bibr" rid="B84">Kaelin, 2003</xref>). On the other hand, FIH hydroxylates HIF-1&#x3b1; at an asparagine residue (N803) that abrogates the binding of histone acetyltransferases such as P300 and CBP (CREB binding protein (CBP) to the C-terminal transactivation domain (CTAD) on HIF-1&#x3b1; and blocks the transactivation of genes regulated by HIF-1&#x3b1; (<xref ref-type="bibr" rid="B102">Lando et al., 2002</xref>; <xref ref-type="bibr" rid="B119">McNeill et al., 2002</xref>).</p>
<fig id="F3" position="float">
<label>FIGURE 3</label>
<caption>
<p>HIF-1&#x3b1; regulation under normoxia and hypoxia. I. Normoxia represents pO<sub>2</sub> &#x3e; 40&#xa0;mm Hg. (A) Under normal oxygen tension, PHD2 (prolylhydroxylase-2) hydroxylates HIF-1&#x3b1; at proline residues P402 and P564 and Factor Inhibiting HIF-1&#x3b1; hydroxylates HIF-1&#x3b1; at asparagine residue N803. in presence of O2 as substrate, Oxoglutarate as co-substrate and Fe as cofactor. (B) Prolyl Hydroxylation of HIF-1&#x3b1; allows for binding of pVHL to NTAD ( N-terminal transactivation domain) of HIF-1&#x3b1;. Binding of pVHL recruits ubiquitinin by activation of E3- ubiquitinin ligase which marks HIF-1&#x3b1; for proteasomal degradation. (C) HIF-1&#x3b1; is degraded by 26S proteasome thus preventing stabilization and accumulation of HIF-1&#x3b1;. Asparginyl hydroxylation of HIF-1&#x3b1; at CTAD (C-terminal transactivation domain) prevents binding of CBP/P300 to the CTAD (CH- 1 domain) and thereby inhibiting downstream mechanism involved in HIF-1&#x3b1; transactivation. II. Hypoxia represents pO<sub>2</sub> &#x3c; 40&#xa0;mmHg. (A) Under hypoxia HIF-1&#x3b1; escapes degradation and gets stabilized since PHD2 enzymes which are responsible for its proteasomal degradation are inhibited. (B) Stabilized HIF-1&#x3b1; gets accumulated in the cytosol till the oxygen tension reaches the level (pO<sub>2</sub>&#x3e; 10&#xa0;mmHg) that it becomes limiting for FIH-1, such that CBP/P300 proteins are able to bind to CTAD. (C) HIF-1&#x3b1; translocate into the nucleus to bind with &#x3b2;-subunit that is constitutively expressed in the nucleus. HIF-1&#x3b1; further binds with hypoxia response element on targeted gene and trigger gene transcription.</p>
</caption>
<graphic xlink:href="fphar-14-1108915-g003.tif"/>
</fig>
<p>Under hypoxic conditions such as ischemia and cancer, as the oxygen tension (pO<sub>2</sub>) reaches below 40&#xa0;mmHg, PHD2 is inactivated, followed by FIH (at pO<sub>2</sub> &#x3c; 10&#xa0;mmHg). In the pO<sub>2</sub> range of 40 and 10&#xa0;mmHg, due to inactive PHD-2, HIF-1&#x3b1; escapes proteasomal degradation and subsequently stabilizes, and its cytoplasmic level increases. However, at this stage, the transcriptional function of HIF-1&#x3b1; is inhibited by FIH-1 activity (<xref ref-type="bibr" rid="B96">Koivunen et al., 2004</xref>; <xref ref-type="bibr" rid="B179">Stolze et al., 2004</xref>; <xref ref-type="bibr" rid="B148">Rani et al., 2022</xref>)<sup>.</sup> As pO<sub>2</sub> deteriorates further and reaches below &#x3c;10&#xa0;mmHg, FIH loses its functional activity (<xref ref-type="bibr" rid="B35">Dayan et al., 2006</xref>). After that, cytoplasmic HIF-1&#x3b1; migrates to the nucleus, where it forms a dimer with HIF-1&#x3b2;. The HIF-1&#x3b1;&#x3b2; dimer further binds with co-factor CBP/P300 to interact with HIF-1&#x3b1; responsive element &#x201c;5&#x2032;-RCGTG-3&#x2032;&#x201d; on target genes and triggers gene transcription (<xref ref-type="bibr" rid="B165">Semenza et al., 1996</xref>).</p>
<p>Apart from HIF-1&#x3b1;, hypoxia also activates NF-&#x3ba;B through phosphorylation of IKK&#x3b2; (<xref ref-type="bibr" rid="B97">Koong et al., 1994</xref>). Moreover, evidence suggests that only canonical NF-&#x3ba;B signaling is oxygen-sensitive (<xref ref-type="bibr" rid="B132">Oliver et al., 2009</xref>; <xref ref-type="bibr" rid="B185">Taylor and Cummins, 2009</xref>). Interestingly, both HIF-1&#x3b1; and IKK&#x3b2; were found to possess a highly conserved LxxLAP motif (<xref ref-type="fig" rid="F4">Figure 4</xref>; <xref ref-type="sec" rid="s12">Supplementary Table S1</xref>), which contains sites for prolyl hydroxylation. Research has shown that PHD-2 activity is necessary for the downregulation of NF-&#x3ba;B activity (<xref ref-type="bibr" rid="B31">Cummins et al., 2006</xref>; <xref ref-type="bibr" rid="B184">Takeda et al., 2011</xref>). Therefore, PHD-2 is a vital regulator of the oxygen sensing mechanism because it regulates the activity of both transcriptional factors important in regulating cellular responses to hypoxia. It is pertinent to mention that FIH-1 also hydroxylate various members of the NF-&#x3ba;B pathway, such as p105 and I&#x3ba;B&#x3b1;, but its significance on NF-&#x3ba;B remains elusive (<xref ref-type="bibr" rid="B28">Cockman et al., 2006</xref>).</p>
<fig id="F4" position="float">
<label>FIGURE 4</label>
<caption>
<p>Structure of IKK&#x3b3;, IKK&#x3b1;, IKK&#x3b2; and HIF-1&#x3b1;. <bold>(I)</bold> Represents the structure of IKK&#x3b3; or NEMO. IKK&#x3b3; is a 419 amino acid dimeric fragment consisting of a series of parallel intermolecular coiled coil domains (represented as CC1 and CC2). The amino acid terminus (N-terminus) is vital for interaction with IKK&#x3b1; and IKK&#x3b2;. Linker 1 serves for interaction with viral trans activators like HTLV-1 and Tax and V-Flip. C-terminus function for signal transmission while NOA and Zinc Finger (ZF) domains bind to polyubiquitin chains. <bold>(II,III)</bold> represents the structure of IKK&#x3b1; and IKK&#x3b2; respectively. IKK&#x3b1; is a 745 amino acid fragment consisting of an activation loop from amino acid 176&#x2013;180 whereas IKK&#x3b2; is a 756 amino acid fragment consisting of activation loop from 177&#x2013;181 on amino terminous. A ubiquitin like domain is present (from amino acid 307&#x2013;384) on carboxy terminous of IKK&#x3b2; but not on IKK&#x3b1;. The function of leucine zipper domain is to allow homo and heterodimerization of the kinases. The function of helix loop helix is less clear but it seems to be involved in the modulation of kinase activity. A 40 amino acid region at the extreme carboxy terminous of the kinases (AA-705&#x2013;743) is required for their interaction with NEMO. <bold>(IV)</bold>- represents the structure of HIF-1&#x3b1;. HIF-1&#x3b1; is a 826 amino acid sequence consisting of basic helix loop helix motif and a PAS domain. The sequence possess a N-terminal trans activation domain (N-TAD) on Oxygen dependent degradation domain (ODDD) of HIF-1&#x3b1; along with C-terminal transactivation. The HIF-1&#x3b1; consists of prolyl hydroxylation site at Pro402 and P4 as w ro56ell as pVHL binding site at Leu532 respectively on that lie on ODDD. The CTAD of HIF-1&#x3b1; consists of Asparginyl hydroxylation site at N803.</p>
</caption>
<graphic xlink:href="fphar-14-1108915-g004.tif"/>
</fig>
</sec>
<sec id="s3-3">
<title>3.3 Biological effects of HIF-1&#x3b1; in tumor cell</title>
<sec id="s3-3-1">
<title>3.3.1 HIF-1&#x3b1; and glucose metabolism</title>
<p>HIF-1&#x3b1; was initially recognized as a transcriptional activator of erythropoietin gene (EPO), was found to upregulate the expression of genes encoding glycolytic enzymes and glycolytic flux (GLUT1 and GLUT3), indicating that HIF-1&#x3b1; is an essential factor contributing to the &#x201c;Warburg effect&#x201d; (<xref ref-type="bibr" rid="B159">Samanta and Semenza, 2018</xref>).</p>
<p>First, it seems that OXOPHOS inhibition results due to a lack of oxygen, but this is not the case. HIF-1&#x3b1; achieves maximum stability at 1% O<sub>2</sub> due to inactivation of FIH, but OXOPHOS can occur at even lower O<sub>2</sub> concentrations (0.1%&#x2013;0.7%) (<xref ref-type="bibr" rid="B91">Kennedy and Jones, 1986</xref>; <xref ref-type="bibr" rid="B196">Wilson et al., 1998</xref>; <xref ref-type="bibr" rid="B179">Stolze et al., 2004</xref>). This provides sufficient evidence that HIF-1&#x3b1; is stable well before O<sub>2</sub> becomes limiting for OXPHOS. Therefore, HIF-1&#x3b1; has an instrumental role in the transfer of energy production from OXOPHOS to aerobic glycolysis.</p>
<p>It is well established that HIF-1&#x3b1; is the key to the production of nucleotides, amino acids, fatty acids, lipids, and glycogen for the synthesis of cellular components in hypoxic microenvironments. In such cases, glucose is required to maintain cell energetics and provide biosynthetic intermediates such as ribose-5-phosphate, one carbon for nucleotide synthesis, and amino acids for protein synthesis resulting in an upsurge in demand for glucose. To counter such glucose crises, HIF-1&#x3b1; adapts to several mechanisms (<xref ref-type="fig" rid="F5">Figure 5</xref>). Research has shown that malignant cells can compensate for the loss of glucose by utilizing intracellular glycogen for their survival and proliferation. Moreover, cancer cells can increase their glycogen accumulation by inducing enzyme glycogen synthase, which serves as a glucose reserve for the pentose phosphate pathway (<xref ref-type="bibr" rid="B139">Pescador et al., 2010</xref>). It has also been shown that HIF-1&#x3b1; upregulates the expression of glycogen phosphorylase, an enzyme required for glycogen metabolism. Research indicates that cancer cells target glycogen metabolism <italic>via</italic> the liver by glycogen phosphorylase to escape p53 dependent senescence <italic>via</italic> repression of ROS generation (<xref ref-type="bibr" rid="B53">Favaro et al., 2012</xref>).</p>
<fig id="F5" position="float">
<label>FIGURE 5</label>
<caption>
<p>Utilization of Glucose by cancer cells. Cancer cell uptake Glucose inside the cell with the help of glucose transporters (GLUTs). Glucose then undergoes glycolysis, in first step of glycolysis, glucose is converted to Glucose-6-phosphate by Hexokinase, that is utilized by cancer cells for nucleotide synthesis and production of NADPH by PPP shunt. When in abundance glucose-6-phosphate is stored in form of glycogen. Glucose -6-phosphate then gets converted to 3-phosphoglycerate to provide for nucleotide synthesis through folate metabolism. Ultimately in the last step of glycolysis, phospho-enol-pyruvate is converted to pyruvate. Due to Warburg effect pyruvate is converted to lactate and excreted out of the cell. Under mild hypoxic conditions, pyruvate derived from malate aspartate shuttle and exogenous lactate as well as oxidative metabolism of glutamine runs the Krebs cycle to generate ATP. On the other hand, under severe hypoxia due to activation pyruvate kinase-1, pyruvate does not undergo conversion to citrate instead utilized for other vital process of cell survival. While citrate is aerobically generated from glutamine by conversion of glutamine to glutamate and ultimately to &#x3b1;-ketoglutarate. &#x3b1;-ketoglutarate is further converted by Isocitrate dehydrogenase-2 to isocitrate and then citrate by acoitase-2. Ultimately, citrate is converted to acetylcoA for fatty acid synthesis.</p>
</caption>
<graphic xlink:href="fphar-14-1108915-g005.tif"/>
</fig>
<p>Recent research has shown that some cancer cells, such as glioblastoma and breast cancer, utilize exogenous acetate to acetyl-CoA for lipid synthesis and biomass accumulation (<xref ref-type="bibr" rid="B115">Mashimo et al., 2014</xref>; <xref ref-type="bibr" rid="B162">Schug et al., 2015</xref>). The enzyme catalyzing this reaction is acetyl CoA synthase &#x2212;2, an important target gene of HIF-1&#x3b1; and is integral to cancer cell survival and proliferation under hypoxic conditions (<xref ref-type="bibr" rid="B87">Kamphorst et al., 2014</xref>). These findings suggest that to meet the energy requirement of rapidly proliferating cells, HIF-1&#x3b1; shifts metabolism from oxidative phosphorylation to aerobic glycolysis. To manage glucose crises, HIF-1&#x3b1; facilitates glycogen and acetate by activating enzyme glycogen synthase and glycogen phosphorylase in hypoxic cancer cells.</p>
</sec>
<sec id="s3-3-2">
<title>3.3.2 HIF-1&#x3b1; regulator of cellular acidity and redox homeostasis</title>
<p>HIF-1&#x3b1; activates pyruvate dehydrogenase kinase-1(PDK1), which phosphorylates and renders mitochondrial pyruvate dehydrogenase ineffective. As a result, glycolytic pyruvate is not converted to acetyl-CoA and NADH, decreasing the NADH flux to the electron transport chain (ETC) and production of ROS. The pyruvate thus accumulated undergoes conversion to lactate by the activity of lactate dehydrogenase A (LDHA) (<xref ref-type="bibr" rid="B165">Semenza et al., 1996</xref>; <xref ref-type="bibr" rid="B134">Papandreou et al., 2005</xref>). The lactate generated increases the cytosolic acidity and inhibits glycolysis. Therefore, lactate is effluxed out of the cell through a cell surface transporter known as MCT-4, which ultimately contributes to extracellular acidification and provides a favorable microenvironment for cellular proliferation. Henceforth, HIF-1&#x3b1;, through direct regulation of PDK1, LDHA, and MCT-4, effectively saves cancer cells from acidosis and harmful reactive oxygen species (<xref ref-type="bibr" rid="B62">Gatenby et al., 2007</xref>; <xref ref-type="bibr" rid="B142">Pinheiro et al., 2012</xref>; <xref ref-type="bibr" rid="B45">Doherty and Cleveland, 2013</xref>; <xref ref-type="bibr" rid="B170">Singh et al., 2023</xref>). Past research suggests that HIF-1&#x3b1; dependent expression of PDK-1 is required for metastatic colonization of breast cancer cells in the liver, contrary to lung or bone metastasis (<xref ref-type="bibr" rid="B49">Dupuy et al., 2015</xref>). Finally, to combat toxic ROS, HIF-1&#x3b1; indirectly induced the expression of glutathione. Since glutathione synthesis requires NADPH, HIF-1&#x3b1; triggers HMP shunt by initiating O-GlcNAcylation of glucose 6-phosphate dehydrogenase (<xref ref-type="bibr" rid="B149">Rao et al., 2015</xref>). Therefore, to protect cancer cells from harmful ROS, HIF-1&#x3b1; activates PDK-1, impairs the Kreb cycle, thereby reducing NADH flux to the electron transport chain and generating ROS. Moreover, HIF-1&#x3b1; also increases NADPH production from the HMP pathway to upregulate glutathione synthesis to maintain redox homeostasis.</p>
</sec>
<sec id="s3-3-3">
<title>3.3.3 Modulation of lipid and fatty acid synthesis</title>
<p>Fatty acid synthesis requires the activity of ATP citrate lyase for the conversion of Kreb-cycle-derived citrate into acetyl-CoA. Acetyl-CoA undergoes carboxylation in the presence of the enzyme acetyl-CoA carboxylase (ACC) to produce malonyl-CoA, which is subsequently grouped into long-chain fatty acids by the enzyme fatty acid synthase (FASN) (<xref ref-type="bibr" rid="B136">Pavlova and Thompson, 2016</xref>).</p>
<p>Many studies have reported that FASN activity is required for lipid biosynthesis and cellular proliferation in various cancer pathologies (<xref ref-type="bibr" rid="B32">Currie et al., 2013</xref>; <xref ref-type="bibr" rid="B204">Zaidi et al., 2013</xref>). Moreover, downregulation of FASN was found to promote breast cancer prognosis (<xref ref-type="bibr" rid="B157">Roy et al., 2020</xref>; <xref ref-type="bibr" rid="B172">Singh et al., 2021b</xref>; <xref ref-type="bibr" rid="B171">2021a</xref>) (<xref ref-type="bibr" rid="B174">Singh et al., 2016</xref>; <xref ref-type="bibr" rid="B155">Roy et al., 2017</xref>; <xref ref-type="bibr" rid="B173">Singh M. et al., 2018</xref>; <xref ref-type="bibr" rid="B41">Devi et al., 2019a</xref>). It has been suggested that FASN activity is upregulated in response to an increase in the expression of SREBP-1c by HIF-1&#x3b1; (<xref ref-type="bibr" rid="B59">Furuta et al., 2008</xref>; <xref ref-type="bibr" rid="B169">Singh L. et al., 2018</xref>). Fatty acid, triacylglycerol, and cholesterol synthesis under hypoxia are supplemented by fatty acid uptake from the extracellular compartment by upregulating PPAR&#x3b3; and fatty acid-binding protein (FABP-3,7) whose transcription is regulated by HIF-1&#x3b1; (<xref ref-type="bibr" rid="B100">Krishnan et al., 2009</xref>; <xref ref-type="bibr" rid="B11">Bensaad et al., 2014</xref>). Furthermore, HIF-1&#x3b1; enhances the endocytosis of lipoproteins by increasing the number of cell surface receptors, LRP-1 (lipoprotein receptor &#x2212;1) and VLDL receptor (VLDLR) (<xref ref-type="bibr" rid="B138">Perman et al., 2011</xref>).</p>
<p>In addition, fatty acids produced by overexpression of FASN are utilized for membrane synthesis by conversion into phospholipids or stored in the form of triacylglycerols in lipid droplets. Moreover, the esterification of free fatty acids to neutral TAGs and their storage in lipid droplets saves cells from lipotoxicity (<xref ref-type="bibr" rid="B124">Mukerjee et al., 2021</xref>). It prevents cancer cells from intratumoral hypoxia from harmful free radicals generated during the cycles of hypoxia and reoxygenation (<xref ref-type="bibr" rid="B203">Young et al., 2013</xref>; <xref ref-type="bibr" rid="B11">Bensaad et al., 2014</xref>; <xref ref-type="bibr" rid="B201">Yoo et al., 2014</xref>; <xref ref-type="bibr" rid="B2">Ackerman et al., 2018</xref>). During harsh times, cancer cells can utilize lipid droplets to produce signaling molecules, such as sphingosine 1, as well as for ATP production <italic>via</italic> &#x3b2;-oxidation in mitochondria (<xref ref-type="bibr" rid="B1">Ackerman and Simon, 2014</xref>). Previous findings suggest that hypoxia induces HIF-1&#x3b1; dependent lipid droplet accumulation in tumor cells (<xref ref-type="bibr" rid="B125">Mylonis et al., 2012</xref>; <xref ref-type="bibr" rid="B98">Kourti et al., 2015</xref>). Moreover, phosphorylation of HIF-1&#x3b1; can prevent lipid droplet accumulation and malignant cell proliferation under hypoxic (<xref ref-type="bibr" rid="B125">Mylonis et al., 2012</xref>; <xref ref-type="bibr" rid="B88">Karagiota et al., 2019</xref>). Henceforth, HIF-1&#x3b1; fulfills the fatty acid requirement of rapidly proliferating cells by inducing expression of FASN, PPAR&#x3b3;, and FABP-3.7 which increases the production of fatty acid and ensures their storage in the form of lipid droplets. These lipid droplets act as a reservoir of fatty acid during times of starvation and protect cells from lipotoxicity and harmful ROS.</p>
</sec>
<sec id="s3-3-4">
<title>3.3.4 HIF-1&#x3b1; mediated angiogenesis, metastasis and invasion</title>
<p>Under hypoxic conditions, HIF-1&#x3b1; regulates a vast set of genes and pro-angiogenic factors both in tumor mass and vascular endothelial cells, including vascular endothelial growth factor (VEGF) (<xref ref-type="bibr" rid="B56">Forsythe et al., 1996</xref>), angiopoietin-2 (ANGPT-2) (<xref ref-type="bibr" rid="B168">Simon et al., 2008</xref>), stromal-derived factor-1&#x3b1; (SDF-1&#x3b1;) (<xref ref-type="bibr" rid="B22">Ceradini et al., 2004</xref>), stem cell factor (SCF) (<xref ref-type="bibr" rid="B14">Bosch-Marce et al., 2007</xref>), and platelet-derived growth factor-&#x3b2; (PDGF-&#x3b2;) (<xref ref-type="bibr" rid="B90">Kelly et al., 2003</xref>). All of these are crucial players in the sequence of events involved in tumor angiogenesis. VEGF is pivotal not only for endothelial cell activation and proliferation through VEGF-R signaling but is also responsible for reduced vascular endothelial cell apoptosis by the upregulation of BCL-2 (<xref ref-type="bibr" rid="B64">Gerber et al., 1998</xref>). VEGF is also secreted in a paracrine fashion from pericytes in response to PDGF secreted from tumor cells (<xref ref-type="bibr" rid="B150">Reinmuth et al., 2001</xref>). HIF-1&#x3b1; also governs vascular tone by modulating NOS (<xref ref-type="bibr" rid="B152">Rey and Semenza, 2010</xref>). ANGPT-2 weakens the interactions between endothelial cells and smooth muscle cells, responsible for endothelial cell migration (<xref ref-type="bibr" rid="B110">Maisonpierre et al., 1997</xref>). <italic>In vivo</italic> investigations have reported that targeting HIF-1&#x3b1; remarkably inhibits tumor vascularization (<xref ref-type="bibr" rid="B105">Lee et al., 2009</xref>). HIF-1&#x3b1; induces metastasis, which is the primary cause of tumor-related deaths (<xref ref-type="bibr" rid="B5">Balamurugan, 2016</xref>). Limitations of tumor metastasis and invasiveness rests upon HIF-1&#x3b1; mediated transcriptional activation of matrix metalloproteinases (MMPs) and enzyme lysyl oxidase (<xref ref-type="bibr" rid="B197">Wong et al., 2011</xref>). Reports reveal that HIF-1&#x3b1; directly promotes epithelial to mesenchymal transition (EMT) by inducing the loss of E-cadherin (<xref ref-type="bibr" rid="B99">Krishnamachary et al., 2006</xref>; <xref ref-type="bibr" rid="B208">Zhang et al., 2014</xref>). It has been found that HIF-1&#x3b1;, through direct regulation of the TWIST gene, induces metastasis (<xref ref-type="bibr" rid="B200">Yang et al., 2008</xref>). CXCR-4 and urokinase-type plasminogen activator receptor (uPAR) are important receptor targets of HIF-1&#x3b1; in hypoxia-mediated metastasis (<xref ref-type="bibr" rid="B178">Staller et al., 2003</xref>; <xref ref-type="bibr" rid="B19">B&#xfc;chler et al., 2009</xref>). The above studies suggest that the cells which are at the center of tumor mass require blood supply for transport of O<sub>2</sub>, nutrients, and growth factors; therefore, HIF-1&#x3b1; activates angiogenic factors such as VEGF, ANGPT-2, SDF-1&#x3b1;, SCF, and PDGF-&#x3b2; to facilitate neoangiogenesis, endothelial cell proliferation, and endothelial cell migration. Moreover, HIF-1&#x3b1; also induces tumor dissemination to distal cites by directly activating TWIST, CXCR-4, and uPAR.</p>
</sec>
<sec id="s3-3-5">
<title>3.3.5 HIF-1&#x3b1; and apoptosis</title>
<p>Hypoxia plays a dual role in the regulation of apoptosis under graded oxygen conditions. A study reported that cells treated with staurosporine were less sensitive to apoptosis under severe hypoxia (0.1% oxygen) (<xref ref-type="bibr" rid="B47">Dong et al., 2003</xref>). HIF-1&#x3b1; has both pro-and anti-apoptotic effects. Pro-apoptotic activity occurs from continuous or extreme hypoxia, which arises from the interaction of HIF-1&#x3b1; with p53. The anti-apoptotic activity of-HIF-1&#x3b1; arises at the level of O<sub>2</sub> at which HIF-1&#x3b1; can dimerize with ARNT, thereby increasing the transcription of anti-apoptotic genes (<xref ref-type="bibr" rid="B144">Piret et al., 2002</xref>).</p>
<p>Another study reported that two different forms of HIF-1&#x3b1; should be held liable for various activities. The phosphorylated form of HIF-1&#x3b1; dimerizes with ARNT and triggers antiapoptotic genes. On the other hand, dephosphorylated HIF-1&#x3b1; interacts with p53, thereby stabilizing p53, which induces apoptosis <italic>via</italic> BAX overexpression (<xref ref-type="bibr" rid="B183">Suzuki et al., 2001</xref>). Apart from BAX, BNIP3 and NIX are also overexpressed at the transcriptional level during hypoxia. When oxygen is sparse, HIF-1&#x3b1; promotes mitophagy and inhibits mitochondrial biogenesis by upregulating BNIP3 expression and inhibiting c-Myc-dependent mitochondrial generation (<xref ref-type="bibr" rid="B177">Sowter et al., 2001</xref>; <xref ref-type="bibr" rid="B207">Zhang et al., 2007</xref>; <xref ref-type="bibr" rid="B205">Zhang et al., 2008</xref>). The above studies suggest that below 0.1% oxygen (wherein both PHD-2 and FIH are inactive), HIF-1&#x3b1; can dimerize with ARNT and activate transcription of genes that inhibit apoptosis. Whereas, pro-apoptotic effects of HIF-1&#x3b1; may be attributed to its cross-talk p53 which need further investigation.</p>
</sec>
</sec>
</sec>
<sec id="s4">
<title>4 Bioenergetics of normal cells <italic>versus</italic> cancer cells</title>
<p>The energy requirement of the cell is fulfilled by the catabolism of carbohydrates, proteins, and fat. The energy production starts with the catabolism of carbohydrates to glucose, which is further converted to pyruvate <italic>via</italic> a set of ten enzymatic reactions forming a pathway known as &#x201c;Glycolysis&#x201d; (<xref ref-type="bibr" rid="B38">DeBerardinis et al., 2008</xref>). In brief, glycolysis is a two phase process. First, is the &#x201c;investment phase&#x201d; in which ATP is utilized to produce high energy intermediates (such as conversion of glucose to glucose-6- phosphate by hexokinase and conversion of fructose -6-phosphate to fructose-1,6-bisphosphate by phosphofructokinase). Second is the &#x201c;pay off phase&#x201d; in which high energy intermediates are broken down to generate ATP molecules (such as conversion of 1,3-bis phosphoglycerate to 3-phosphoglycerate by phosphoglycerate kinase and conversion of phosphoenolpyruvate to pyruvate by pyruvate kinase). Furthermore, glycolysis also generates NADH from conversion of glyceraldehyde-3-phosphate to 1,3-bis phosphoglycerate by glyceraldehyde-3-phosphate dehydrogenase (GAPDH) (<xref ref-type="bibr" rid="B24">Chandel, 2015</xref>).</p>
<p>Overall, glycolysis contributes to the generation of four ATPs and two NADH molecules from one molecule of glucose. However, the utilization of two ATPs in the investment phase reduces the net gain to 2-ATPs and 2 NADH. Therefore, if we spare NADH, which requires oxygen for energy production, at least two ATPs are generated from substrate-level phosphorylation whenever a glucose molecule undergoes glycolysis (<xref ref-type="bibr" rid="B13">Bonora et al., 2012</xref>). The end product of glycolysis, pyruvate, yields different products under aerobic and aerobic conditions. In the absence of oxygen, pyruvate is transformed to lactic acid by lactate dehydrogenase A (LDHA) and is expelled out of the cell (<xref ref-type="bibr" rid="B165">Semenza et al., 1996</xref>).</p>
<p>In contrast, in the presence of oxygen, pyruvate is transformed to acetyl-CoA under the catalytic influence of the pyruvate dehydrogenase enzyme. This acetyl-CoA yielded from pyruvate (from glycolysis) combined with oxaloacetate to generate citrate. This marks the start of energy production, which is inside the mitochondria called the &#x201c;Citric acid cycle.&#x201d; The citric acid cycle liberates essential metabolic intermediates, such as alpha-ketoglutarate, succinate, fumarate, malonate, and oxaloacetate. These intermediates are metabolic precursors of amino acids, nucleotides, fatty acids, hemes, and porphyrins, which are essential components for synthesizing cell membranes, DNA, proteins, and other macromolecules (<xref ref-type="bibr" rid="B38">DeBerardinis et al., 2008</xref>).</p>
<p>It is appropriate to mention that similar to glycolysis, the TCA cycle can generate two ATPs from substrate-level phosphorylation, which occurs when the succinic CoA synthetase enzyme catalyzes the reversible reaction of succinyl CoA to succinate (<xref ref-type="bibr" rid="B60">Galluzzi et al., 2010</xref>). The oxidation of acetyl-CoA to CO2 by the electron transport chain reduces NAD&#x2b; and FAD&#x2b; to form high-energy carriers NADH and FADH2 during the cycle. For this reason, the Kreb cycle, though it does not require oxygen for functioning, requires oxygen for the oxidation of NADH and FADH2 to yield NAD&#x2b; and FAD&#x2b; by an electron transport chain (or oxidative phosphorylation), which is coupled to the Kreb cycle (<xref ref-type="bibr" rid="B113">Mart&#xed;nez-Reyes and Chandel, 2020</xref>). In normal cells, ATP is generated mainly from OXOPHOS, accounting for nearly 89% of the total cellular energy, while substrate-level phosphorylation contributes 11% of the whole cellular energy. Approximately 32&#x2013;38 total ATP molecules are generated from the complete oxidation of one molecule of glucose. Cancer cells switch from oxidative phosphorylation to glycolysis for most of their energy requirements. This prevents the generation of harmful reactive oxygen species (ROS) by ETC (ROS are the product of electron acceptation by O<sub>2</sub> in ETC) and facilitates rapid ATP supply to fast proliferating cells since glycolysis is a quicker process than oxidative phosphorylation. This dependency of cancer cells on glycolysis and excessive production of lactate from pyruvate, despite the presence of O<sub>2</sub>, is termed the Warburg effect (<xref ref-type="bibr" rid="B221">Warburg, 1925</xref>; <xref ref-type="bibr" rid="B50">Epstein et al., 2014</xref>; <xref ref-type="bibr" rid="B167">Shestov et al., 2014</xref>; <xref ref-type="bibr" rid="B194">Warburg Berlin-Dahlem, 2016</xref>).</p>
</sec>
<sec id="s5">
<title>4 Energy generation and transcriptional regulation of tumor cell proliferation under graded oxygen tension: Role of lactate shunt</title>
<p>As previously discussed, as tumors grow away from blood vessels, areas that are distal to blood vessels or sometimes due to poor vasculature experience graded oxygen tension (<xref ref-type="bibr" rid="B21">Campillo et al., 2019</xref>). Various models have been proposed previously, which classify the tumor into two zones: the non-hypoxic zone, which has an adequate supply of oxygen to support tumor cell growth, and the second is the hypoxic zone, which lacks oxygen. In solid tumors, it is important to consider a third zone that is intermittent hypoxic simply because tumors have intermittently hypoxic patches. Therefore, to understand how cells of the same tumor respond differently to different pO<sub>2</sub>, we bifurcated the tumor cells into three zones based on the oxygen gradient (<xref ref-type="fig" rid="F6">Figure 6</xref>). The three zones are i) non-hypoxic zone (40 &#x3c; pO<sub>2</sub> &#x3c; 160&#xa0;mmHg), ii) intermittent hypoxic zone (10 &#x3c; pO<sub>2</sub> &#x3c; 40&#xa0;mmHg), and iii) severely hypoxic zone (pO<sub>2</sub> &#x3c; 10&#xa0;mmHg) (<xref ref-type="bibr" rid="B118">McKeown, 2014</xref>). To survive, cells in these zones cooperate with each other to fulfill their metabolic needs called &#x201c;Metabolic Symbiosis.&#x201d; In recent times, lactate has evolved as the molecule which facilitates this &#x201c;Metabolic Symbiosis&#x201d; (<xref ref-type="bibr" rid="B73">Guppy et al., 1993</xref>). In the subsequent section, we will see how lactate facilitates cells to tackle energy crises in all three zones.</p>
<fig id="F6" position="float">
<label>FIGURE 6</label>
<caption>
<p>Metabolic Symbiosis under graded oxygen to produce ATP. Bioenergetics involved in solid tumor is highly complex. Cells which are closed to blood vessels have normal supply of oxygen and glucose therefore obtain energy through glycolysis and kreb cycle initially but as the size of the tumor increases the demand of glucose increases more and more to compensate for this ever increasing demand of glucose there is an upsurge in MCT-1 expression in non-hypoxic cells and they take up exogenous lactate from extracellular tumor microenvironment and convert it to pyruvate by the action of enzyme lactate dehydrogenase B (LDHB). and further this extemporaneously generated pyruvate is utilized to gain energy through Kreb cycle thus sparing glucose for utilization by hypoxic areas which are far from blood vessels. Second in line are intermittently hypoxic cells which utilize both exogenous lactate as well as oxidative glutamine metabolism for energy requirement. Ultimately the core of tumor is formed by severely hypoxic cells which lack access to both blood and oxygen therefore glycolysis is the only source for energy replenishment and therefore undergo rapid glycolysis and generate huge amount of lactate resulting in lactic acidosis. Therefore, in order to survive cancer cells, excrete this lactate out of the cell. This excreted lactate serves as pool of extracellular lactate which can be taken by non-hypoxic and intermittent hypoxic cells for energy production. Hence this cycle goes on and on leading to increase in tumor mass by rapid cellular proliferation and survival.</p>
</caption>
<graphic xlink:href="fphar-14-1108915-g006.tif"/>
</fig>
<p>The non-hypoxic zone (40 &#x3c; pO<sub>2</sub> &#x3c; 160&#xa0;mmHg) comprised oxygenated tumor cells. These cells have free access to O<sub>2</sub> because they lie close to the blood vessels. In the early phase of tumor development, these cells prefer glycolysis over oxidative phosphorylation because glycolysis can supply ATP faster to rapidly proliferating cells as compared to oxidative phosphorylation and also reduces the oxidative stress on tumor cells (<xref ref-type="bibr" rid="B73">Guppy et al., 1993</xref>; <xref ref-type="bibr" rid="B140">Pfeiffer et al., 2001</xref>). However, as the size of the tumor increases, a large amount of glucose is required not only to maintain cell energetics but also to provide biosynthetic intermediates such as ribose-5-phosphate, one carbon for nucleotide synthesis, as well as amino acids for protein synthesis, resulting in an increase in the demand for glucose. Therefore, oxygenated tumor cells reduce glucose uptake and increase lactate uptake from the extracellular environment during tumor development. Lactate is picked up from the extracellular environment through MCT-1 and is converted to pyruvate by LDHB. Pyruvate generated from lactate enters the Krebs cycle and provides energy through oxidative phosphorylation. This metabolic switch from glycolysis to oxidative phosphorylation provides a large number of ATPs and TCA cycle intermediates and makes glucose readily available for the survival of hypoxic cells that are distal to blood supply (<xref ref-type="bibr" rid="B55">Feron, 2009</xref>).</p>
<p>The intermittent hypoxic zone (10 &#x3c; pO<sub>2</sub> &#x3c; 40&#xa0;mmHg) is the connecting link between the non-hypoxic zone and severely hypoxic zone, and therefore acts as a bridge that maintains a continuous supply of glucose from the non-hypoxic location the periphery to the severely hypoxic zone at the center. Similar to non-hypoxic cells, these cells rely mainly on the Kreb cycle and oxidative phosphorylation to generate ATP by utilizing pyruvate generated from lactate, thereby sparing glucose for utilization in severely hypoxic zones (<xref ref-type="bibr" rid="B176">Sonveaux et al., 2008</xref>; <xref ref-type="bibr" rid="B126">Nakajima and Van Houten, 2013</xref>). Therefore, these cells are also known as OXOPHOS cells. In addition to exogenous lactate uptake, OXOPHOS cells also take up glutamine for oxidative glutamine metabolism. In oxidative glutamine metabolism, glutamine is converted to glutamate by glutaminase, and glutamate dehydrogenase converts glutamate to the TCA cycle intermediate 2-oxoglutarate. Anaplerotically, 2-oxoglutarate undergoes oxidative glutamine metabolism, producing energy and rejuvenating the pool of Kreb cycle intermediate precursors of nucleotides, amino acids, and lipids (<xref ref-type="bibr" rid="B123">Moreadiths and Lehningert, 1984</xref>; <xref ref-type="bibr" rid="B37">DeBerardinis et al., 2007</xref>).</p>
<p>The severely hypoxic zone (pO<sub>2</sub> &#x3c; 10&#xa0;mmHg) consists of glycolytic cells that obtain energy from glycolysis only due to impairment of mitochondrial oxidative phosphorylation. Citrate deficit arising from the impaired mitochondrial function is partially fulfilled by &#x201c;anaplerosis&#x201d; from reductive glutamine metabolism in these cells (<xref ref-type="bibr" rid="B123">Moreadiths and Lehningert, 1984</xref>; <xref ref-type="bibr" rid="B37">DeBerardinis et al., 2007</xref>). Impairment of oxidative phosphorylation by mitochondrial defects is attributed to the activation of HIF-1&#x3b1;, which causes selective mitophagy to reduce oxygen consumption and ROS production under hypoxia (<xref ref-type="bibr" rid="B205">Zhang et al., 2008</xref>). Moreover, HIF-1&#x3b1; activates the enzyme pyruvate dehydrogenase kinase-1 (PDK1), which phosphorylates and thereby blocks the function of mitochondrial pyruvate dehydrogenase, which converts pyruvate to acetyl-CoA, thereby uncoupling pyruvate from the Kreb cycle [114]. HIF-1&#x3b1; further induces the enzyme LDHA, which oxidizes pyruvate to lactate, and in the process, NADH is oxidized to NAD&#x2b; (<xref ref-type="bibr" rid="B165">Semenza et al., 1996</xref>). NAD &#x2b; functions as an electron acceptor in the glycolytic pathway and therefore plays a vital role in the continuous running of glycolysis to support the energy requirements of rapidly proliferating cells (<xref ref-type="bibr" rid="B20">Bui and Thompson, 2006</xref>; <xref ref-type="bibr" rid="B52">Fan et al., 2011</xref>). Lactate, a by-product of glycolysis, is effluxed out of the cell by monocarboxylate transporter-4 (MCT-4), which is also a transcriptional target of HIF-1&#x3b1; (<xref ref-type="bibr" rid="B142">Pinheiro et al., 2012</xref>). Extracellular lactate accumulation favors migration and metastasis and acts as a reservoir of energy for non-hypoxic and OXOPHOS cells (<xref ref-type="bibr" rid="B67">Goetze et al., 2011</xref>; <xref ref-type="bibr" rid="B43">Dhup et al., 2012</xref>; <xref ref-type="bibr" rid="B17">Brooks, 2018</xref>).</p>
<p>From the above, it is clear that &#x201c;metabolic symbiosis between the three zones is necessary for holistic growth and proliferation of cancer cells, and lactate shunt is the key to this metabolic adaptation.&#x201d; Compared to energy production, tumor growth and proliferation regulation under graded oxygen tension are much more complex. Studies over the past decade have emphasized HIF-1&#x3b1; as the central regulator of tumor cell survival, proliferation, angiogenesis, and metastasis under graded oxygen tension (<xref ref-type="bibr" rid="B160">Schofield and Ratcliffe, 2004</xref>). Here, we focus on the intricacies tangled in the modulation of HIF-1&#x3b1; in the non-hypoxic, intermittent hypoxic, and severely hypoxic zones.</p>
<p>In the non-hypoxic zone (40 &#x3c; pO<sub>2</sub> &#x3c; 160&#xa0;mmHg), both PHD-2 and FIH-1 remain functional, which contribute to proteasomal degradation and transcriptional inactivation of HIF-1&#x3b1;, respectively (<xref ref-type="bibr" rid="B117">Maxwell et al., 1999</xref>; <xref ref-type="bibr" rid="B18">Bruick, 2001</xref>; <xref ref-type="bibr" rid="B102">Lando et al., 2002</xref>; <xref ref-type="bibr" rid="B84">Kaelin, 2003</xref>). In intermittent hypoxic zones (10 &#x3c; pO2 &#x3c; 40&#xa0;mmHg), PHD-2 is inactivated while FIH-1 remains functional (<xref ref-type="bibr" rid="B96">Koivunen et al., 2004</xref>; <xref ref-type="bibr" rid="B179">Stolze et al., 2004</xref>). Therefore, how HIF-1&#x3b1; regulates the transcriptional factors responsible for cell growth and proliferation in these zones remains a question. Research postulates that Lactate uptake from the extracellular environment and its subsequent conversion to pyruvate by LDHB enzyme could be responsible for non-hypoxic activation of HIF-1&#x3b1; since pyruvate acts as a competitive inhibitor of oxoglutarate (&#x3b1;-ketoglutarate), which is a co-substrate for enzymes PHD-2 and FIH-1. Therefore, reduced levels of &#x3b1;-ketoglutarate might lead to the inactivation of PHD-2 and FIH-1, thereby facilitating the stabilization and transcriptional activity of HIF-1&#x3b1; (<xref ref-type="bibr" rid="B36">De Saedeleer et al., 2012</xref>). Notably, it has been found the Michaelis constant (Km) of FIH for the substrate &#x3b1;-ketoglutarate is 55&#x2013;60&#xa0;&#xb5;M, which is just double that of PHD-2, whose Km value for &#x3b1;-ketoglutarate is 25&#xa0;&#xb5;M (<xref ref-type="bibr" rid="B96">Koivunen et al., 2004</xref>).</p>
<p>Moreover, it has been found that FIH remains functional up to pO<sub>2</sub> &#x3d; 10&#xa0;mmHg, while PHD-2 is inactivated as soon as pO<sub>2</sub> reaches &#x3c;40&#xa0;mmHg. Therefore, even if PHD-2 is inactivated by competitive inhibition of &#x3b1;-ketoglutarate by pyruvate, FIH-1 remains active and prevents HIF-1&#x3b1; transcriptional activity (<xref ref-type="bibr" rid="B148">Rani et al., 2022</xref>). Thus, pyruvate-induced competitive inhibition of &#x3b1;-ketoglutarate will only contribute to the stability of HIF-1&#x3b1; but not to the functional activity of HIF-1 &#x3b1; in non-hypoxic cells. Now, a question still remains: how does tumor cell survival, proliferation, angiogenesis, and metastasis occur in the truancy of HIF-1&#x3b1;. This raises an intriguing possibility that other transcriptional regulators are involved that facilitate cellular adaptation when oxygen tension is limiting for HIF- 1&#x3b1;.</p>
<p>In severely hypoxic zones (pO<sub>2</sub> &#x3c; 10&#xa0;mmHg), both PHD-2 and FIH-1 are inactivated in response to oxygen. As a result, HIF-1&#x3b1; becomes stable and activates genes responsible for tumor cell growth survival.</p>
</sec>
<sec id="s6">
<title>5 Different hypotheses for NF-&#x3ba;B activation and their future endorsement: Role of PHDs</title>
<sec id="s6-1">
<title>5.1 PHDs as a dual regulator of HIF-1&#x3b1; and NF-&#x3ba;B</title>
<p>While HIF-1&#x3b1; is an extensively studied transcriptional regulator under hypoxia, other transcriptional regulators exist (<xref ref-type="bibr" rid="B127">Nakayama and Kataoka, 2019</xref>). NF-&#x3ba;B is also a transcriptional regulator. NF-&#x3ba;B is a crucial modulator of angiogenesis, metastasis, migration, cell survival, and proliferation (<xref ref-type="bibr" rid="B66">Gilmore, 2006</xref>), but its role in conjunction with HIF-1&#x3b1; has not been studied extensively. A few studies have established a link between HIF-1&#x3b1; and NF-&#x3ba;B; however, the results have been contradictory. Although it appears that both HIF-1&#x3b1; and NF-&#x3ba;B work hand in hand, establishing a well-defined mechanism has proven elusive (<xref ref-type="bibr" rid="B8">BelAiba et al., 2007</xref>; <xref ref-type="bibr" rid="B129">Nam et al., 2011</xref>; <xref ref-type="bibr" rid="B4">Azoitei et al., 2016</xref>).</p>
<p>Interestingly, PHDs that regulate HIF-1&#x3b1; activity were also found to regulate NF-&#x3ba;B signaling through IKK&#x3b2;. An <italic>in vitro</italic> study showed that inhibition of PHDs moderately activated IKK&#x3b2; in cells cultured under hypoxic conditions (<xref ref-type="bibr" rid="B190">Walmsley et al., 2005</xref>). It would be appropriate to mention that NF-&#x3ba;B activation is regulated by IKK&#x3b2; induced phosphorylation and degradation of I&#x3ba;B inhibitors (I&#x3ba;B&#x3b1; and I&#x3ba;B&#x3b2;). It has been reported that ischemia leads to hypoxia, which can suppress PHD1 function, thereby enhancing IKK&#x392; expression for NF-&#x3ba;B activation (<xref ref-type="bibr" rid="B31">Cummins et al., 2006</xref>; <xref ref-type="bibr" rid="B199">Xie et al., 2014</xref>).</p>
<p>It was also found that PHD-2 downregulation increased NF-&#x3ba;B-mediated expression of IL-8 and angiogenin in certain tumors. The same study also reported that stimulation of NF-&#x3ba;B activity by TNF-&#x3b1; treatment was impaired in the presence of PHD-2, which further confirms that PHD-2 is a negative modulator of NF-&#x3ba;B (<xref ref-type="bibr" rid="B23">Chan et al., 2009</xref>). Moreover, a functional link between both ROS and PHD2 pathways was provided by showing that the conversion of NAD &#x2b; to NADH and H&#x2b; by LDHB was converted from lactate to pyruvate.</p>
<p>Competitively inhibits PHD. but also stimulates NAD(P) H oxidase (<xref ref-type="bibr" rid="B189">V&#xe9;gran et al., 2011</xref>). NAD(P) H oxidase generates ROS from a pool of NADH. ROS generated may contribute to the inhibition of PHD-2, leading to an increase in basal NF-&#x3ba;B activity (<xref ref-type="bibr" rid="B63">Gerald et al., 2004</xref>; <xref ref-type="bibr" rid="B133">Pan et al., 2007</xref>). From the above findings, there appears to be a negative regulatory loop between PHDs and NF-&#x3ba;B.</p>
</sec>
<sec id="s6-2">
<title>5.2 Various mechanisms of NF-&#x3ba;B activation</title>
<p>Endothelial cells have an increased expression of MCT-1, which allows them to take up a large amount of lactate from the extracellular environment. Although MCT-1 operates bi-directionally depending on the concentration gradient, the unidirectional movement of lactate is maintained by its higher affinity for lactate (Km &#x3d; 3&#x2013;6&#xa0;mM) and an ever-increasing extracellular pool of lactate effluxed from glycolytic cells through MCT-4 (Km &#x3d; 25&#x2013;30&#xa0;mM) (<xref ref-type="bibr" rid="B75">Halestrap, 2013</xref>; <xref ref-type="bibr" rid="B10">Benjamin et al., 2018</xref>).</p>
<p>This effluxed lactate is converted to pyruvate in the presence of the enzyme LDHB to run the Krebs cycle for energy production, thereby sparing glucose for distal hypoxic areas [171] (<xref ref-type="fig" rid="F7">Figure 7</xref>). However, LDHB converts NAD&#x2b; to NADH and H&#x2b;, thus generating NAD(P) H oxidases. NAD(P) H oxidases produce large amounts of ROS. Moreover, pyruvate, which is a competitive inhibitor of 2-oxoglutarate, inhibits PHD2. Both excessive ROS production and inhibition of PHD2 contribute to NF-&#x3ba;B activation (<xref ref-type="bibr" rid="B61">Gatenby and Gillies, 2004</xref>). It is pertinent to mention that MCT-4 plays a pivotal role in NF-&#x3ba;B activation indirectly by effluxing lactate out of the cell, which is further taken up by MCT-1 from the extracellular environment.</p>
<fig id="F7" position="float">
<label>FIGURE 7</label>
<caption>
<p>Common targets of HIF-1&#x3b1; and NF-&#x3ba;B. Inflammation, Mitophagy, Autophagy, Cell Cycle Changes, Apoptosis, Invasion, Migration, Metastasis, Angiogenesis, Metabolism.</p>
</caption>
<graphic xlink:href="fphar-14-1108915-g007.tif"/>
</fig>
<p>Specific blocking of MCT-1 could be a possible mechanism to inhibit NF-&#x3ba;B activity by preventing competitive inhibition of PHD-2 and generation of ROS. On the other hand, specific blockage of MCT-4 leads to decreased extracellular lactate levels, creating a negative feedback loop, thereby inhibiting lactate uptake by MCT-1. Blocking both MCT-1 and 4 could be a more dynamic approach because it would disrupt the metabolic symbiosis of lactate both intracellularly and extracellularly, rendering NF-&#x3ba;B ineffective.</p>
<p>Activation of NF-&#x3ba;B by this mechanism is dependent on the uptake of lactate; however, there is a need to investigate the level at which cells would prefer to take lactate instead of glucose when both are available in abundance. Secondly, cells could hire other mechanisms to overcome the effect of blockage of MCTs and increase intra-or extracellular acidity.</p>
<p>Modern research has focused on inhibiting the enzyme LDHB, a crucial enzyme involved in converting lactate to pyruvate. Inhibition of the activity of this enzyme has resulted in decreased disease prognosis in breast, colon, and ovarian tumors. This enzyme not only replenishes NADPH for fatty acid synthesis but also maintains redox homeostasis. This enzyme indirectly activates HIF-1&#x3b1; because of the competitive inhibition of PHD2 by pyruvate. However, whether competitive inhibition of pyruvate leads to activation of NF-&#x3ba;B remains a matter of research (<xref ref-type="bibr" rid="B16">Brisson et al., 2016</xref>; <xref ref-type="bibr" rid="B122">Mishra and Banerjee, 2019</xref>). Few researchers have suggested that competitive inhibition of PHD2 does not activate NF-&#x3ba;B in oxidative tumor cells but activates HIF-1&#x3b1; (<xref ref-type="bibr" rid="B36">De Saedeleer et al., 2012</xref>; <xref ref-type="bibr" rid="B187">Van H&#xe9;e et al., 2015</xref>). It has been shown that PHD2 activation results in decreased activation of HIF-1&#x3b1; and NF-&#x3ba;B; thus, how the inhibition of the same regulating factor results in reduced expression of HIF-1&#x3b1; and not of NF-&#x3ba;B requires further investigation.</p>
</sec>
</sec>
<sec id="s7">
<title>6 Unresolved riddle and proposed hypothesis.</title>
<p>It has been known for quite some time that inflammation, when left unchecked, might eventually result in cancer. The precise mechanism driving this event, however, remains unclear. Many studies (<xref ref-type="bibr" rid="B77">H&#xf6;ckel and Vaupel, 2004</xref>) have pointed to hypoxia as a prognostic factor that changes normal cells into cancerous ones in a chronic inflammatory milieu. Previous studies have implicated NF-B and HIF-1&#x3b1; as two significant transcriptional regulators in this transition. But how they interact is still a mystery. The two transcription factors control separate aspects of cell growth and division. While HIF-1&#x3b1; promotes malignant cell adaptability and proliferation, nuclear factor-kappa B (NF-kappa B) is essential for tumour initiation and survival (<xref ref-type="bibr" rid="B46">Dolcet et al., 2005</xref>; <xref ref-type="bibr" rid="B116">Masoud and Li, 2015</xref>). Many studies have looked into the method by which these two proteins cooperate, however the results have been inconsistent. While some research suggests that HIF-1&#x3b1; activates following NF-&#x03BA;B suppression, others show that the opposite is true. Still other research suggests that NF-&#x03BA;B regulates the HIF-1-mediated response. Overall, little is known about HIF-1&#x2019;s involvement with its inflammatory companion NF-&#x03BA;B. Basal NF-&#x03BA;B activity is essential for HIF-1&#x03B1; activation, and this has been stressed by a small but vocal group of researchers in recent years, although there is not yet enough evidence to back up these claims. Moreover, it is pretty understandable that sufficient oxygen is available in the early phase of tumorigenesis because the affected area is close to the blood vessels. Therefore, HIF- 1&#x3b1; undergoes proteasomal degradation due to the presence of PHD2. Although non-hypoxic stabilization of HIF-1&#x3b1; and NF-&#x3ba;B is very high on the cards by inhibition of PHD2 by ROS and TCA cycle intermediates (<xref ref-type="bibr" rid="B104">Lee et al., 2016</xref>), the presence of FIH is likely to seize the transcriptional activity of HIF-1&#x3b1;, while NF-&#x3ba;B undergoes transcriptional activation. Therefore, in the initial phase of tumors, it could be hypothesized that cellular proliferation is HIF-1&#x3b1; independent and NF-&#x3ba;B-dependent. It is pertinent to mention that PHD2 inhibition is necessary for the transcriptional activity of both HIF-1&#x3b1; and NF-&#x3ba;B.</p>
<p>Past research suggests that NF-&#x3ba;B and HIF-1&#x3b1; share commonly targeted genes (<xref ref-type="bibr" rid="B154">Rocha, 2007</xref>; <xref ref-type="bibr" rid="B135">Park and Hong, 2016</xref>) (<xref ref-type="fig" rid="F7">Figure 7</xref>); therefore, they both may be regulated by similar mechanisms. Despite the presence of FIH-1, angiogenesis, metastasis, migration, and other phenomena necessary for cellular proliferation take place. Therefore, it could be hypothesized that until oxygen becomes limiting for FIH, NF-&#x3ba;B regulates tumor cell growth and expansion through pyruvate-mediated competitive inhibition of PHD-2 (<xref ref-type="fig" rid="F8">Figure 8</xref>).</p>
<fig id="F8" position="float">
<label>FIGURE 8</label>
<caption>
<p>Mechanism of Lactate shuttle mediated activation of NF-&#x3ba;B under graded oxygen tension. As the tumor size increases to more than 200&#xa0;&#x3bc;m, the diffusion of oxygen decreases, which marks the beginning of the condition known as &#x201c;intratumoral&#x201d; hypoxia. Moving from the periphery to the core (400&#xa0;&#x3bc;m), cells are under graded oxygen tension, which ranges from 160&#xa0;mmHg to less than 10&#xa0;mmHg. Based on this, cells can be divided into three zones. In Figure A. represents a cell that lies in the non-hypoxic zone (160 &#x3e; pO<sub>2</sub> &#x3e; 40&#xa0;mmHg), B. represents a cell that lies in the intermittent hypoxic zone (40 &#x3e; pO<sub>2</sub> &#x3e; 10&#xa0;mmHg), and C. represents a cell that lies in a severely hypoxic zone (pO<sub>2</sub> &#x3c; 10&#xa0;mmHg). In a non-hypoxic cancer cell (A) and intermittent hypoxic cancer cell (B), effluxed lactate enters through MCT-1 and is converted to pyruvate by the enzyme lactate dehydrogenase B. The conversion of lactate to pyruvate causes competitive inhibition of 2-oxoglutarate by pyruvate, which is the substrate for enzyme Prolylhydroxylase-2(PHD-2). Henceforth, PHD-2 fails to degrade IKK&#x3b2;, resulting in the activation of NF-&#x3ba;B, which further regulates the downstream mechanism of cancer cell survival, growth, and proliferation. In contrast, HIF-1&#x3b1;, which assumes stability due to inactivation of PHD-2, does not undergo transcriptional activation because of hydroxylation at N803 of its C-TAD by factor inhibiting HIF-1&#x3b1; (FIH-1). Although FIH-1, similar to PHD-2, belongs to the group of 2-oxoglutarate dependent dioxygenases, has a Km value of 55-60&#x3bc;M for 2-oxoglutarate, which is double that of PHD-2, whose Km value for 2-oxoglutarate is 25&#xa0;&#x3bc;M. Moreover, FIH-1 remained active up to an oxygen tension of 10&#xa0;mm Hg. Therefore, FIH-1 effectively inhibits HIF-1&#x3b1; transcriptional activity in non-hypoxic and intermittent hypoxic zones. Henceforth, it can be postulated that in these zones cell survival and proliferation is under influence of NF-&#x3ba;B. In hypoxic cancer cells, lactate accumulates due to excessive glycolysis, which results in an increase in intracellular acidity. In order to cope with intracellular acidity, hypoxic cancer cells efflux lactate into the extracellular environment through monocarboxylate transporter-4 (MCT-4). Moreover, in hypoxic cancer cells, both PHD-2 and FIH-1 were inactive due to very low oxygen tension (pO<sub>2</sub> &#x3c; 10&#xa0;mmHg). Thus, HIF-1&#x3b1; is both stable and transcriptionally active along with NF-&#x3ba;B. Therefore, cell survival and proliferation are influenced by both HIF-1&#x3b1; and the inflammatory partner NF-&#x3ba;B.</p>
</caption>
<graphic xlink:href="fphar-14-1108915-g008.tif"/>
</fig>
</sec>
<sec sec-type="conclusion" id="s8">
<title>7 Conclusion</title>
<p>To regulate HIF-1&#x3b1; and NF-&#x03BA;B, the PHD-2 is the typical checkpoint. Because of this, activating PHD-2 either directly or indirectly may represent a novel approach to treating solid tumours. PHD-2 may be directly activated by small-molecule chemical activators (<xref ref-type="bibr" rid="B156">Roy et al., 2018</xref>; <xref ref-type="bibr" rid="B41">Devi et al., 2019a</xref>; <xref ref-type="bibr" rid="B158">Roy et al., 2019</xref>). (<xref ref-type="bibr" rid="B42">Devi et al., 2019b</xref>). It is worth noting that there are just a few of compounds thought to be PHD-2 activators, and none of them have made it to market as of yet. In addition, the response in tandem with NF-&#x03BA;B downregulation is still not clear.</p>
<p>Activating PHD-2 in a roundabout way may be accomplished by focusing on MCT-1 and LDHB. Recent studies have indicated that inhibiting MCT-1 has a significant impact on cancer treatment, although their effect in tandem with PHD-2 activity has yet to be studied. As with Akt inhibition, LDHB inhibition was found to be useful in cancer therapy, but selective LDHB inhibitors have not been discovered as of yet. Consequently, it is important to study the impact of novel selective inhibitors of LDHB on carcinogenesis. The current study elucidates the function of NF-&#x03BA;B in the first stages of tumour development and proliferation, when HIF-1&#x3b1; is inactive due to elevated pO2. This review also sheds light on how, under normal oxygen tension, downregulation of PHD-2 by the lactate shuttle activates NF-&#x03BA;B but not HIF-1&#x3b1;. The review highlights PHD-2 as a dual down regulator of HIF-1&#x3b1; and IKK, and proposes that, like HIF-1&#x3b1;, PHD-2 causes hydroxylation and proteasomal degradation of IKK.</p>
</sec>
</body>
<back>
<sec id="s9">
<title>Author contributions</title>
<p>SR collected the literature and wrote the manuscript; SA, MA, and AS contributed to creating the scientific illustration, mechanism, and expanded outline of the manuscript; and MS edited and proof read the manuscript. GK conceived the manuscript and approved the final version of the manuscript.</p>
</sec>
<ack>
<p>The author would like to thanks, Department of Science and Technology, Government of India to supports this work for granting a DST-INSPIRE fellowship to SR. All graphics was developed by licensed version of BioRENDER.</p>
</ack>
<sec sec-type="COI-statement" id="s10">
<title>Conflict of interest</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 sec-type="disclaimer" id="s11">
<title>Publisher&#x2019;s note</title>
<p>All claims expressed in this article are solely those of the authors and do not necessarily represent those of their affiliated organizations, or those of the publisher, the editors and the reviewers. Any product that may be evaluated in this article, or claim that may be made by its manufacturer, is not guaranteed or endorsed by the publisher.</p>
</sec>
<sec id="s12">
<title>Supplementary material</title>
<p>The Supplementary Material for this article can be found online at: <ext-link ext-link-type="uri" xlink:href="https://www.frontiersin.org/articles/10.3389/fphar.2023.1108915/full#supplementary-material">https://www.frontiersin.org/articles/10.3389/fphar.2023.1108915/full&#x23;supplementary-material</ext-link>
</p>
<supplementary-material xlink:href="Table1.pdf" id="SM1" mimetype="application/pdf" xmlns:xlink="http://www.w3.org/1999/xlink"/>
</sec>
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</ref-list>
<sec id="s13">
<title>Glossary</title>
<def-list>
<def-item>
<term id="G1-fphar.2023.1108915">
<bold>TNF-&#x3b1;</bold>
</term>
<def>
<p>tumor necrosis factor-&#x3b1;</p>
</def>
</def-item>
<def-item>
<term id="G2-fphar.2023.1108915">
<bold>IL</bold>
</term>
<def>
<p>interleukin</p>
</def>
</def-item>
<def-item>
<term id="G3-fphar.2023.1108915">
<bold>ROS</bold>
</term>
<def>
<p>reactive oxygen species</p>
</def>
</def-item>
<def-item>
<term id="G4-fphar.2023.1108915">
<bold>PAMPs</bold>
</term>
<def>
<p>pathogen associated molecular patterns</p>
</def>
</def-item>
<def-item>
<term id="G5-fphar.2023.1108915">
<bold>DAMPs</bold>
</term>
<def>
<p>damage/danger associated molecular patterns</p>
</def>
</def-item>
<def-item>
<term id="G6-fphar.2023.1108915">
<bold>TLRs</bold>
</term>
<def>
<p>toll like receptors</p>
</def>
</def-item>
<def-item>
<term id="G7-fphar.2023.1108915">
<bold>NF-&#x3ba;B</bold>
</term>
<def>
<p>nuclear factor kappa light chain enhancer of activated B- cells</p>
</def>
</def-item>
<def-item>
<term id="G8-fphar.2023.1108915">
<bold>OXOPHOS</bold>
</term>
<def>
<p>oxidative phosphorylation</p>
</def>
</def-item>
<def-item>
<term id="G9-fphar.2023.1108915">
<bold>MCT-1</bold>
</term>
<def>
<p>monocarboxylate transporter-1</p>
</def>
</def-item>
<def-item>
<term id="G10-fphar.2023.1108915">
<bold>MCT-4</bold>
</term>
<def>
<p>monocarboxylate transporter-4</p>
</def>
</def-item>
<def-item>
<term id="G11-fphar.2023.1108915">
<bold>LDHA</bold>
</term>
<def>
<p>lactate dehydrogenase-A</p>
</def>
</def-item>
<def-item>
<term id="G12-fphar.2023.1108915">
<bold>LDHB</bold>
</term>
<def>
<p>lactate dehydrogenase-B</p>
</def>
</def-item>
<def-item>
<term id="G13-fphar.2023.1108915">
<bold>GLUT-1</bold>
</term>
<def>
<p>glucose transporter-1</p>
</def>
</def-item>
<def-item>
<term id="G14-fphar.2023.1108915">
<bold>GLUT-3</bold>
</term>
<def>
<p>glucose transporter-4</p>
</def>
</def-item>
<def-item>
<term id="G15-fphar.2023.1108915">
<bold>HIF-1&#x3b1;</bold>
</term>
<def>
<p>hypoxia inducible factor-1&#x3b1;</p>
</def>
</def-item>
<def-item>
<term id="G16-fphar.2023.1108915">
<bold>HIF-1&#x3b2;</bold>
</term>
<def>
<p>hypoxia inducible factor-1&#x3b2;</p>
</def>
</def-item>
<def-item>
<term id="G17-fphar.2023.1108915">
<bold>PHD-2</bold>
</term>
<def>
<p>prolylhydroxylase-2</p>
</def>
</def-item>
<def-item>
<term id="G18-fphar.2023.1108915">
<bold>ODDD</bold>
</term>
<def>
<p>oxygen dependent degradation domain</p>
</def>
</def-item>
<def-item>
<term id="G19-fphar.2023.1108915">
<bold>pVHL</bold>
</term>
<def>
<p>Von-hippel-Lindau tumor repressor protein</p>
</def>
</def-item>
<def-item>
<term id="G20-fphar.2023.1108915">
<bold>FIH-1</bold>
</term>
<def>
<p>factor inhibiting hypoxia inducible factor 1&#x3b1;</p>
</def>
</def-item>
<def-item>
<term id="G21-fphar.2023.1108915">
<bold>CBP</bold>
</term>
<def>
<p>CREB binding protein</p>
</def>
</def-item>
<def-item>
<term id="G22-fphar.2023.1108915">
<bold>CTAD</bold>
</term>
<def>
<p>C- terminal transactivation domain</p>
</def>
</def-item>
<def-item>
<term id="G23-fphar.2023.1108915">
<bold>HRE</bold>
</term>
<def>
<p>hypoxia response element</p>
</def>
</def-item>
<def-item>
<term id="G24-fphar.2023.1108915">
<bold>2-OG</bold>
</term>
<def>
<p>2- oxoglutarate</p>
</def>
</def-item>
<def-item>
<term id="G25-fphar.2023.1108915">
<bold>TCA</bold>
</term>
<def>
<p>tricarboxylic Acid cycle</p>
</def>
</def-item>
<def-item>
<term id="G26-fphar.2023.1108915">
<bold>I&#x3ba;B</bold>
</term>
<def>
<p>inhibitor of nuclear factor kappa B</p>
</def>
</def-item>
<def-item>
<term id="G27-fphar.2023.1108915">
<bold>IKK</bold>
</term>
<def>
<p>inhibitor of nuclear factor kappa-B kinase</p>
</def>
</def-item>
<def-item>
<term id="G28-fphar.2023.1108915">
<bold>NEMO</bold>
</term>
<def>
<p>NF-&#x3ba;B essential modulator</p>
</def>
</def-item>
<def-item>
<term id="G29-fphar.2023.1108915">
<bold>MEFs</bold>
</term>
<def>
<p>mouse embryonic fibroblasts</p>
</def>
</def-item>
<def-item>
<term id="G30-fphar.2023.1108915">
<bold>TAK-1</bold>
</term>
<def>
<p>transforming growth factor -&#x3b2;- activated kinase-1</p>
</def>
</def-item>
<def-item>
<term id="G31-fphar.2023.1108915">
<bold>SCF</bold>
</term>
<def>
<p>SKP1-cullin-1-F- box protein</p>
</def>
</def-item>
<def-item>
<term id="G32-fphar.2023.1108915">
<bold>&#x3b2;TrCP</bold>
</term>
<def>
<p>beta transducing repeats containing protein</p>
</def>
</def-item>
<def-item>
<term id="G33-fphar.2023.1108915">
<bold>VEGF</bold>
</term>
<def>
<p>vascular endothelial growth factor</p>
</def>
</def-item>
<def-item>
<term id="G34-fphar.2023.1108915">
<bold>MMP&#x2019;s</bold>
</term>
<def>
<p>matrix metalloproteinases</p>
</def>
</def-item>
<def-item>
<term id="G35-fphar.2023.1108915">
<bold>CAF&#x2019;s</bold>
</term>
<def>
<p>cancer associated fibroblasts</p>
</def>
</def-item>
<def-item>
<term id="G36-fphar.2023.1108915">
<bold>ECM</bold>
</term>
<def>
<p>extracellular matrix</p>
</def>
</def-item>
<def-item>
<term id="G37-fphar.2023.1108915">
<bold>CXCl-2</bold>
</term>
<def>
<p>C-X-C motif chemokine ligand 2</p>
</def>
</def-item>
<def-item>
<term id="G38-fphar.2023.1108915">
<bold>SDF-1</bold>
</term>
<def>
<p>stromal cell-derived factor<italic>-</italic>1</p>
</def>
</def-item>
<def-item>
<term id="G39-fphar.2023.1108915">
<bold>c-myc</bold>
</term>
<def>
<p>cellular myelocytomatosis oncogene</p>
</def>
</def-item>
<def-item>
<term id="G40-fphar.2023.1108915">
<bold>CXCR4</bold>
</term>
<def>
<p>C-X-C chemokine receptor type 4</p>
</def>
</def-item>
<def-item>
<term id="G41-fphar.2023.1108915">
<bold>bHLH</bold>
</term>
<def>
<p>basic helix loop helix</p>
</def>
</def-item>
<def-item>
<term id="G42-fphar.2023.1108915">
<bold>PAS</bold>
</term>
<def>
<p>PER-ARNT-SIM</p>
</def>
</def-item>
<def-item>
<term id="G43-fphar.2023.1108915">
<bold>ARNT</bold>
</term>
<def>
<p>aryl hydrocarbon receptor nuclear translocator</p>
</def>
</def-item>
<def-item>
<term id="G44-fphar.2023.1108915">
<bold>ATP</bold>
</term>
<def>
<p>adenosine triphosphate</p>
</def>
</def-item>
<def-item>
<term id="G45-fphar.2023.1108915">
<bold>ETC</bold>
</term>
<def>
<p>electron transport chain</p>
</def>
</def-item>
<def-item>
<term id="G46-fphar.2023.1108915">
<bold>PDK-1</bold>
</term>
<def>
<p>pyruvate dehydrogenase kinase-1</p>
</def>
</def-item>
<def-item>
<term id="G47-fphar.2023.1108915">
<bold>IDH-1</bold>
</term>
<def>
<p>isocitrate dehydrogenase-1</p>
</def>
</def-item>
<def-item>
<term id="G48-fphar.2023.1108915">
<bold>IDH-2</bold>
</term>
<def>
<p>isocitrate dehydrogenase-2</p>
</def>
</def-item>
<def-item>
<term id="G49-fphar.2023.1108915">
<bold>ACO-1/2</bold>
</term>
<def>
<p>aconitase-1/2</p>
</def>
</def-item>
<def-item>
<term id="G50-fphar.2023.1108915">
<bold>ACl</bold>
</term>
<def>
<p>ATP- citrate lyase</p>
</def>
</def-item>
<def-item>
<term id="G51-fphar.2023.1108915">
<bold>ACC</bold>
</term>
<def>
<p>acetyl CoA carboxylase</p>
</def>
</def-item>
<def-item>
<term id="G52-fphar.2023.1108915">
<bold>FASN</bold>
</term>
<def>
<p>fatty acid synthase</p>
</def>
</def-item>
<def-item>
<term id="G53-fphar.2023.1108915">
<bold>SREBP-1</bold>
</term>
<def>
<p>sterol regulatory element binding protein-1</p>
</def>
</def-item>
<def-item>
<term id="G54-fphar.2023.1108915">
<bold>PPAR</bold>
<sub>
<bold>&#x3b3;</bold>
</sub>
</term>
<def>
<p>peroxisome proliferator receptor-&#x3b3;</p>
</def>
</def-item>
<def-item>
<term id="G55-fphar.2023.1108915">
<bold>FABP</bold>
</term>
<def>
<p>fatty acid binding protein</p>
</def>
</def-item>
<def-item>
<term id="G56-fphar.2023.1108915">
<bold>LRP-1</bold>
</term>
<def>
<p>lipoprotein receptor related protein</p>
</def>
</def-item>
<def-item>
<term id="G57-fphar.2023.1108915">
<bold>VLDLR</bold>
</term>
<def>
<p>very low density lipoprotein receptor</p>
</def>
</def-item>
<def-item>
<term id="G58-fphar.2023.1108915">
<bold>TAGs</bold>
</term>
<def>
<p>Triacylglycerols</p>
</def>
</def-item>
<def-item>
<term id="G59-fphar.2023.1108915">
<bold>AGPAT2</bold>
</term>
<def>
<p>acylglycerol-3-phosphate acyl transferase-2</p>
</def>
</def-item>
<def-item>
<term id="G60-fphar.2023.1108915">
<bold>DAG</bold>
</term>
<def>
<p>diacylglycerol</p>
</def>
</def-item>
<def-item>
<term id="G61-fphar.2023.1108915">
<bold>NHE1</bold>
</term>
<def>
<p>sodium hydrogen exchanger-1</p>
</def>
</def-item>
<def-item>
<term id="G62-fphar.2023.1108915">
<bold>Ca9</bold>
</term>
<def>
<p>carbonic anhydrase-9</p>
</def>
</def-item>
<def-item>
<term id="G63-fphar.2023.1108915">
<bold>BAFFR</bold>
</term>
<def>
<p>B-cell activating factor receptor</p>
</def>
</def-item>
<def-item>
<term id="G64-fphar.2023.1108915">
<bold>CD</bold>
</term>
<def>
<p>cluster of differentiation</p>
</def>
</def-item>
<def-item>
<term id="G65-fphar.2023.1108915">
<bold>RANK</bold>
</term>
<def>
<p>receptor activator of nuclear factor &#x3ba; B</p>
</def>
</def-item>
<def-item>
<term id="G66-fphar.2023.1108915">
<bold>TNFR2</bold>
</term>
<def>
<p>tumor necrosis factor receptor 2</p>
</def>
</def-item>
<def-item>
<term id="G67-fphar.2023.1108915">
<bold>FN14</bold>
</term>
<def>
<p>fibroblast growth factor-inducible 14</p>
</def>
</def-item>
<def-item>
<term id="G68-fphar.2023.1108915">
<bold>TWEAK</bold>
</term>
<def>
<p>tumour necrosis factor (TNF)-like weak inducer of apoptosis</p>
</def>
</def-item>
</def-list>
</sec>
</back>
</article>