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<article article-type="review-article" xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" xml:lang="EN">
<front>
<journal-meta>
<journal-id journal-id-type="publisher-id">Front. Cardiovasc. Med.</journal-id>
<journal-title>Frontiers in Cardiovascular Medicine</journal-title>
<abbrev-journal-title abbrev-type="pubmed">Front. Cardiovasc. Med.</abbrev-journal-title>
<issn pub-type="epub">2297-055X</issn>
<publisher>
<publisher-name>Frontiers Media S.A.</publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id pub-id-type="doi">10.3389/fcvm.2025.1659006</article-id>
<article-categories>
<subj-group subj-group-type="heading">
<subject>Cardiovascular Medicine</subject>
<subj-group>
<subject>Review</subject>
</subj-group>
</subj-group>
</article-categories>
<title-group>
<article-title>The &#x201C;angiogenesis-plaque stability paradox&#x201D; in atherosclerosis pathogenesis</article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author"><name><surname>Yan</surname><given-names>Fei</given-names></name><uri xlink:href="https://loop.frontiersin.org/people/3121763/overview"/><role content-type="https://credit.niso.org/contributor-roles/conceptualization/"/><role content-type="https://credit.niso.org/contributor-roles/visualization/"/><role content-type="https://credit.niso.org/contributor-roles/writing-original-draft/"/><role content-type="https://credit.niso.org/contributor-roles/writing-review-editing/"/></contrib>
<contrib contrib-type="author"><name><surname>Sun</surname><given-names>Si-yang</given-names></name><role content-type="https://credit.niso.org/contributor-roles/conceptualization/"/><role content-type="https://credit.niso.org/contributor-roles/investigation/"/><role content-type="https://credit.niso.org/contributor-roles/visualization/"/><role content-type="https://credit.niso.org/contributor-roles/writing-review-editing/"/></contrib>
<contrib contrib-type="author" corresp="yes"><name><surname>Wu</surname><given-names>Hong</given-names></name>
<xref ref-type="corresp" rid="cor1">&#x002A;</xref><role content-type="https://credit.niso.org/contributor-roles/conceptualization/"/><role content-type="https://credit.niso.org/contributor-roles/project-administration/"/><role content-type="https://credit.niso.org/contributor-roles/resources/"/><role content-type="https://credit.niso.org/contributor-roles/supervision/"/><role content-type="https://credit.niso.org/contributor-roles/writing-review-editing/"/></contrib>
</contrib-group>
<aff><institution>The Second Clinical Medical College, Henan University of Chinese Medicine</institution>, <addr-line>Zhengzhou</addr-line>, <country>China</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/329670/overview">Yun Fang</ext-link>, The University of Chicago, United States</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/1308609/overview">Vijay Ganta</ext-link>, Augusta University, United States</p>
<p><ext-link ext-link-type="uri" xlink:href="https://loop.frontiersin.org/people/1345015/overview">Adel B. Elmoselhi</ext-link>, University of Sharjah, United Arab Emirates</p></fn>
<corresp id="cor1"><label>&#x002A;</label><bold>Correspondence:</bold> Hong Wu <email>kevin5me@126.com</email></corresp>
</author-notes>
<pub-date pub-type="epub"><day>02</day><month>10</month><year>2025</year></pub-date>
<pub-date pub-type="collection"><year>2025</year></pub-date>
<volume>12</volume><elocation-id>1659006</elocation-id>
<history>
<date date-type="received"><day>03</day><month>07</month><year>2025</year></date>
<date date-type="accepted"><day>19</day><month>09</month><year>2025</year></date>
</history>
<permissions>
<copyright-statement>&#x00A9; 2025 Yan, Sun and Wu.</copyright-statement>
<copyright-year>2025</copyright-year><copyright-holder>Yan, Sun and Wu</copyright-holder><license license-type="open-access" xlink:href="http://creativecommons.org/licenses/by/4.0/">
<p>This is an open-access article distributed under the terms of the <ext-link ext-link-type="uri" xlink:href="http://creativecommons.org/licenses/by/4.0/">Creative Commons Attribution License (CC BY)</ext-link>. 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>Intraplaque angiogenesis, a critical mechanism in the pathological progression of atherosclerosis (AS), exhibits a paradoxical role by providing nutrients and repair support for plaques while simultaneously contributing to plaque instability and rupture. Current research on intraplaque angiogenesis primarily focuses on molecular mechanisms, cellular interactions, and metabolic regulation; however, its dual effects on plaque stability remain underexplored. This review elucidates the mechanisms underlying the angiogenesis-plaque stability paradox, including the glycolysis-lactate-lactylation modification axis, mast cell-mediated inflammatory responses, and angiogenic maturation and stabilization mechanisms, and discusses their roles and associated regulatory pathways in AS pathogenesis. These insights aim to potentiate atherosclerotic plaque stabilization and refine predictive accuracy for acute cardiovascular events.</p>
</abstract>
<kwd-group>
<kwd>atherosclerosis</kwd>
<kwd>angiogenesis</kwd>
<kwd>plaque stability</kwd>
<kwd>glycolysis</kwd>
<kwd>mast cells</kwd>
</kwd-group><contract-sponsor id="cn001">The author(s) declare that financial support was received for the research and/or publication of this article.</contract-sponsor><counts>
<fig-count count="1"/>
<table-count count="1"/><equation-count count="0"/><ref-count count="73"/><page-count count="10"/><word-count count="0"/></counts><custom-meta-wrap><custom-meta><meta-name>section-at-acceptance</meta-name><meta-value>Atherosclerosis and Vascular Medicine</meta-value></custom-meta></custom-meta-wrap>
</article-meta>
</front>
<body><sec id="s1" sec-type="intro"><label>1</label><title>Introduction</title>
<p>Atherosclerosis (AS) is a critical pathological foundation for cardiovascular diseases. Its primary characteristic is the subendothelial deposition of lipids, leading to the formation of atherosclerotic plaques. Plaque stability directly dictates the risk of acute cardiovascular events, with intraplaque angiogenesis exerting a paradoxical dual regulatory role. Hypoxia-driven neovascularization enhances plaque stability through improved oxygen perfusion and facilitated macrophage migration to the necrotic core, potentiating clearance of lipids and necrotic debris (<xref ref-type="bibr" rid="B1">1</xref>). Conversely, structurally compromised neovessels exhibit impaired integrity and heightened permeability, enabling erythrocyte extravasation and inflammatory cell infiltration that escalate risks of intraplaque hemorrhage and rupture (<xref ref-type="bibr" rid="B2">2</xref>). Structurally compromised neovessels result in impaired vascular integrity and heightened permeability, facilitating erythrocyte extravasation and inflammatory cell infiltration that substantially elevate risks of intraplaque hemorrhage and rupture. Consequently, this precarious equilibrium between pathological injury and compensatory repair governs the phenotypic destiny of atherosclerotic plaques.</p>
<p>Intraplaque angiogenesis in AS represents a complex pathophysiological process involving multifaceted cellular and mechanistic interactions. During early atherogenesis, angiogenesis functions as a compensatory response to intraplaque hypoxia and heightened metabolic demands. Glycolysis not only furnishes essential energy for this process but also directly potentiates endothelial cells proliferation and migration, thereby inducing vascular sprouting (<xref ref-type="bibr" rid="B3">3</xref>). Simultaneously, mast cells engage in microvascular network assembly through endothelial crosstalk, releasing pro-angiogenic factors including vascular endothelial growth factor (VEGF); mast cells-derived inflammatory cytokines further amplify VEGF expression, provisionally maintaining plaque structural integrity (<xref ref-type="bibr" rid="B4">4</xref>, <xref ref-type="bibr" rid="B5">5</xref>). Vascular smooth muscle cells (VSMCs) augment VEGF secretion via erythrophagocytosis (<xref ref-type="bibr" rid="B6">6</xref>) and interact with pericytes through phenotypic switching (<xref ref-type="bibr" rid="B7">7</xref>), synergistically driving neovessel maturation. This integrated machinery orchestrates intraplaque angiogenesis. Paradoxically, such compensatory neovascularization may transform into a pivotal pathological driver of atherosclerotic progression. Structurally aberrant neovessels exhibit heightened fragility and permeability, predisposing to hemorrhage-prone plaque transformation (<xref ref-type="bibr" rid="B8">8</xref>). Extravasated erythrocytes and blood components exacerbate local inflammation, establishing a vicious cycle wherein inflammatory stimuli fuel pathological angiogenesis, which in turn recruits additional inflammatory infiltrates. Clinically, this angiogenic-inflammatory synergy manifests most detrimentally in high-risk cohorts, where it critically compromises the fibrous cap integrity (<xref ref-type="bibr" rid="B9">9</xref>). Consequently, while angiogenesis plays a crucial protective role in early plaque remodeling, persistent dysregulated neovascularization ultimately exacerbates plaque vulnerability and rupture risk.</p>
<p>Precision modulation of angiogenesis to stabilize atherosclerotic plaques represents a pivotal frontier in current research. Clinical interventions face intrinsic therapeutic limitations: while high-intensity statin therapy remains the cornerstone of AS treatment, it only incompletely attenuates VEGF-mediated pathological neovascularization. Antiplatelet agents reduce platelet-derived exosome release by blocking the P2Y12 receptor, yet they fail to repair the already established leaky vascular networks. Consequently, elucidating the dualistic nature, protective yet disruptive, of intraplaque angiogenesis will establish the mechanistic foundation for developing both plaque vulnerability prediction models and targeted disease-modifying therapeutics, which will ultimately stabilize vulnerable plaques.</p>
</sec>
<sec id="s2"><label>2</label><title>As angiogenesis-plaque stability paradox</title>
<p>Angiogenesis, the formation of new blood vessels from pre-existing vasculature, constitutes an essential process for tissue development and repair (<xref ref-type="bibr" rid="B2">2</xref>). Within AS plaques, angiogenesis can serve as a therapeutic tool promoting endothelial layer repair and plaque stabilization, while conversely representing a critical pathological process that drives plaque progression, induces intraplaque hemorrhage, and triggers plaque rupture (<xref ref-type="bibr" rid="B10">10</xref>). These functionally divergent plaque neovessels exhibit spatial heterogeneity shaped by local biomechanical forces, where positional architecture dictates plaque fate. This dual-capacity to generate diametrically opposing outcomes establishes the &#x201C;angiogenesis-plaque stability paradox&#x201D; concept in AS.</p>
<sec id="s2a"><label>2.1</label><title>Angiogenesis stabilizes and repairs plaques</title>
<p>Angiogenesis plays a critical role in the metabolic activity of plaques. In AS, arterial wall thickening and inflammatory responses mutually reinforce each other, collectively driving plaque formation. Plaque accumulation reduces oxygen supply, while inflammation increases oxygen consumption, creating a hypoxic microenvironment within the plaque (<xref ref-type="bibr" rid="B10">10</xref>). The formation of new blood vessels mitigates the imbalance between oxygen supply and demand, enhancing the survival and metabolic activity of cells within plaques. Hypoxia and increased metabolic demand within plaques drive new vessel formation, which underscores the critical role of angiogenesis in supplying both oxygen and nutrients (<xref ref-type="bibr" rid="B9">9</xref>, <xref ref-type="bibr" rid="B11">11</xref>). Meanwhile, neovessels also facilitate the transport of low-density lipoprotein (LDL) and the clearance of harmful substances (<xref ref-type="bibr" rid="B12">12</xref>), ameliorate lipid retention and inflammatory burden to decelerate plaque pathogenesis. This underscores the proactive role of angiogenesis in preserving plaque homeostasis and facilitating repair processes. However, the inherent fragility of intraplaque neovessels predisposes them to disruption, triggering hemorrhage and exacerbated inflammation that ultimately compromise plaque stability.</p>
</sec>
<sec id="s2b"><label>2.2</label><title>Vulnerability of angiogenesis and its impact on plaque rupture</title>
<p>Neovascular fragility constitutes the core pathological basis for plaque rupture. Compared to physiological vessels, the pathological neovascularization within the plaques exhibits disordered branching patterns, aberrant luminal dilation, and deficiency in endothelial junctional proteins. These structural defects heighten vascular permeability, creating pathological conduits for lipid infiltration, erythrocyte extravasation, and inflammatory cell migration into the plaque core (<xref ref-type="bibr" rid="B9">9</xref>). Infiltrating immune cells subsequently amplify local inflammation and oxidative stress, driving necrotic core expansion and escalating rupture risk. Concurrently, insufficient pericyte or VSMCs coverage compromises mechanical stability, predisposing neovessels to disruptive hemorrhage. Intraplaque hemorrhage not only perpetuates the inflammatory vicious cycle but also induces atypical ferroptosis (<xref ref-type="bibr" rid="B13">13</xref>, <xref ref-type="bibr" rid="B14">14</xref>), further destabilizing plaque structural integrity. Therefore, mechanistic dissection of the &#x201C;angiogenesis-plaque stability paradox&#x201D; (<xref ref-type="fig" rid="F1">Figure&#x00A0;1</xref>) will inform therapeutic strategies targeting neovascular stabilization to disrupt this self-amplifying pathological cascade.</p>
<fig id="F1" position="float"><label>Figure 1</label>
<caption><p>The related mechanisms of &#x201C;angiogenesis-plaque stability paradox&#x201D;.</p></caption>
<graphic mimetype="image" mime-subtype="tiff" xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="fcvm-12-1659006-g001.tif"><alt-text content-type="machine-generated">Diagram illustrating the interactions between glycolysis, mast cells, and stabilization in vascular biology. The image shows pathways involving lactate, which leads to activation of HIF-1&#x03B1; and VEGF, and impacts macrophage polarization to M2. It depicts mast cells interacting with T-cells, ECM, and endothelial cells, influencing VEGF, inflammation, and permeability. It includes pathways for vascular stabilization via PDGF, PI3K, TGF-&#x03B2;, and Smad2/3, as well as HIF-1&#x03B1; and notch signaling. Central illustration features arterial cross-section, highlighting the cyclical process of maturation and stabilization.</alt-text>
</graphic>
</fig>
</sec>
</sec>
<sec id="s3"><label>3</label><title>The related mechanisms of the angiogenesis-plaque stability paradox</title>
<p>The angiogenesis-plaque stability paradox involves intricate mechanisms encompassing metabolic reprogramming, inflammatory dysregulation, impaired vascular maturation, and interpathway cross-talk. These regulatory networks differentially determine neovessel structure and function, thereby directly modulating the dynamic equilibrium between plaque stabilization and rupture predisposition (<xref ref-type="table" rid="T1">Table&#x00A0;1</xref>).</p>
<table-wrap id="T1" position="float"><label>Table 1</label>
<caption><p>Summary of studies on atherosclerosis plaque stability and angiogenesis paradox.</p></caption>
<table frame="hsides" rules="groups">
<colgroup>
<col align="left"/>
<col align="left"/>
<col align="left"/>
<col align="center"/>
</colgroup>
<thead>
<tr>
<th valign="top" align="left">Mechanism of action</th>
<th valign="top" align="center">Experimental model</th>
<th valign="top" align="center">Central finding</th>
<th valign="top" align="center">Reference</th>
</tr>
</thead>
<tbody>
<tr>
<td valign="top" align="left">Inhibition of endothelial glycolysis</td>
<td valign="top" align="left">ApoE<sup>&#x2212;/&#x2212;</sup> PFKFB3 ECKO</td>
<td valign="top" align="left">Increasing M2 macrophage polarization</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B3">3</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Upregulating PKM2-dependent glycolysis</td>
<td valign="top" align="left">ox-LDL-treated VSMCs</td>
<td valign="top" align="left">Upregulating PKM2-dependent glycolysis</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B16">16</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">TRAP1 increases aerobic glycolysis</td>
<td valign="top" align="left">ApoE<sup>&#x2212;/&#x2212;</sup> KO Trap1 SMCKO</td>
<td valign="top" align="left">Increasing lactate-dependent H4K12la via HDAC3</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B17">17</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">PKM2 K305 crotonylation facilitates glycolysis</td>
<td valign="top" align="left">PDGF-BB-induced synthetic VSMCs</td>
<td valign="top" align="left">Enhancing PKM2 dimeric form</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B18">18</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">KLF4 enhances glycolysis</td>
<td valign="top" align="left">SMCs stimulated with TMAO or PDGF-BB</td>
<td valign="top" align="left">Upregulating PFKFB3 expression</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B19">19</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">NMAAP1 promotes glycolysis and lactate release</td>
<td valign="top" align="left">NMAAP1-CKO</td>
<td valign="top" align="left">Promoting M1 macrophage polarization</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B21">21</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Upregulated glycolysis promotes H3K9 lactylation</td>
<td valign="top" align="left">VEGF-stimulated endothelial cells</td>
<td valign="top" align="left">Regulating angiogenesis through a feedback loop between H3K9la and HDAC2</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B24">24</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Vascular remodelling</td>
<td valign="top" align="left">Sirt2 knockout mice</td>
<td valign="top" align="left">SIRT2 as a potential target for vascular rejuvenation</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B27">27</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Glycolysis-mediated macrophage polarization</td>
<td valign="top" align="left">ox-LDL-induced RAW 264.7 macrophages</td>
<td valign="top" align="left">Upregulation of KLF2 alleviates atherosclerosis</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B30">30</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Inhibition of inducible glycolysis reduces inflammation</td>
<td valign="top" align="left">PFK158-treated Ldlr<sup>&#x2212;/&#x2212;</sup> mice</td>
<td valign="top" align="left">Inhibition of PFKFB3 stabilizes plaques</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B31">31</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Mast cells activation</td>
<td valign="top" align="left">Acalabrutinib-treated Ldlr<sup>&#x2212;/&#x2212;</sup> mice</td>
<td valign="top" align="left">Inhibiting IgE-mediated mast cell activation by Acalabrutinib</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B34">34</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Mast cells activation</td>
<td valign="top" align="left">ApoE<sup>&#x2212;/&#x2212;</sup> mice</td>
<td valign="top" align="left">Reducing mast cell number and activation</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B35">35</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Mast cells release pro-inflammatory mediators</td>
<td valign="top" align="left">Ldlr<sup>&#x2212;/&#x2212;</sup> mice</td>
<td valign="top" align="left">Mast cell stabilization leading to reduced inflammation</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B36">36</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Mast cells activation</td>
<td valign="top" align="left">AGE-LDL-stimulated mast cells</td>
<td valign="top" align="left">Inhibition of ERK1/2 and NF-&#x03BA;B pathways</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B39">39</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Mast cells activation</td>
<td valign="top" align="left">MC-specific inducible Srf knockout mice</td>
<td valign="top" align="left">Recruitment via PDGFB-PDGFRB signaling signaling</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B45">45</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Phenotypic switching of SMCs</td>
<td valign="top" align="left">SMC-lineage tracing mice</td>
<td valign="top" align="left">Blocking transition to SEM cells, reducing atherosclerotic burden, and stabilizing fibrous cap</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B46">46</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Macrophage-like VSMCs</td>
<td valign="top" align="left">STAT3 conditional knockout in VSMCs</td>
<td valign="top" align="left">Inducing macrophage-like phenotype via STAT3&#x03B2;</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B48">48</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">sPDGFR&#x03B2; maintains pericyte quiescence</td>
<td valign="top" align="left">Acute hypoxia model</td>
<td valign="top" align="left">Dysregulated PDGFR&#x03B2; leading to pericyte defects</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B49">49</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Inhibits SMC-to-macrophage transition</td>
<td valign="top" align="left">ANGPTL4-injected Apoe<sup>&#x2212;/&#x2212;</sup> mice</td>
<td valign="top" align="left">Reducing plaque size and inflammation by ANGPTL4</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B52">52</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Pericyte contraction</td>
<td valign="top" align="left">Transient middle cerebral artery occlusion(tMCAO) model</td>
<td valign="top" align="left">Reducing pericyte contraction through inhibition of RHOA/ROCK1</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B53">53</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Maturation of nascent vessels</td>
<td valign="top" align="left">Hypercholesterolaemic ApoE3&#x002A;Leiden mice</td>
<td valign="top" align="left">Controlling neovessel maturation and inhibiting intraplaque hemorrhage</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B54">54</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Maturation of nascent vessels</td>
<td valign="top" align="left">LPS-treated RAW264.7 macrophages</td>
<td valign="top" align="left">Suppressing M1 polarization through the TLR4-NF&#x03BA;B/MAPK pathway</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B55">55</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Neovessel maturation</td>
<td valign="top" align="left">ApoE3&#x002A;Leiden mice with vein graft</td>
<td valign="top" align="left">Inhibiting plaque formation by increasing neovessel maturation via PCmAb</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B56">56</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Neovessel maturation</td>
<td valign="top" align="left">ApoE<sup>&#x2212;/&#x2212;</sup> mice</td>
<td valign="top" align="left">Restraint of VEGF/VEGFR-2 signaling</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B57">57</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Vascular mature and homeostasis</td>
<td valign="top" align="left">High glucose-induced pericyte injury</td>
<td valign="top" align="left">Reducing pericyte injury through circ_0001186 knockdown</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B58">58</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Pericyte dysfunction</td>
<td valign="top" align="left">ox-LDL-induced pericyte dysfunction</td>
<td valign="top" align="left">Improvement of plaque stability through TGF-&#x03B2;1/Smad2/3 signaling</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B60">60</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">HIF-1&#x03B1;-Apelin/APJ and Ang-1/Tie signal pathways</td>
<td valign="top" align="left">ApoE<sup>&#x2212;/&#x2212;</sup> mice</td>
<td valign="top" align="left">Reduction of plaque area, suppression of neovascularization, and promotion of maturation by SMYA</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B63">63</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Apelin/APJ regulates EPC proliferation</td>
<td valign="top" align="left">Hypoxia treatment of EPCs</td>
<td valign="top" align="left">Role in EPC proliferation regulation</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B64">64</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Apelin/APJ mediates monocyte adhesion</td>
<td valign="top" align="left">CRISPR-mediated sec62-KO in ECs</td>
<td valign="top" align="left">Regulating monocyte adhesion to endothelial cells</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B67">67</xref>)</td>
</tr>
<tr>
<td valign="top" align="left">Apelin induces SMC phenotypic transition</td>
<td valign="top" align="left">Apelin-induced SMC transition model</td>
<td valign="top" align="left">Apelin-mediated phenotypic transition in intimal smooth muscle cells</td>
<td valign="top" align="center">(<xref ref-type="bibr" rid="B68">68</xref>)</td>
</tr>
</tbody>
</table>
</table-wrap>
<sec id="s3a"><label>3.1</label><title>The glycolysis-lactate-lactylation modification axis</title>
<sec id="s3a1"><label>3.1.1</label><title>Regulatory mechanisms of glycolytic metabolism in plaque cells</title>
<p>Glycolysis serves as the primary energy source for vascular cells within AS plaques. Its unique dual-mode regulation&#x2014;balancing oxygen dependence with hypoxia adaptation&#x2014;drives AS progression and plaque destabilization by mediating endothelial dysfunction, synthetic phenotype switching in VSMCs, and inflammatory polarization of macrophages. In endothelial cells, glycolysis rapidly generates energy to accommodate environmental fluctuations, while its metabolic byproduct lactate concurrently influences cellular survival. However, hyperactivated glycolysis induces aberrant endothelial proliferation, thereby accelerating atherosclerotic progression and intraplaque pathological angiogenesis (<xref ref-type="bibr" rid="B3">3</xref>, <xref ref-type="bibr" rid="B15">15</xref>). The proliferation, migration, and senescence of VSMCs are critical drivers in the development of AS, with glycolytic reprogramming constituting the core driver. Glycolysis is amplified via KLF4-driven post-translational modifications of 6-phosphofructo-2-kinase/fructose-2,6-bisphosphatase 3 (PFKFB3) and pyruvate kinase M2 isoform (PKM2). This metabolic shift drives VSMCs transition to a synthetic phenotype, exacerbating proliferation, migration, and senescence processes, thereby promoting vascular remodeling and plaque destabilization (<xref ref-type="bibr" rid="B16">16</xref>&#x2013;<xref ref-type="bibr" rid="B19">19</xref>). Among macrophages, enhanced glycolysis represents a critical metabolic signature of M1 polarization, enabling adaptation to hypoxic inflammatory microenvironments while sustaining immune functionality (<xref ref-type="bibr" rid="B20">20</xref>). Studies demonstrate that bacillus calmette guerin stimulation potentiates glycolytic flux via the novel macrophage activation-associated protein 1, thereby driving macrophage polarization toward the M1 phenotype through amplified lactate production (<xref ref-type="bibr" rid="B21">21</xref>).</p>
<p>Operating as the master metabolic regulator of plaque vulnerability, glycolytic rewiring destabilizes atherosclerotic lesions via three synergistic axes: Pathological angiogenesis driven by aberrant EC hyperproliferation, fibrous cap disintegration via VSMC synthetic switching-mediated matrix degradation, and inflammasome propagation fueled by M1 macrophage polarization (<xref ref-type="bibr" rid="B22">22</xref>). This tri-directional disruption of vascular, stromal, and inflammatory integrity designates glycolytic metabolism as a clinically actionable target with compelling translational tractability.</p>
</sec>
<sec id="s3a2"><label>3.1.2</label><title>Lactate and lactylation-mediated modulation of angiogenesis</title>
<p>Lactate, the terminal metabolite of glycolysis, orchestrates angiogenesis through integrated metabolic control and epigenetic lactylation (<xref ref-type="bibr" rid="B23">23</xref>). Metabolically, lactate stabilizes hypoxia-inducible factor-1&#x03B1; (HIF-1&#x03B1;) to potentiate its transcriptional activity, thereby inducing expression of pro-angiogenic genes including VEGF (<xref ref-type="bibr" rid="B24">24</xref>). Concurrently, it drives macrophage polarization toward the M2 phenotype via the signal transducer and activator of transcription6 (STAT6)/peroxisome proliferator-activated receptor <italic>&#x03B3;</italic> (PPAR&#x03B3;) signaling axis, enhancing secretion of pro-angiogenic factors IL-10 and TGF-&#x03B2; (<xref ref-type="bibr" rid="B25">25</xref>). In the field of epigenetics, lactate-derived lysine lactylation regulates chromatin openness and activates pro-angiogenic gene transcription by targeting histone H3 at lysine 18 (H3K18la) (<xref ref-type="bibr" rid="B26">26</xref>). Further mechanistic studies reveal that lactate finely regulates the spatiotemporal activation patterns of angiogenesis-related signaling pathways via a Sirtuin2 (SIRT2)-mediated lactylation-deacetylation dynamic equilibrium network (<xref ref-type="bibr" rid="B27">27</xref>, <xref ref-type="bibr" rid="B28">28</xref>). These findings break the traditional view of lactate as merely a metabolic waste product, revealing its dual roles as a signaling molecule and an epigenetic substrate (<xref ref-type="bibr" rid="B29">29</xref>). By intervening in the transcription and expression of angiogenesis-related genes, this paradigm provides novel strategies for vascular-targeted therapies within AS plaques and regenerative approaches for ischemic tissues. However, translating lactate-targeting basic research into clinical applications remains challenged by formidable translational barriers, where inadequate targeting precision and rapid systemic clearance constitute primary roadblocks. To overcome these hurdles, future efforts should pioneer advanced nano-delivery platforms&#x2014;exemplified by catalase-loaded porous polylactic acid biomimetic nanoparticles&#x2014;leveraging single-cell sequencing-guided membrane engineering for surface functionalization. This dual-targeting, multi-mechanism synergetic strategy aims to reprogram the vascular niche microenvironment, concurrently achieving dual therapeutic objectives: revascularization maturation in ischemic tissues and precision interception of pathological neovascularization in atherosclerotic plaques.</p>
</sec>
<sec id="s3a3"><label>3.1.3</label><title>Targeting the lactate-histone lactylation axis in AS</title>
<p>The aberrant activation of the glycolytic pathway is closely linked to lactate metabolic dysregulation, and their interplay plays a pivotal role in the pathogenesis of AS. Targeted inhibition of glycolysis significantly reduces intraplaque cellular proliferative activity and pro-inflammatory cytokine release. Glycolysis inhibitors effectively suppress macrophage polarization toward pro-inflammatory phenotypes, thereby delaying the initiation and progression of AS plaques (<xref ref-type="bibr" rid="B30">30</xref>, <xref ref-type="bibr" rid="B31">31</xref>). Beyond its role in energy metabolism, lactate has emerged as a pivotal signaling molecule, particularly through lactylation-mediated epigenetic regulation, thereby unveiling novel dimensions in angiogenesis research. Experimental evidence (<xref ref-type="bibr" rid="B32">32</xref>, <xref ref-type="bibr" rid="B33">33</xref>) confirms that modulating lactate dehydrogenase activity reshapes the expression profile of key angiogenic factors within tumor microenvironments. Given that pathological neovascularization constitutes a shared hallmark of AS and oncogenesis, this discovery provides critical mechanistic parallels for targeting aberrant vascular proliferation within AS plaques. Building upon these insights, current research prioritizes developing small-molecule compounds dually targeting lactate transporters and lactylation-modifying enzymes. This dual-pronged strategy aims to co-regulate metabolic lactate homeostasis and post-translational modification networks, thereby engineering precision therapeutic approaches for vascular remodeling, thus accelerating the translation of metabolic interventions from bench to bedside.</p>
</sec>
</sec>
<sec id="s3b"><label>3.2</label><title>Mast cell-mediated inflammatory response</title>
<sec id="s3b1"><label>3.2.1</label><title>Mechanisms underlying mast cell accumulation and activation in as plaques</title>
<p>Mast cell-mediated inflammation represents a critical pathogenic axis in AS progression and plaque rupture, a process initiated by their site-specific accumulation and activation within lesions. Bone marrow-derived mast cell precursors are recruited and mobilized to plaque microenvironments via inflammatory mediators, including MCP-1, interleukin-8 (IL-8), tumor necrosis factor-&#x03B1; (TNF-&#x03B1;), and interferon-&#x03B3; (IFN-&#x03B3;), where they differentiate into mature subsets (<xref ref-type="bibr" rid="B34">34</xref>). Under the synergistic control of HIF-1&#x03B1; and local inflammatory signals, mature mast cells exhibit enhanced chemotactic activity, leading to their selective enrichment in plaque shoulders and necrotic cores (<xref ref-type="bibr" rid="B5">5</xref>). Upon activation, mast cells orchestrate complex inflammatory cascades through degranulation: Histamine increases vascular permeability via H1 receptor-mediated endothelial gap formation, facilitating monocyte/macrophage infiltration; proteases (tryptase/chymase) directly degrade extracellular matrix (ECM) components and activate matrix metalloproteinases (MMPs), thus destabilizing fibrous cap integrity; IL-6 and TNF-&#x03B1; drive phenotypic switching of VSMCs toward the matrix-degrading syntheses. Furthermore, mast cells fuel late-stage plaque vulnerability through paracrine release of VEGF and fibroblast growth factor-2 (FGF-2), stimulating pathological intraplaque neovascularization that precipitates intraplaque hemorrhage and rupture (<xref ref-type="bibr" rid="B35">35</xref>). This cascade highlights the therapeutic nodes targeting mast cell infiltration, activation, and mediator release as promising strategies to decelerate AS progression and stabilize plaques.</p>
</sec>
<sec id="s3b2"><label>3.2.2</label><title>Mast cell-mediated pro-angiogenic mechanisms</title>
<p>In AS plaques, mast cells drive pathological angiogenesis and plaque destabilization through a dual mechanism. Firstly, upon activation, mast cell-derived MMP-9 degrades type IV collagen and gelatin in the ECM, thereby compromising the structural integrity of the vascular basement membrane. This degradation process creates spatial conditions conducive to endothelial cell migration and subsequent lumen formation. Moreover, mast cell-derived chymase potently activates the pro-MMP-9 zymogen into its catalytically active form and cleaves angiotensin I to generate angiotensin II, amplifying vascular permeability and inflammatory infiltration. In LDLR<sup>&#x2212;/&#x2212;</sup> mouse models, mast cell activation markedly exacerbates aortic lesion area, and promotes intraplaque angiogenesis, concomitant with upregulated MMP-9 levels (<xref ref-type="bibr" rid="B36">36</xref>&#x2013;<xref ref-type="bibr" rid="B38">38</xref>). Furthermore, mast cells establish chemokine gradients that recruit monocytes and T lymphocytes into plaques. These infiltrating immune cells subsequently release pro-angiogenic factors such as VEGF-A and FGF-2. Collectively these mechanisms indicate that mast cell stabilizers reduce plaque MMP-9 activity while suppressing VEGF receptor phosphorylation, which will unveil targets to inhibit pathological angiogenesis.</p>
</sec>
<sec id="s3b3"><label>3.2.3</label><title>Mast cells and plaque instability</title>
<p>Mast cells not only promote intraplaque angiogenesis but also critically contribute to plaque destabilization. Although they may exert immune surveillance functions in early AS, their hyperactivation ultimately leads to destructive consequences. Research demonstrates (<xref ref-type="bibr" rid="B39">39</xref>) that mast cell-specific secretion of matrix metalloproteinases (MMP-9, MMP-2) and pro-inflammatory cytokines (TNF-&#x03B1;, IL-6) degrades ECM components, compromising fibrous cap integrity. Simultaneously, these inflammatory mediators synergistically induce VSMCs apoptosis, leading to impaired fibrous cap repair capacity. This matrix metabolic imbalance and cellular dynamic dysregulation significantly increase the risk of plaque rupture, serving as the initiating trigger for acute coronary syndrome (ACS). Single-cell RNA sequencing detects mast cells in vulnerable plaques of ACS, with a significantly positive correlation observed between mast cells infiltration and MMP-9 expression levels within these plaques (<xref ref-type="bibr" rid="B40">40</xref>). Additionally, mast cell-derived mediators (e.g., histamine, tryptase) promote platelet aggregation and fibrin deposition by activating protease-activated receptor 2 on endothelial cells and upregulating P-selectin expression on platelets, thereby establishing a pro-thrombotic microenvironment. Both animal experiments and clinical pathological studies have confirmed that mast cell infiltration is significantly correlated with plaque rupture and subsequent thrombus formation (<xref ref-type="bibr" rid="B34">34</xref>, <xref ref-type="bibr" rid="B41">41</xref>, <xref ref-type="bibr" rid="B42">42</xref>). Future research should focus on: Decoding dynamic evolution of mast cell functional subsets in patient biopsies, constructing phase-specific maps correlating subsets with clinical stages of AS, providing frameworks for developing stage-specific precision therapies.</p>
</sec>
</sec>
<sec id="s3c"><label>3.3</label><title>Neovascular maturation and stabilization</title>
<sec id="s3c1"><label>3.3.1</label><title>VSMCs recruitment and vascular wall remodeling</title>
<p>VSMCs maintain vascular wall homeostasis by orchestrating vascular development, homeostasis maintenance, and pathological remodeling. In AS, VSMCs undergo phenotypic switching and migrate to the intima, forming a fibrous cap enriched with &#x03B1;-smooth muscle actin (&#x03B1;-SMA) and ECM. The secretion of collagens I/III and elastin significantly enhances plaque mechanical strength. Molecular mechanism studies demonstrate that VSMCs activate the Smad2/3 signaling pathway by releasing TGF-&#x03B2;, which upregulates tissue inhibitors of metalloproteinases expression, thereby suppressing AS plaque matrix degradation (<xref ref-type="bibr" rid="B43">43</xref>). Moreover, VSMC-endothelial cell crosstalk underpins vascular maturation and stability (<xref ref-type="bibr" rid="B44">44</xref>). These cells form a functional unit where endothelial-derived platelet-derived growth factor BB (PDGF-BB) induces VSMCs proliferation through the phosphatidylinositol 3-kinase (PI3K)/protein kinase B (AKT) pathway, while VSMC-secreted hepatocyte growth factor enhances endothelial barrier function via the mesenchymal-epithelial transition factor receptor (<xref ref-type="bibr" rid="B45">45</xref>). This bidirectional paracrine regulatory network plays a pivotal role in vascular injury repair. However, under pathological stimuli, VSMCs can adopt macrophage-like phenotypes, participating in vascular inflammation and upregulating adhesion molecules (e.g., ICAM-1, VCAM-1). This increases vascular permeability, recruiting inflammatory cells and lipids to expand the necrotic core (<xref ref-type="bibr" rid="B46">46</xref>&#x2013;<xref ref-type="bibr" rid="B48">48</xref>). In summary, VSMCs sustain vascular stability through structural support, matrix remodeling, and cellular interactions. Yet their pathological transformation drives plaque destabilization. Identifying key molecular targets to steer VSMCs toward beneficial phenotypes represents a critical frontier for future AS therapeutics.</p>
</sec>
<sec id="s3c2"><label>3.3.2</label><title>Pericyte&#x2013;ECM interplay in vascular remodeling</title>
<p>Pericytes and ECM components constitute a core functional unit maintaining vascular homeostasis through structure-function coupling. Their synergistic interactions operate at three hierarchical levels: Structural-signaling coordination for barrier integrity, pericytes specifically express platelet-derived growth factor receptor &#x03B2; (PDGFR&#x03B2;) (<xref ref-type="bibr" rid="B49">49</xref>), which senses and responds to PDGF-BB signals within the matrix-microenvironment, enhancing endothelial tight junction protein expression to reinforce vascular barrier function (<xref ref-type="bibr" rid="B50">50</xref>). Furthermore, pericytes actively anchor to collagen IV and laminin networks via integrin &#x03B1;6&#x03B2;1 receptors. This engagement activates the focal adhesion kinase (FAK)/PI3K signaling pathway, converting mechanical support into anti-apoptotic chemical signals that collectively preserve microvascular integrity (<xref ref-type="bibr" rid="B51">51</xref>). Bidirectional regulation with VSMCs for structural stability, pericyte-derived TGF-&#x03B2;1 induces contractile phenotypes differentiation in VSMCs via Smad2/3 phosphorylation, while VSMC-secreted angiopoietin-like 4 reciprocally regulates pericyte migration (<xref ref-type="bibr" rid="B52">52</xref>). This dynamic crosstalk critically depends on a healthy matrix microenvironment, with its disruption being pivotal during atherosclerotic plaque progression. Pericyte depletion and matrix disruption driving plaque destabilization, pericyte loss elevates MMP-2/MMP-9 activity in the fibrous cap, triggering matrix degradation (<xref ref-type="bibr" rid="B53">53</xref>, <xref ref-type="bibr" rid="B54">54</xref>). Degraded elastin fragments shift from stabilizing elements to pathogenic signals, activating macrophage inflammasomes via Toll-like receptor 4 (TLR4)/myeloid differentiation factor 88 (MyD88) pathway and exacerbating local inflammation (<xref ref-type="bibr" rid="B55">55</xref>). In ApoE3&#x002A;Leiden mouse models (<xref ref-type="bibr" rid="B56">56</xref>), pericyte coverage positively correlates with matrix stability, highlighting their synergistic significance and potential as plaque stability biomarkers. The pericyte-matri<italic>x</italic> axis orchestrates functional synergy across mechanical support, signal transduction, and immunomodulation. Targeting this integrated system will open new avenues for vascular microenvironment remodeling therapies.</p>
</sec>
<sec id="s3c3"><label>3.3.3</label><title>Failed neovessel maturation induces plaque destabilization</title>
<p>Impaired neovessel maturation constitutes a pivotal mechanism driving the formation of pathologically fragile vasculature, thereby disrupting plaque stability (<xref ref-type="bibr" rid="B57">57</xref>, <xref ref-type="bibr" rid="B58">58</xref>). This process involves multicellular dysregulation: Disrupted pericyte-endothelial cell communication, disruption of the PDGF-BB/PDGFR&#x03B2; signaling axis compromises pericyte-endothelial coupling, leading to inadequate pericyte coverage and defective basement membrane development in neovessels (<xref ref-type="bibr" rid="B59">59</xref>). Studies confirm that AS plaque neovessels exhibit pathologically reduced pericyte coverage index, which demonstrates a significant inverse correlation with intraplaque hemorrhage (<xref ref-type="bibr" rid="B60">60</xref>). VSMC-driven ECM homeostatic imbalance, aberrant VSMC phenotypic switching induces critical downregulation of &#x03B1;-SMA expression, resulting in compromised vascular wall tension. Concurrently, suppression of the TGF-&#x03B2;/Smad signaling axis drives stoichiometric collapse of collagen/elastin homeostasis (<xref ref-type="bibr" rid="B61">61</xref>). Inflammatory cascades drive ECM hyper-catabolism, monocyte recruited into plaques and polarized into proinflammatory M1-like macrophages, establishing a self-sustaining inflammatory niche. This microenvironment activates the nuclear factor-&#x03BA;B (NF-&#x03BA;B) pathway, inducing pathological overexpression of matrix metalloproteinases (MMP-2, MMP-9). These proteases degrade basement membrane components (collagen type IV, laminin), ultimately increasing vascular permeability (<xref ref-type="bibr" rid="B62">62</xref>). These mechanisms collectively cause vascular structural defects, triggering erythrocyte extravasation. Hemoglobin breakdown products subsequently activate macrophages via CD163 receptors, establishing a self-perpetuating pro-inflammatory/pro-angiogenic cycle (<xref ref-type="bibr" rid="B56">56</xref>). Notably, HIF-1&#x03B1;-driven pathological angiogenesis exacerbates vascular leakage through VEGF/Notch signaling imbalance, whereas blockade of Delta-like ligand 4 (DLL4) enhances neovessel maturation. Therapeutic interventions targeting pericyte recruitment enhancement, ECM metabolism modulation, and suppression of inflammation-hypoxia synergy demonstrate significant potential for stabilizing vulnerable plaques.</p>
</sec>
</sec>
</sec>
<sec id="s4"><label>4</label><title>Regulatory mechanisms of intraplaque angiogenesis signaling networks</title>
<sec id="s4a"><label>4.1</label><title>HIF-1&#x03B1; and angiopoietin-like protein (Apelin)/APJ signaling pathways</title>
<p>The HIF-1&#x03B1;/Apelin/APJ signaling axis exerts dualistic roles in AS, functioning as both a protective mediator and pathological driver. As the master transcriptional regulator of hypoxia-responsive genes, HIF-1&#x03B1; stabilizes and activates under intraplaque hypoxia and oxidative stress, driving transcriptional upregulation of Apelin and its G protein-coupled receptor APJ (<xref ref-type="bibr" rid="B63">63</xref>). Activated Apelin/APJ signaling promotes endothelial cell proliferation, migration, and neovascularization through the PI3K/AKT/mTORC1 axis to alleviate tissue hypoxia (<xref ref-type="bibr" rid="B64">64</xref>, <xref ref-type="bibr" rid="B65">65</xref>), while concurrently activating Nrf2 through the CaMKK/AMPK/GSK3&#x03B2; pathway, thereby upregulating antioxidant enzymes (e.g., SOD, HO-1) to protect endothelium from oxidative damage (<xref ref-type="bibr" rid="B65">65</xref>, <xref ref-type="bibr" rid="B66">66</xref>). Paradoxically, this axis accelerates AS progression by: Inducing NF-&#x03BA;B/JNK-mediated inflammation, upregulating ICAM-1, VCAM-1, and MCP-1 to exacerbate endothelial inflammation/permeability (<xref ref-type="bibr" rid="B67">67</xref>). Triggering nuclear translocation of calcium-binding protein A4, which induces synthetic phenotype transition in VSMCs, directly fueling plaque advancement (<xref ref-type="bibr" rid="B68">68</xref>). This functional duality implies that systemic pathway inhibition may compromise physiological repair mechanisms, necessitating future cell-type-specific therapeutic strategies. Precision approaches should combine microvascular ultrasonography with biomarker profiling for patient stratification, establishing distinct therapeutic windows, including pro-angiogenic intervention for hypoxia-dominant phases and anti-inflammatory targeting for inflammation-dominant stages.</p>
</sec>
<sec id="s4b"><label>4.2</label><title>The angiopoietin1/2 (Ang1/Ang2) and tie receptor signaling axis</title>
<p>The Ang-Tie signaling axis functions as a master regulatory hub for endothelial homeostasis by orchestrating: Vascular quiescence status, microvascular permeability, barrier stabilization, and controlled angiogenic progression (<xref ref-type="bibr" rid="B69">69</xref>). Ang1 and Ang2 act as agonistic and antagonistic ligands, respectively, for the endothelial tyrosine kinase receptor Tie-2. Ang1 promotes vascular structural stabilization, while Ang2 disrupts junctional integrity between endothelial cells and pericytes, increases vascular permeability, and antagonizes Ang1-mediated stabilization. Within AS plaques, Ang1 remodels neovasculature to reduce permeability, maintaining vascular maturation and stability.</p>
<p>Conversely, Ang2 orchestrates basement membrane remodeling and drives endothelial cell migration via MMP-2 proteolytic activation, culminating in pathological angiogenesis in the AS niche. In vulnerable plaques, Ang1 and Ang2 expression exhibits a pronounced imbalance dominated by Ang2. This pathological imbalance directly instigates microvascular fragility and potentiates plaque rupture vulnerability (<xref ref-type="bibr" rid="B70">70</xref>). Furthermore, Ang-2 modulates vascular growth, maturation and regression in tumors and vasculopathies through synergistic cooperation with pro-angiogenic factors including VEGF. Hence, elucidating the Ang1/Ang2 interplay with Tie receptors and their spatiotemporal dynamics within AS microenvironments establishes a framework for targeted intraplaque angiogenesis control and innovative therapeutic translation.</p>
</sec>
<sec id="s4c"><label>4.3</label><title>Mitogen-activated protein kinase kinase (MEK)/extracellular regulated protein kinases (ERK) and PI3K/AKT</title>
<p>The MEK/ERK and PI3K/AKT signaling pathways constitute dual regulatory axes governing AS plaque evolution, orchestrating the maintenance and destabilization of plaque phenotype through divergent yet complementary mechanisms. Activation of the MEK/ERK signaling pathway primarily orchestrates the proliferation of VSMCs and the propagation of inflammatory responses (<xref ref-type="bibr" rid="B71">71</xref>). MEK inhibitors demonstrate significant plaque volume reduction coupled with amelioration of inflammatory burden (<xref ref-type="bibr" rid="B72">72</xref>), underscoring the pivotal role of MEK/ERK pathway inhibition in plaque stabilization. In stark contrast, the PI3K/AKT pathway potentiates pathological angiogenesis by enhancing endothelial cell survival and migratory capacity. This process is further orchestrated through HIF-1&#x03B1;-mediated transcriptional control, resulting in aberrant microvascular networks at the base of AS plaques. These fragile neovessels serve as primary triggers for intraplaque hemorrhage and rupture (<xref ref-type="bibr" rid="B73">73</xref>). Critically, complex crosstalk exists between the MEK/ERK and PI3K/AKT pathways. Upon MEK/ERK inhibition, compensatory PI3K/AKT activation occurs via signaling nodes such as mTORC2. Conversely, PI3K/AKT blockade potentiates feedback-driven ERK hyperphosphorylation. Crucially, this reciprocal escape circuitry substantially compromises monotherapeutic efficacy. From a systems biology perspective, dual-targeting strategies, which coordinately suppress the &#x201C;proliferation-inflammation-angiogenesis&#x201D; pathological triad while blocking compensatory escape routes, establishing a transformative paradigm to overcome current therapeutic bottlenecks in AS.</p>
</sec>
</sec>
<sec id="s5" sec-type="conclusions"><label>5</label><title>Conclusion</title>
<p>The &#x201C;Angiogenesis-Plaque Stability Paradox&#x201D; illuminates the intricate relationship between intraplaque angiogenesis and plaque stability, a seemingly contradictory yet profoundly interconnected dynamic. While conventional perspectives predominantly emphasize the destabilizing role of angiogenesis in AS pathogenesis and progression, they often overlook its reparative function in maintaining plaque integrity. Modern research, however, reveals their deep pathophysiological interdependence. The glycolysis-lactate-lactylation axis and mast cell-mediated inflammatory cascades provide novel insights into metabolic reprogramming within the plaque microenvironment. Crucially, the maturity and stabilization mechanisms of neovessels demonstrate that vascular quality, not merely quantity, serves as the key determinant of its functional consequences. These advances collectively construct a multidimensional mechanistic framework for the paradox, while the regulatory circuitry governing plaque angiogenesis presents actionable therapeutic targets to resolve this duality.</p>
<p>In summary, by investigating shared pathological mechanisms and regulatory signaling circuits linking intraplaque angiogenesis to plaque stability, we reveal a complex paradox: Angiogenesis exerts beneficial effects in physiological repair contexts yet accelerates plaque destabilization under pathological conditions. The prevention and treatment research for AS and plaque rupture should prioritize precision discrimination and targeted modulation of pathological vs. protective intraplaque angiogenesis, mandating integrated consideration of critical determinants including therapeutic timing and drug specificity. Future advancements could leverage deep learning algorithms constructed upon optical coherence tomography angiography (OCTA) features to dynamically assess plaque stability through quantification of neovascular morphological parameters (including vessel density, branching complexity, and mural integrity) alongside spatial distribution patterns. Furthermore, wearable biosensors enabling real-time monitoring of angiogenic signatures may be developed, integrated with machine learning frameworks to establish alert systems with high predictive efficacy. Therapeutically, nanotechnology-based delivery platforms for multicomponent botanical formulations can be engineered to achieve multidimensional modulation of the atherosclerotic plaque microenvironment; this strategy integrates the inherent multicomponent synergy of Traditional Chinese Medicine with the spatiotemporal targeting advantages of nanomedicine, thereby concurrently regulating pathological angiogenesis while preserving essential reparative neovascularization to resolve the &#x201C;angiogenesis-plaque stability paradox&#x201D;. Consequently, the convergence of artificial intelligence-aided vascular imaging analytics and multitargeted precision control of the plaque microenvironment will furnish innovative solutions for enhancing plaque stabilization, simultaneously pioneering novel pathways within integrative Chinese-Western medical paradigms for atherosclerosis management.</p>
</sec>
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<back>
<sec id="s6" sec-type="author-contributions"><title>Author contributions</title>
<p>FY: Conceptualization, Visualization, Writing &#x2013; original draft, Writing &#x2013; review &#x0026; editing. SS: Conceptualization, Investigation, Visualization, Writing &#x2013; review &#x0026; editing. HW: Conceptualization, Project administration, Resources, Supervision, Writing &#x2013; review &#x0026; editing.</p>
</sec>
<sec id="s7" sec-type="funding-information"><title>Funding</title>
<p>The author(s) declare that financial support was received for the research and/or publication of this article. Joint Fund of Henan Provincial Department of Science and Technology (222301420088), Henan Province Science and Technology Research Project (232102310403).</p>
</sec>
<sec id="s8" sec-type="COI-statement"><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 id="s9" sec-type="ai-statement"><title>Generative AI statement</title>
<p>The author(s) declare that no Generative AI was used in the creation of this manuscript.</p>
<p>Any alternative text (alt text) provided alongside figures in this article has been generated by Frontiers with the support of artificial intelligence and reasonable efforts have been made to ensure accuracy, including review by the authors wherever possible. If you identify any issues, please contact us.</p>
</sec>
<sec id="s10" sec-type="disclaimer"><title>Publisher&#x0027;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>
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