Introduction: Co-stimulatory proteins are master regulators of the immune system. We identified the co-stimulatory CD40-CD40L dyad as a key driver of inflammation during atherosclerosis and have shown that CD40 and CD40L exert cell-type divergent functions. Hypothesis: CD40 is abundantly expressed on endothelial cells (EC) undergoing endothelial mesenchymal transition (EndMT). We hypothesize that EC CD40 drives atherosclerosis via EndMT. Methods: We analyzed scRNAseq data from human carotid plaques, performed multiplex IHC, and used human aortic endothelial cells (HAECs) for in vitro studies. A tamoxifen-inducible EC specific CD40 deficient atherosclerotic mouse model (cadherin5 (cdh5)ERT2-CD40 flfl -ApoE -/- ) was generated. Results: Besides its presence on immune cells, CD40 is expressed on endothelial cells in both human and mouse atherosclerotic plaques. Analysis of scRNAseq data of human carotid atherosclerotic plaques showed that CD40 is highly expressed in COL1A2/FN1 expressing endothelial cells (ECs), a subset undergoing EndMT. Multiplex staining revealed that CD40 colocalized with the EndMT markers αSMA, NOTCH3, TWIST and VCAM1 in human plaques. In vitro , stimulation of human arterial endothelial cells (HAECs) with CD40L resulted in an increase in the EndMT markers markers fibronectin, vimentin, sm22α, FSP1 and snail. Using phosphoproteomics, CD40L was found to decrease phosphorylation of the junctional integrity proteins CTNNA1 [S652; S655] and ARHGAP21 [S1383]. To investigate the endothelial-specific effects of CD40 in atherosclerosis, 8-week-old cdh5ERT2-CD40 flfl -ApoE -/- mice and their CD40 flfl -ApoE -/- littermate controls were treated with tamoxifen and fed a high cholesterol diet for 10 wks. Deletion of EC-CD40 resulted in a significant reduction in plaque size. This reduction was accompanied by a shift from fibrous cap atheromas (FCA) towards intimal xanthoma (IX) and pathological intimal thickening (PIT). Flow cytometry analysis of the spleen showed that CD40 deletion in ECs results in a significant decrease in CD8 and CD4 effector T cells. This decrease in CD8 and CD4 effector T cells was accompanied by a diminished activation status, shown by a decrease in CD69 + CD8 + CD62 - CD44 + T cells, CD40L + CD8 + CD62 - CD44 + T cells and CD40L + CD4 + CD62 - CD44 + T cells. These findings demonstrate that endothelial CD40 drives atherosclerosis by inducing EndMT-driven plaque inflammation.
Abstract Myocardial infarction (MI) triggers a systemic neutrophil response, yet the roles of distinct neutrophil subsets in cardiac remodeling remain unclear. Studying this requires murine models that accurately mirror human neutrophil dynamics. Here, we show that a minimally invasive intact-chest MI model is more pathophysiologically relevant than the standard open-chest approach for investigating post-MI immune responses. In the open-chest model, surgical trauma disrupts bone marrow homeostasis, releases large numbers of immature neutrophils, and masks MI-specific immune mechanisms. In contrast, the intact-chest model preserves bone marrow integrity and induces only a modest rise in circulating immature neutrophils, closely reflecting MI patient profiles. We further demonstrate that accumulation of immature neutrophils in the infarcted heart exacerbates cardiac dysfunction. Beyond neutrophils, the overall cardiac immune landscape differs markedly between both models. Collectively, our findings establish the intact-chest model as superior for studying post-MI inflammation and reveal immature neutrophils as mediators of adverse cardiac remodeling.
Introduction: V-domain Immunoglobulin Suppressor of T-cell Activation (VISTA), a co-inhibitory immune checkpoint protein, is known for regulating adaptive immune responses. Here, we investigated the role of VISTA in atherosclerosis. Hypothesis: VISTA is constitutively expressed on hematopoietic cells, particularly T cells. VISTA functions as both a ligand and receptor to maintain T cell quiescence. We hypothesize that VISTA expression is protective against plaque formation by inhibiting CD4 + T cell activation. Methods: Cellular indexing of transcriptomes and epitopes by sequencing (CITE-seq) was performed on aortic CD45 + cells of HCD fed ApoE-/- mice. Spatial transcriptomics (VISIUM) was performed on carotid plaques from patients with either asymptomatic or symptomatic cerebrovascular disease. Plaque burden, characterization, and flow cytometry of blood and lymphoid organs were performed on VISTA -/- ApoE -/- (VISTA KO) and VISTA +/+ ApoE -/- (WT) mice that were fed a HCD for 10 weeks. ApoE -/- mice treated with VISTA agonist 8G8 or IgG control (200ug, intra-peritoneal, 3 times per week for the last 6/10 weeks of HCD feeding). In vitro proliferation, migration, and functional T cell assays were performed. Results: We found that VISTA is expressed on plaque T cell populations, particularly regulatory T cells, gamma-delta T cells, and naïve T cells. In humans, individuals with symptomatic CVD have significantly reduced VISTA gene expression in carotid plaques. VISTA KO mice have increased total plaque area and necrotic core area compared to littermate WT controls. VISTA KO mice have increased peripheral CD4 + and CD8 + effector memory T (T EM ) cells with a corresponding decrease in CD4 + and CD8 + naïve T (T N ) cells and CD4 + regulatory T (T reg ) cells. Further, VISTA KO mice have a higher frequency of CD4 + T H 1 (T-bet + IFNy + ) cells and lower frequencies of IL-10 + CD4 + T cells and CD4 + T H 2 (GATA-3 + IL-13 + ) cells. In vitro assays showed that VISTA suppresses CD4 + T cell proliferation, IFNγ production, and migration. Finally, VISTA agonist treatment significantly decreased plaque and necrotic core areas in atherosclerotic mice. Conclusion: Our data reveals a novel role for VISTA in reducing plaque development and in suppressing T cell activation, proliferation, and migration. Further characterization of T-cell specific VISTA-deficient mouse models and mechanistic insights into how VISTA modulates T cells are currently being investigated.
Worldwide, more than 4 million patients with end-stage kidney disease require hemodialysis through an arteriovenous fistula (AVF). AVFs fail because of venous neointimal hyperplasia (VNH) resulting in venous stenosis formation. A phase 1 randomized trial in patients undergoing upper extremity AVF placement was performed to evaluate the safety and efficacy of autologous adipose-derived mesenchymal stem cells (MSCs) in improving AVF function. The mechanism of action by which MSCs exert their beneficial effects was investigated using AVFs created in mice and pigs treated with allogenic MSCs and xenotransplant using patient MSCs in CD1-Foxn1nu mice. At a median follow-up of 42 months, patients with MSC-treated AVFs had reduced time to maturation with an increase in the vein diameter compared with controls. AVFs treated with allogenic MSCs in mice and pigs had an increase in M2- and M1-like macrophages with a decrease in VNH. Transcriptomic analysis of AVFs treated with allogenic MSCs in mouse and MSC xenotransplants of patients with successful AVFs showed decreased peroxisome proliferator-activated receptor gamma (Pparγ) and leptin receptor (Lepr) and increased latent transforming growth factor-beta-binding protein 2 (Ltbp2). PPARγ was reduced in CD68 (+) cells from successful AVFs and allogenic MSC-treated mouse AVFs. Venous stenosis and VNH formation were mitigated in AVFs of mice with Pparγ ablation in immune cells. Conditioned medium from MSCs of responders versus nonresponders had decreased proinflammatory genes, senescence-associated proteins, and monocyte-to-macrophage differentiation induced by phorbol 12-myristate-13-acetate. Periadventitial delivery of MSCs to AVFs promoted positive vascular remodeling through decreased inflammatory responses.
BACKGROUND:The activation and polarization of T cells play a crucial role in atherosclerosis and dictate athero-inflammation. The epigenetic enzyme EZH2 (enhancer of zeste homolog 2) mediates the H3K27me3 (trimethylation of histone H3 lysine 27) and is pivotal in controlling T cell responses.METHODS:To detail the role of T cell EZH2 in atherosclerosis, we used human carotid endarterectomy specimens to reveal plaque expression and geography of EZH2. Atherosclerosis-prone Apoe (apolipoprotein E)-deficient mice with CD (cluster of differentiation) 4+ or CD8+ T cell-specific Ezh2 deletion (Ezh2cd4-knockout [KO], Ezh2cd8-KO) were analyzed to unravel the role of T cell Ezh2 in atherosclerosis and T cell-associated immune status.RESULTS:EZH2 expression is elevated in advanced human atherosclerotic plaques and primarily expressed in the T cell nucleus, suggesting the importance of canonical EZH2 function in atherosclerosis. Ezh2cd4-KO, but not Ezh2cd8-KO, mice showed reduced atherosclerosis with fewer advanced plaques, which contained less collagen and macrophages, indicating that Ezh2 in CD4+ T cells drives atherosclerosis. In-depth analysis of CD4+ T cells of Ezh2cd4-KO mice revealed that absence of Ezh2 results in a type 2 immune response with increased Il-4 (interleukin 4) gene and protein expression in the aorta and lymphoid organs. In vitro, Ezh2-deficient T cells polarized macrophages toward an anti-inflammatory phenotype. Single-cell RNA-sequencing of splenic T cells revealed that Ezh2 deficiency reduced naive, Ccl5+ (C-C motif chemokine ligand 5) and regulatory T cell populations and increased the frequencies of memory T cells and invariant natural killer T (iNKT) cells. Flow cytometric analysis identified a shift toward Th2 (type 2 T helper) effector CD4+ T cells in Ezh2cd4-KO mice and confirmed a profound increase in splenic iNKT cells with increased expression of Plzf (promyelocytic leukemia zinc finger), which is the characteristic marker of the iNKT2 subset. Likewise, Zbtb16 ([zinc finger and BTB domain containing 16], the Plzf-encoding gene) transcripts were elevated in the aorta of Ezh2cd4-KO mice, suggesting an accumulation of iNKT2 cells in the plaque. H3K27me3-chromatin immunoprecipitation followed by quantitative polymerase chain reaction showed that T cell-Ezh2 regulates the transcription of the Il-4 and Zbtb16 genes.CONCLUSIONS:Our study uncovers the importance of T cell EZH2 in human and mouse atherosclerosis. Inhibition of Ezh2 in CD4+ T cells drives type 2 immune responses, resulting in an accumulation of iNKT2 and Th2 cells, memory T cells and anti-inflammatory macrophages that limit the progression of atherosclerosis.
Introduction: Atherosclerosis, the underlying cause of cardiovascular disease (CVD), is a lipid-driven chronic inflammatory disease. We have identified the co-stimulatory CD40-CD40L immune checkpoint dyad as a key driver of inflammation during atherosclerosis. CD40 and CD40L exert cell-type divergent functions via different signaling pathways. Hypothesis: We hypothesize that CD40 on endothelial cell (ECs) induces endothelial-to-mesenchymal transition (EndMT)-mediated vascular inflammation in atherosclerosis. Methods & Results: Using single cell RNAseq, we found that CD40 (TNFRSF5) is expressed on PDE3A + GJA5 + and KDR + COL15A1 + ECs of advanced human carotid atherosclerotic plaques. CD40 is highly expressed in the endothelial lining of human and mouse atherosclerotic plaques, and colocalizes with the EndMT markers fibronectin and collagen and adhesion molecule ICAM-1. CD40L activation of human aortic endothelial cells (HAECs) results in expression of the EndMT markers fibronectin, vimentin, sm22α, FSP1 and snail. Activation of CD40 in EC induces filamin A dependent translocation of CD40 into lipid rafts, increases TNF-receptor associated factor (TRAFs) -2, -3 and 6 levels, induces Akt signaling and increases expression of VCAM1 and CCL2. Conclusions: The endothelial cell has been more and more regarded as a cell type that plays a major role in driving inflammation. Our data suggest that the CD40-CD40L axis plays a significant role in EC-mediated inflammation in atherosclerosis by driving EndMT.
The CD40-CD40L co-stimulatory dyad has been identified as critical player in atherosclerosis. Our previous work has shown that CD40 and CD40L have cell divergent effects on atherosclerosis. Deficiency of the CD40-CD40L dendritic cell-T cell axis decreased atherosclerosis via reducing T helper 1 responses, whereas deficiency of macrophages CD40 reduced atherosclerosis by enhancing efferocytosis and reducing necrotic core content. CD40 is highly expressed on B cells and interacts with CD40L on T cells to induce antibody production and T follicular helper cell responses. We therefore hypothesize that deletion of CD40 will reduce atherosclerosis. We aim to unravel the role of B cell CD40 in atherosclerosis. CD40 expression on B cell subsets was determined on peripheral blood mononuclear cells of patients and correlated with severity of coronary artery disease (CAD). Atherosclerosis was analyzed in CD19 Cre CD40 flfl ApoE -/- mice that were fed an atherogenic diet for 14 weeks. Patients with CAD showed a decrease in CD40 on their putative B1 cells, which was associated with increased plaque burden and decreased plaque fibrosis as detected by coronary intravascular ultrasound. Depletion of CD40 on B cells in ApoE -/- mice resulted in a decreased germinal center formation and inadequate IgM production as expected. However, in line with our patient data, absence of B cell-CD40 increased atherosclerosis. This was caused by a reduction in B1 cells and consequently a reduction in atheroprotective anti-oxidation specific epitope (OSE) IgMs. Transfer of CD40-competent B1b cells in B cell-CD40-deficient mice restored anti-OSE IgM levels and prevented the increase in atherosclerosis. CD40-deficient B1b cells have an altered mTOR signaling pathway, impaired mitochondrial function, excessive uptake of lipids, increased cellular stress and accelerated cell death. Data indicate that CD40-deficiency promotes phosphorylation of RAPTOR and protein kinase B (AKT). We have identified a novel function of CD40 on B1b cells. B1b cell-CD40 exerts an anti-atherogenic role by regulating B1b cell metabolic homeostasis via mTOR pathway. Further mechanistic insights into how CD40 mounts adequate atheroprotective anti-OSE IgM production are currently being investigated.
IntroductionAtherosclerosis is a lipid-driven inflammatory disease of the arterial wall, and the underlying cause of the majority of cardiovascular diseases. Recent advances in high-parametric immunophenotyping of immune cells indicate that T cells constitute the major leukocyte population in the atherosclerotic plaque. The E3 ubiquitin ligase Casitas B-lymphoma proto-oncogene-B (CBL-B) is a critical intracellular regulator that sets the threshold for T cell activation, making CBL-B a potential therapeutic target to modulate inflammation in atherosclerosis. We previously demonstrated that complete knock-out of CBL-B aggravated atherosclerosis in Apoe-/- mice, which was attributed to increased macrophage recruitment and increased CD8+ T cell activation in the plaque.MethodsTo further study the T cell specific role of CBL-B in atherosclerosis, Apoe-/- CD4creCblbfl/fl (Cbl-bcKO) mice and Apoe-/-CD4WTCblbfl/fl littermates (Cbl-bfl/fl) were fed a high cholesterol diet for ten weeks.ResultsCbl-bcKO mice had smaller atherosclerotic lesions in the aortic arch and root compared to Cbl-bfl/fl, and a substantial increase in CD3+ T cells in the plaque. Collagen content in the plaque was decreased, while other plaque characteristics including plaque necrotic core, macrophage content, and smooth muscle cell content, remained unchanged. Mice lacking T cell CBL-B had a 1.4-fold increase in CD8+ T cells and a 1.8-fold increase in regulatory T cells in the spleen. Splenic CD4+ and CD8+ T cells had increased expression of C-X-C Motif Chemokine Receptor 3 (CXCR3) and interferon-γ (IFN-γ), indicating a T helper 1 (Th1)-like/effector CD8+ T cell-like phenotype.ConclusionIn conclusion, Cbl-bcKO mice have reduced atherosclerosis but show increased T cell accumulation in the plaque accompanied by systemic T cell activation.
The benefits of current state-of-the-art treatments to combat atherosclerotic cardiovascular disease (ASCVD) have stagnated. Treatments are mostly based on controlling cardiovascular risk factors, especially hyperlipidemia. Although the most recent advances with PCSK-9 inhibitors support the hyperlipidemia aspect of ASCVD, several lines of experimental evidence have outlined that atherosclerosis is also driven by inflammation. In the past years, phase 1, 2, and 3 clinical trials targeting inflammation to combat ASCVD have revealed that patients do tolerate such immune therapies, show decreases in inflammatory markers, and/or have reductions in cardiovascular endpoints. However, the search for the optimal anti-inflammatory or immune-modulating strategy and the stratification of patients who would benefit from such treatments and appropriate treatment regimens to combat ASCVD is only just beginning. In this review, we focus on immune checkpoint–based therapeutics (costimulation and coinhibition), many of which are already approved by the U.S. Food and Drug Administration for the treatment of cancer or autoimmune diseases, and discuss their use as a novel immunotherapeutic strategy to treat ASCVD.
The CD40-CD40L co-stimulatory dyad has been identified as critical player in atherosclerosis. Our previous work has shown that CD40 and CD40L have cell divergent effects on atherosclerosis. Deficiency of the CD40-CD40L dendritic cell-T cell axis decreased atherosclerosis via reducing T helper 1 responses, whereas deficiency of macrophages CD40 reduced atherosclerosis by enhancing efferocytosis and reducing necrotic core content. CD40 is highly expressed on B cells and interacts with CD40L on T cells to induce antibody production and T follicular helper cell responses. We therefore hypothesize that deletion of CD40 will reduce atherosclerosis. We aim to unravel the role of B cell CD40 in atherosclerosis. CD40 expression on B cell subsets was determined on peripheral blood mononuclear cells of patients and correlated with severity of coronary artery disease (CAD). Atherosclerosis was analyzed in CD19 Cre CD40 flfl ApoE -/- mice that were fed an atherogenic diet for 14 weeks. Patients with CAD showed a decrease in CD40 on their putative B1 cells, which was associated with increased plaque burden and decreased plaque fibrosis as detected by coronary intravascular ultrasound. Depletion of CD40 on B cells in ApoE -/- mice resulted in a decreased germinal center formation and inadequate IgM production as expected. However, in line with our patient data, absence of B cell-CD40 increased atherosclerosis. This was caused by a reduction in B1 cells and consequently a reduction in atheroprotective anti-oxidation specific epitope (OSE) IgMs. Transfer of CD40-competent B1b cells in B cell-CD40-deficient mice restored anti-OSE IgM levels and prevented the increase in atherosclerosis. CD40-deficient B1b cells have an altered mTOR signaling pathway, impaired mitochondrial function, excessive uptake of lipids, increased cellular stress and accelerated cell death. Data indicate that CD40-deficiency promotes phosphorylation of RAPTOR and protein kinase B (AKT). We have identified a novel function of CD40 on B1b cells. B1b cell-CD40 exerts an anti-atherogenic role by regulating B1b cell metabolic homeostasis via mTOR pathway. Further mechanistic insights into how CD40 mounts adequate atheroprotective anti-OSE IgM production are currently being investigated.
CCL17 is produced by conventional dendritic cells, signals through CCR4 on regulatory T (T reg ) cells and drives atherosclerosis by suppressing T reg functions through yet undefined mechanisms. Here we show that conventional dendritic cells from CCL17-deficient mice display a pro-tolerogenic phenotype and transcriptome that is not phenocopied in mice lacking its cognate receptor CCR4. In the plasma of CCL17-deficient mice, CCL3 was the only decreased cytokine/chemokine. We found that CCL17 signaled through CCR8 as an alternate high-affinity receptor, which induced CCL3 expression and suppressed T reg functions in the absence of CCR4. Genetic ablation of CCL3 and CCR8 in CD4 + T cells reduced CCL3 secretion, boosted FoxP3 + T reg numbers and limited atherosclerosis. Conversely, CCL3 administration exacerbated atherosclerosis and restrained T reg differentiation. In symptomatic versus asymptomatic human carotid atheroma, CCL3 expression was increased, whereas FoxP3 expression was reduced. Together, we identified a non-canonical chemokine pathway whereby CCL17 interacts with CCR8 to yield a CCL3-dependent suppression of atheroprotective T reg cells.
Background: Amino acid metabolism is crucial for inflammatory processes during atherogenesis. The endogenous amino acid homoarginine is a robust biomarker for cardiovascular outcome and mortality with high levels being protective. However, the underlying mechanisms remain elusive. We investigated the effect of homoarginine supplementation on atherosclerotic plaque development with a particular focus on inflammation. Methods: Female ApoE-deficient mice were supplemented with homoarginine (14 mg/L) in drinking water starting 2 weeks before and continuing throughout a 6-week period of Western-type diet feeding. Control mice received normal drinking water. Immunohistochemistry and flow cytometry were used for plaque- and immunological phenotyping. T cells were characterized using mass spectrometry–based proteomics, by functional in vitro approaches, for example, proliferation and migration/chemotaxis assays as well as by super-resolution microscopy. Results: Homoarginine supplementation led to a 2-fold increase in circulating homoarginine concentrations. Homoarginine-treated mice exhibited reduced atherosclerosis in the aortic root and brachiocephalic trunk. A substantial decrease in CD3 + T cells in the atherosclerotic lesions suggested a T-cell–related effect of homoarginine supplementation, which was mainly attributed to CD4 + T cells. Macrophages, dendritic cells, and B cells were not affected. CD4 + T-cell proteomics and subsequent pathway analysis together with in vitro studies demonstrated that homoarginine profoundly modulated the spatial organization of the T-cell actin cytoskeleton and increased filopodia formation via inhibition of Myh9 (myosin heavy chain 9). Further mechanistic studies revealed an inhibition of T-cell proliferation as well as a striking impairment of the migratory capacities of T cells in response to relevant chemokines by homoarginine, all of which likely contribute to its atheroprotective effects. Conclusions: Our study unravels a novel mechanism by which the amino acid homoarginine reduces atherosclerosis, establishing that homoarginine modulates the T-cell cytoskeleton and thereby mitigates T-cell functions important during atherogenesis. These findings provide a molecular explanation for the beneficial effects of homoarginine in atherosclerotic cardiovascular disease.
Atherosclerosis is a major underlying cause of cardiovascular disease. Previous studies showed that inhibition of the co-stimulatory CD40 ligand (CD40L)-CD40 signaling axis profoundly attenuates atherosclerosis. As CD40L exerts multiple functions depending on the cell-cell interactions involved, we sought to investigate the function of the most relevant CD40L-expressing cell types in atherosclerosis: T cells and platelets. Atherosclerosis-prone mice with a CD40L-deficiency in CD4+ T cells display impaired Th1 polarization, as reflected by reduced interferon-γ production, and smaller atherosclerotic plaques containing fewer T-cells, smaller necrotic cores, an increased number of smooth muscle cells and thicker fibrous caps. Mice with a corresponding CD40-deficiency in CD11c+ dendritic cells phenocopy these findings, suggesting that the T cell-dendritic cell CD40L-CD40 axis is crucial in atherogenesis. Accordingly, sCD40L/sCD40 and interferon-γ concentrations in carotid plaques and plasma are positively correlated in patients with cerebrovascular disease. Platelet-specific deficiency of CD40L does not affect atherogenesis but ameliorates atherothrombosis. Our results establish divergent and cell-specific roles of CD40L-CD40 in atherosclerosis, which has implications for therapeutic strategies targeting this pathway.
Aims GITR a co-stimulatory immune checkpoint protein is known for both its activating and regulating effects on Tcells. As atherosclerosis bears features of chronic inflammation and autoimmunity, we investigated the relevance of GITR in cardiovascular disease (CVD). Methods GITR expression was elevated in carotid endarterectomy specimens obtained from patients with cerebrovascular and results events (n= 100) compared to asymptomatic patients (n= 93) and correlated with parameters of plaque vulnerability, including plaque macrophage, lipid and gtycophorin A content, and levels of interteukin (IL) -6, IL-12, and C-C-chemokine ligand 2. Soluble GITR levels were elevated in plasma from subjects with CVD compared to healthy controls. Plaque area in 28-week-old Gitr(-/-) Apoe(-/-) mice was reduced, and plaques had a favourable phenotype with Less macrophages, a smaller necrotic core and a thicker fibrous cap. GITR deficiency did not affect the lymphoid population. RNA sequencing of Gitr(-/-) Apoe(-/-)and Apoe(-/-) monocytes and macrophages revealed altered pathways of cell migration, activation, and mitochondrial function. Indeed, Gitr I Apoe monocytes displayed decreased integrin levels, reduced recruitment to endothelium, and produced less reactive oxygen species. Likewise, GITR-deficient macrophages produced less cytokines and had a reduced migratory capacity. Conclusion Our data reveal a novel role for the immune checkpoint GITR in driving myeloid cell recruitment and activation in atherosclerosis, thereby inducing plaque growth and vulnerability. In humans, elevated GITR expression in carotid plaques is associated with a vulnerable plaque phenotype and adverse cerebrovascular events. GITR has the potential to become a novel therapeutic target in atherosclerosis as it reduces myeloid cell recruitment to the arterial wall and impedes atherosclerosis progression.
As a leading cause of death worldwide, cardiovascular disease is a global health concern. The development and progression of atherosclerosis, which ultimately gives rise to cardiovascular disease, has been causally linked to hypercholesterolemia. Mechanistically, the interplay between lipids and the immune system during plaque progression significantly contributes to the chronic inflammation seen in the arterial wall during atherosclerosis. Localized inflammation and increased cell-to-cell interactions may influence polarization and proliferation of immune cells via changes in amino acid metabolism. Specifically, the amino acids l -arginine (Arg), l -homoarginine (hArg) and l -tryptophan (Trp) have been widely studied in the context of cardiovascular disease, and their metabolism has been established as key regulators of vascular homeostasis, as well as immune cell function. Cyclic effects between endothelial cells, innate, and adaptive immune cells exist during Arg and hArg, as well as Trp metabolism, that may have distinct effects on the development of atherosclerosis. In this review, we describe the current knowledge surrounding the metabolism, biological function, and clinical perspective of Arg, hArg, and Trp in the context of atherosclerosis.