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Systemic lupus erythematosus-driven accelerated atherosclerosis: the immune-metabolic-vascular axis and therapeutic
Meiwei Jiang1, FengQi Zhang2, MinZhe Ren1
1The Second School of Clinical Medicine, Zhejiang Chinese Medical University, Hangzhou, China.
Insights
Systemic lupus erythematosus (SLE) accelerates atherosclerosis (AS) through immune and metabolic dysfunction, not just traditional risk factors. New strategies should target metabolic, immune, and vascular pathways for better cardiovascular outcomes.
Area of Science:
- Immunology
- Cardiovascular Medicine
- Metabolic Science
Background:
- Patients with systemic lupus erythematosus (SLE) face a significantly higher risk of premature atherosclerosis (AS) and atherosclerotic cardiovascular disease (ASCVD).
- Traditional risk factors do not fully account for this increased cardiovascular risk in SLE patients.
- Emerging evidence indicates SLE actively promotes AS through persistent immune activation and immunometabolic dysregulation.
Purpose of the Study:
- To review and synthesize evidence for an immune-metabolic-vascular framework in SLE-accelerated AS.
- To elucidate the interconnected mechanisms linking autoimmunity to vascular pathology in SLE.
- To identify potential therapeutic targets beyond traditional lipid-lowering and immunosuppression.
Main Methods:
- Review of current epidemiologic, mechanistic, and translational research on SLE and AS.
- Focus on four key interconnected processes: IFN-I-mediated endothelial injury, NETs and HDL modification, monocyte/macrophage reprogramming, and lymphocyte metabolic dysregulation.
- Analysis of metabolic rewiring as a central amplifier of autoimmune-driven vascular progression.
Main Results:
- SLE accelerates AS via endothelial injury, dysfunctional HDL, foam-cell formation, and sustained vascular inflammation.
- Metabolic reprogramming is identified as a shared amplifier linking systemic autoimmunity to vascular lesion development.
- Interconnected immune and metabolic pathways significantly contribute to accelerated atherosclerosis in SLE.
Conclusions:
- An immune-metabolic-vascular framework explains SLE-accelerated AS.
- Future therapies should integrate metabolic resetting, immune-specific blockade, and vascular protection.
- Further clinical trials are needed to validate these findings and assess plaque/event outcomes.
Abstract:
Patients with systemic lupus erythematosus (SLE) are at markedly increased risk of premature atherosclerosis (AS) and atherosclerotic cardiovascular disease (ASCVD), and this excess risk is not fully explained by traditional Framingham factors. Increasing evidence suggests that SLE does not merely coexist with AS; rather, persistent immune activation and immunometabolic dysregulation reshape the vascular microenvironment toward endothelial dysfunction, lipoprotein impairment, maladaptive myeloid activation, and immunothrombosis. This review synthesizes current epidemiologic, mechanistic, and translational evidence supporting an immune-metabolic-vascular framework for SLE-accelerated AS. We focus on four interconnected processes: (1) type I interferon (IFN-I)-associated endothelial injury and defective vascular repair; (2) neutrophil extracellular traps (NETs) and oxidative modification of high-density lipoprotein, contributing to dysfunctional or pro-inflammatory HDL; (3) monocyte/macrophage immunometabolic reprogramming, which favors foam-cell formation and inflammasome activation; and (4) T- and B-cell metabolic disequilibrium, which sustains vascular inflammation and autoantibody-driven immune injury. Across these pathways, metabolic rewiring appears to function not merely as a parallel phenomenon, but as a shared amplifier linking systemic autoimmunity to lesion-level vascular progression. Recognizing these shared checkpoints has therapeutic implications. These observations suggest that future strategies may need to integrate upstream metabolic resetting, midstream immune-specific blockade, and downstream lipid or vascular-wall protection, rather than relying solely on lipid lowering or broad immunosuppression. However, most available evidence remains confined to mechanistic studies, biomarker readouts, or surrogate vascular endpoints, and dedicated trials with plaque or cardiovascular event outcomes are still needed.
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