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Updated: Jul 29, 2025

A Human Ex Vivo Atherosclerotic Plaque Model to Study Lesion Biology
Published on: May 6, 2014
Novel mechanisms and therapeutic targets in atherosclerosis: inflammation and beyond
Christian Weber1,2,3,4, Andreas J R Habenicht1,2, Philipp von Hundelshausen1,2
1Institute for Cardiovascular Prevention (IPEK), Ludwig-Maximilians-Universität München, Pettenkoferstraße 9, 80336 München, Germany.
Abstract:
This review based on the ESC William Harvey Lecture in Basic Science 2022 highlights recent experimental and translational progress on the therapeutic targeting of the inflammatory components in atherosclerosis, introducing novel strategies to limit side effects and to increase efficacy. Since the validation of the inflammatory paradigm in CANTOS and COLCOT, efforts to control the residual risk conferred by inflammation have centred on the NLRP3 inflammasome-driven IL-1β-IL6 axis. Interference with the co-stimulatory dyad CD40L-CD40 and selective targeting of tumour necrosis factor-receptor associated factors (TRAFs), namely the TRAF6-CD40 interaction in macrophages by small molecule inhibitors, harbour intriguing options to reduce established atherosclerosis and plaque instability without immune side effects. The chemokine system crucial for shaping immune cell recruitment and homoeostasis can be fine-tuned and modulated by its heterodimer interactome. Structure-function analysis enabled the design of cyclic, helical, or linked peptides specifically targeting or mimicking these interactions to limit atherosclerosis or thrombosis by blunting myeloid recruitment, boosting regulatory T cells, inhibiting platelet activity, or specifically blocking the atypical chemokine MIF without notable side effects. Finally, adventitial neuroimmune cardiovascular interfaces in advanced atherosclerosis show robust restructuring of innervation from perivascular ganglia and employ sensory neurons of dorsal root ganglia to enter the central nervous system and to establish an atherosclerosis-brain circuit sensor, while sympathetic and vagal efferents project to the celiac ganglion to create an atherosclerosis-brain circuit effector. Disrupting this circuitry by surgical or chemical sympathectomy limited disease progression and enhanced plaque stability, opening exciting perspectives for selective and tailored intervention beyond anti-inflammatory strategies.
Insights
Novel atherosclerosis therapies target inflammation and neuroimmune circuits. Strategies include modulating the NLRP3 inflammasome, CD40L-CD40 interactions, and chemokine pathways, alongside disrupting atherosclerosis-brain neuroimmune circuits for enhanced plaque stability.
Area of Science:
- Cardiovascular Science
- Immunology
- Neuroscience
Background:
- Atherosclerosis is driven by inflammation, with residual risk persisting after anti-inflammatory treatments.
- The NLRP3 inflammasome, IL-1β-IL6 axis, and CD40L-CD40 signaling are key inflammatory targets.
- Neuroimmune interactions are increasingly recognized in advanced atherosclerosis.
Approach:
- Targeting the NLRP3 inflammasome and IL-1β-IL6 axis for inflammation control.
- Developing small molecule inhibitors for TRAF6-CD40 interaction to reduce atherosclerosis.
- Modulating chemokine-receptor interactions with designed peptides to influence immune cell recruitment and function.
- Investigating and disrupting neuroimmune cardiovascular interfaces and atherosclerosis-brain circuits.
Key Points:
- Targeting CD40L-CD40 and TRAF6-CD40 interactions offers potential for atherosclerosis reduction without immune side effects.
- Peptide-based modulation of chemokine systems can limit myeloid recruitment and promote regulatory T cells.
- Disrupting neuroimmune circuitry via sympathectomy shows promise in limiting disease progression and stabilizing plaques.
- Novel strategies focus on limiting side effects while increasing therapeutic efficacy.
Conclusions:
- Therapeutic targeting of inflammatory and neuroimmune components presents promising avenues for atherosclerosis treatment.
- Selective interventions beyond traditional anti-inflammatory approaches are emerging.
- Future research should focus on tailored interventions for atherosclerosis and plaque instability.
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