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Published on: November 17, 2017
Interactions between dyslipidemia and the immune system and their relevance as putative therapeutic targets in
Michael Lacy1, Dorothee Atzler2, Rongqi Liu1
1Institute for Cardiovascular Prevention, Ludwig-Maximilians-University, Munich, Germany.
Insights
Lipids and immune cells drive atherosclerosis, a major cause of cardiovascular disease (CVD). New research highlights their interaction and epigenetic effects, opening doors for novel anti-inflammatory CVD treatments.
Area of Science:
- Immunology
- Cardiology
- Molecular Biology
Background:
- Cardiovascular disease (CVD) is a leading global cause of death.
- Atherosclerosis, the primary pathology of CVD, involves chronic arterial inflammation.
- Lipid accumulation and subsequent immune cell responses drive plaque development.
Purpose of the Study:
- To review the complex interactions between lipids and immune cells in atherogenesis.
- To discuss the impact of lipids on immune cell development and function.
- To explore the potential of targeting lipid-immune cell interactions for CVD treatment.
Main Methods:
- Literature review focusing on lipid-immune cell interactions in atherosclerosis.
- Analysis of evidence from animal models and human studies.
- Discussion of recent clinical trial outcomes, including CANTOS.
Main Results:
- Lipids influence immune cell development, phenotype, and epigenetic programming.
- Immune responses to lipid accumulation are central to plaque progression.
- The CANTOS trial validated the inflammatory hypothesis of atherosclerosis in humans.
Conclusions:
- Targeting lipid-immune cell interactions represents a promising therapeutic strategy for atherosclerosis.
- Anti-inflammatory approaches are gaining traction for CVD treatment.
- Further research into epigenetic modifications by lipids could yield novel therapeutic targets.
Abstract:
Cardiovascular disease (CVD) continues to be a leading cause of death worldwide with atherosclerosis being the major underlying pathology. The interplay between lipids and immune cells is believed to be a driving force in the chronic inflammation of the arterial wall during atherogenesis. Atherosclerosis is initiated as lipid particles accumulate and become trapped in vessel walls. The subsequent immune response, involving both adaptive and immune cells, progresses plaque development, which may be exacerbated under dyslipidemic conditions. Broad evidence, especially from animal models, clearly demonstrates the effect of lipids on immune cells from their development in the bone marrow to their phenotypic switching in circulation. Interestingly, recent research has also shown a long-lasting epigenetic signature from lipids on immune cells. Traditionally, cardiovascular therapies have approached atherosclerosis through lipid-lowering medications because, until recently, anti-inflammatory therapies have been largely unsuccessful in clinical trials. However, the recent Canakinumab Antiinflammatory Thrombosis Outcomes Study (CANTOS) provided pivotal support of the inflammatory hypothesis of atherosclerosis in man spurring on anti-inflammatory strategies to treat atherosclerosis. In this review, we describe the interactions between lipids and immune cells along with their specific outcomes as well as discuss their future perspective as potential cardiovascular targets.
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