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Published on: January 19, 2024
Annexins and cardiovascular diseases: Beyond membrane trafficking and repair
Nerea Méndez-Barbero1,2, Irene San Sebastian-Jaraba1,2, Rafael Blázquez-Serra1,2
1Laboratory of Vascular Pathology, IIS-Fundación Jiménez Díaz, Madrid, Spain.
Insights
Annexins, a protein family, play a crucial role in cardiovascular diseases (CVD) by influencing vascular remodeling and immune responses. Understanding their mechanisms may lead to new therapeutic strategies for CVD.
Area of Science:
- Biochemistry
- Molecular Biology
- Cardiology
Background:
- Cardiovascular diseases (CVD) are the leading global cause of death, driven by pathological vascular remodeling and atherosclerosis.
- Atherosclerosis involves endothelial dysfunction, lipoprotein retention, and chronic immune-inflammatory responses, leading to plaque progression and cardiovascular events.
- Annexins are calcium-binding proteins involved in diverse cellular functions, including immune responses and membrane repair.
Purpose of the Study:
- To review the role of annexins in the mechanisms underlying cardiovascular diseases (CVD).
- To highlight the potential therapeutic applications of annexins in managing CVD.
Main Methods:
- Review of existing literature on annexin function in cellular processes.
- Analysis of studies using in vitro and in vivo models, including annexin-deficient mice.
- Focus on annexin involvement in vascular remodeling, inflammation, and atherosclerosis.
Main Results:
- Annexins modulate immune-inflammatory responses crucial to atherosclerosis development.
- Annexin functions extend beyond calcium signaling, impacting cell proliferation, migration, and membrane repair.
- Studies in annexin-deficient mice reveal in vivo roles in various pathologies.
Conclusions:
- Annexins are implicated in the pathogenesis of cardiovascular diseases through multiple cellular mechanisms.
- Targeting annexins presents a promising avenue for novel therapeutic interventions for CVD.
Abstract:
Cardiovascular diseases (CVD) remain the leading cause of mortality worldwide. The main cause underlying CVD is associated with the pathological remodeling of the vascular wall, involving several cell types, including endothelial cells, vascular smooth muscle cells, and leukocytes. Vascular remodeling is often related with the development of atherosclerotic plaques leading to narrowing of the arteries and reduced blood flow. Atherosclerosis is known to be triggered by high blood cholesterol levels, which in the presence of a dysfunctional endothelium, results in the retention of lipoproteins in the artery wall, leading to an immune-inflammatory response. Continued hypercholesterolemia and inflammation aggravate the progression of atherosclerotic plaque over time, which is often complicated by thrombus development, leading to the possibility of CV events such as myocardial infarction or stroke. Annexins are a family of proteins with high structural homology that bind phospholipids in a calcium-dependent manner. These proteins are involved in several biological functions, from cell structural organization to growth regulation and vesicle trafficking. In vitro gain- or loss-of-function experiments have demonstrated the implication of annexins with a wide variety of cellular processes independent of calcium signaling such as immune-inflammatory response, cell proliferation, migration, differentiation, apoptosis, and membrane repair. In the last years, the use of mice deficient for different annexins has provided insight into additional functions of these proteins in vivo, and their involvement in different pathologies. This review will focus in the role of annexins in CVD, highlighting the mechanisms involved and the potential therapeutic effects of these proteins.
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