High-density lipoprotein’s vascular protective functions in metabolic and cardiovascular disease – could extracellular vesicles be at play?

脂蛋白 高密度脂蛋白 氧化应激 LRP1型 生物 细胞生物学 胰岛素抵抗 胆固醇 化学 生物化学 糖尿病 内分泌学 低密度脂蛋白受体
作者
Jack Beazer,Patamat Patanapirunhakit,Jason M. R. Gill,Delyth Graham,Helén Karlsson,Stefan Ljunggren,Monique T. Mulder,Dilys J. Freeman
出处
期刊:Clinical Science [Portland Press]
卷期号:134 (22): 2977-2986 被引量:13
标识
DOI:10.1042/cs20200892
摘要

Abstract High-density lipoprotein (HDL) is a circulating complex of lipids and proteins known primarily for its role in reverse cholesterol transport and consequent protection from atheroma. In spite of this, therapies aimed at increasing HDL concentration do not reduce the risk of cardiovascular disease (CVD), and as such focus has shifted towards other HDL functions protective of vascular health – including vasodilatory, anti-inflammatory, antioxidant and anti-thrombotic actions. It has been demonstrated that in disease states such as CVD and conditions of insulin resistance such as Type 2 diabetes mellitus (T2DM), HDL function is impaired owing to changes in the abundance and function of HDL-associated lipids and proteins, resulting in reduced vascular protection. However, the gold standard density ultracentrifugation technique used in the isolation of HDL also co-isolates extracellular vesicles (EVs). EVs are ubiquitous cell-derived particles with lipid bilayers that carry a number of lipids, proteins and DNA/RNA/miRNAs involved in cell-to-cell communication. EVs transfer their bioactive load through interaction with cell surface receptors, membrane fusion and endocytic pathways, and have been implicated in both cardiovascular and metabolic diseases – both as protective and pathogenic mediators. Given that studies using density ultracentrifugation to isolate HDL also co-isolate EVs, biological effects attributed to HDL may be confounded by EVs. We hypothesise that some of HDL’s vascular protective functions in cardiovascular and metabolic disease may be mediated by EVs. Elucidating the contribution of EVs to HDL functions will provide better understanding of vascular protection and function in conditions of insulin resistance and potentially provide novel therapeutic targets for such diseases.
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