血管钙化:从串扰的角度来看。

IF 6.3 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecular biomedicine Pub Date : 2023-10-18 DOI:10.1186/s43556-023-00146-y
Shiqi Yang, Zhaolin Zeng, Qing Yuan, Qian Chen, Zuo Wang, Hui Xie, Jianghua Liu
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引用次数: 0

摘要

血管钙化(VC)与心血管疾病的发病率和死亡率高度相关,但由于分子机制不明确,抗VC治疗仍然是一个有待解决的领域。无论VC的类型如何,它都不依赖于单个细胞,而是涉及多个细胞/器官,通过血管微环境形成复杂的细胞通信网络,参与VC的发生和发展。因此,仅关注病理因素对血管平滑肌细胞(VSMCs)的直接影响往往忽视其他细胞和VSMCs的联合作用,包括VSMCs、ECs-VMSCs、巨噬细胞VSMCs等。细胞外小泡(EVs)是细胞主动分泌的具有膜结构的微小小泡的统称,几乎所有细胞都分泌EVs。停靠在受体细胞表面的EV可以直接介导信号转导或将其内容物转移到细胞中,以引发受体细胞的功能反应。它们已被证明参与VC过程,并显示出有吸引力的治疗前景。基于EVs的优势和在体液中检测的能力,它们可能成为一种新的治疗剂、药物递送载体、诊断和预后生物标志物,以及未来的潜在治疗靶点。这篇综述的重点是从串扰的角度对VC分子机制的新见解,总结了多细胞/器官相互作用如何通过EVs来调节VC,以及EVs作为VC治疗方法的新兴潜力。我们还总结了基于串扰的临床前实验和VC相关措施的临床研究现状。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Vascular calcification: from the perspective of crosstalk.

Vascular calcification (VC) is highly correlated with cardiovascular disease morbidity and mortality, but anti-VC treatment remains an area to be tackled due to the ill-defined molecular mechanisms. Regardless of the type of VC, it does not depend on a single cell but involves multi-cells/organs to form a complex cellular communication network through the vascular microenvironment to participate in the occurrence and development of VC. Therefore, focusing only on the direct effect of pathological factors on vascular smooth muscle cells (VSMCs) tends to overlook the combined effect of other cells and VSMCs, including VSMCs-VSMCs, ECs-VMSCs, Macrophages-VSMCs, etc. Extracellular vesicles (EVs) are a collective term for tiny vesicles with a membrane structure that are actively secreted by cells, and almost all cells secrete EVs. EVs docked on the surface of receptor cells can directly mediate signal transduction or transfer their contents into the cell to elicit a functional response from the receptor cells. They have been proven to participate in the VC process and have also shown attractive therapeutic prospects. Based on the advantages of EVs and the ability to be detected in body fluids, they may become a novel therapeutic agent, drug delivery vehicle, diagnostic and prognostic biomarker, and potential therapeutic target in the future. This review focuses on the new insight into VC molecular mechanisms from the perspective of crosstalk, summarizes how multi-cells/organs interactions communicate via EVs to regulate VC and the emerging potential of EVs as therapeutic methods in VC. We also summarize preclinical experiments on crosstalk-based and the current state of clinical studies on VC-related measures.

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来源期刊
CiteScore
6.30
自引率
0.00%
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0
审稿时长
10 weeks
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