缺血性中风的细胞极化:分子机制与进展

Yuanwei Li, Xiaoxiao Xu, Xuan Wu, Jiarui Li, Shiling Chen, Danyang Chen, Gaigai Li, Zhouping Tang
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引用次数: 0

摘要

缺血性中风是一种死亡率和致残率都很高的脑血管疾病。由于炎症和免疫反应在缺血性损伤中起着核心作用,因此必须调节过度的炎症反应,以促进细胞存活并促进损伤部位周围的组织修复。各种类型的细胞都参与了炎症反应,包括小胶质细胞、星形胶质细胞和中性粒细胞。它们或表现出促炎状态,或表现出抗炎状态,这种现象被称为 "细胞极化"。有两种细胞极化治疗策略。第一种是在体外诱导细胞形成神经保护表型,然后再将其自体移植。第二种方法是利用小分子物质直接影响体内细胞。在这篇综述中,我们阐明了缺血性中风背景下三种反应性细胞群(小胶质细胞、星形胶质细胞和中性粒细胞)的极化动态,并全面总结了参与其表型转换的分子机制。通过揭示细胞极化的复杂性,我们希望能为今后的神经炎症研究和缺血性中风的新型治疗策略提供启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cell polarization in ischemic stroke: molecular mechanisms and advances
Ischemic stroke is a cerebrovascular disease associated with high mortality and disability rates. Since the inflammation and immune response play a central role in driving ischemic damage, it becomes essential to modulate excessive inflammatory reactions to promote cell survival and facilitate tissue repair around the injury site. Various cell types are involved in the inflammatory response, including microglia, astrocytes, and neutrophils, each exhibiting distinct phenotypic profiles upon stimulation. They display either proinflammatory or anti-inflammatory states, a phenomenon known as ‘cell polarization’. There are two cell polarization therapy strategies. The first involves inducing cells into a neuroprotective phenotype in vitro, then reintroducing them autologously. The second approach utilizes small molecular substances to directly affect cells in vivo. In this review, we elucidate the polarization dynamics of the three reactive cell populations (microglia, astrocytes, and neutrophils) in the context of ischemic stroke, and provide a comprehensive summary of the molecular mechanisms involved in their phenotypic switching. By unraveling the complexity of cell polarization, we hope to offer insights for future research on neuroinflammation and novel therapeutic strategies for ischemic stroke.
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