微管和机械传感:内皮细胞对机械刺激反应的关键参与者。

IF 6.2 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Danahe Mohammed, Ibrahim Hamid, Benoit Vanhollebeke, Maud Martin
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引用次数: 0

摘要

血管力学微环境以血流、拉伸和基质刚度等动力为特征,这些动力深刻影响内皮细胞(EC)的行为。内皮细胞通过专门的机械感应结构检测这些力,并激活机械转导途径以适应其反应并维持血管稳态。虽然肌动蛋白丝和局灶粘连是这些过程的公认介质,但新出现的证据强调微管在内皮机械转导中起关键作用。微管由α-微管蛋白和β-微管蛋白组成,是一种刚性元件,形成一个动态和可调节的网络,调节细胞极性、迁移和信号传导。它们的特性使它们成为力传感、调节细胞刚度和适应机械约束的重要调节器。在这篇综述中,我们讨论了微管在内皮机械传感中的作用,强调了它们对力感知和细胞适应的贡献。具体来说,我们描述了它们在剪切应力传感、曲率和矩阵刚度检测、压力响应和地形传感方面的参与。此外,我们强调了微管是如何根据机械线索进行动态修饰的,并探讨了翻译后修饰,特别是乙酰化,在调节其机械性能中的作用。这些见解为内皮细胞对机械刺激的反应提供了新的视角,为病理性血管生成提供了潜在的治疗途径,其中微管调节可能起着至关重要的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Microtubules and mechanosensing: key players in endothelial responses to mechanical stimuli.

Microtubules and mechanosensing: key players in endothelial responses to mechanical stimuli.

Microtubules and mechanosensing: key players in endothelial responses to mechanical stimuli.

Microtubules and mechanosensing: key players in endothelial responses to mechanical stimuli.

The vascular mechanical microenvironment is characterized by dynamic forces such as blood flow, stretch, and matrix stiffness, which profoundly influence endothelial cell (EC) behavior. ECs detect these forces through specialized mechanosensing structures and activate mechanotransduction pathways to adapt their responses and maintain vascular homeostasis. While actin filaments and focal adhesions are well-established mediators of these processes, emerging evidence highlights microtubules as critical players in endothelial mechanotransduction. Composed of α- and β-tubulin, microtubules are stiff elements forming a dynamic and adjustable network that regulates cell polarity, migration, and signaling. Their characteristics make them interesting candidates as essential regulators in force sensing, modulating cellular stiffness and adaptation to mechanical constraints. In this Review, we discuss the role of microtubules in endothelial mechanosensing, emphasizing their contribution to force perception and cellular adaptation. Specifically, we describe their involvement in shear stress sensing, curvature and matrix stiffness detection, pressure response, and topographical sensing. Furthermore, we highlight how microtubules are dynamically modified upon mechanical cues and explore the role of post-translational modifications, particularly acetylation, in regulating their mechanical properties. These insights provide a new perspective on endothelial responses to mechanical stimuli, offering potential therapeutic avenues in the context of pathological angiogenesis, where microtubule regulation may play a crucial role.

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来源期刊
Cellular and Molecular Life Sciences
Cellular and Molecular Life Sciences 生物-生化与分子生物学
CiteScore
13.20
自引率
1.20%
发文量
546
审稿时长
1.0 months
期刊介绍: Journal Name: Cellular and Molecular Life Sciences (CMLS) Location: Basel, Switzerland Focus: Multidisciplinary journal Publishes research articles, reviews, multi-author reviews, and visions & reflections articles Coverage: Latest aspects of biological and biomedical research Areas include: Biochemistry and molecular biology Cell biology Molecular and cellular aspects of biomedicine Neuroscience Pharmacology Immunology Additional Features: Welcomes comments on any article published in CMLS Accepts suggestions for topics to be covered
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