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Endothelial responses to shear stress in atherosclerosis: a novel role for developmental genes

机械敏感通道 剪应力 Wnt信号通路 转录组 医学 细胞生物学 剪切(地质) 生物 内科学 基因 基因表达 信号转导 遗传学 古生物学 复合材料 离子通道 受体 材料科学
作者
Céline Souilhol,Jovana Serbanovic‐Canic,Maria Fragiadaki,Tim Chico,Victoria Ridger,Hannah Roddie,Paul C. Evans
出处
期刊:Nature Reviews Cardiology [Nature Portfolio]
卷期号:17 (1): 52-63 被引量:360
标识
DOI:10.1038/s41569-019-0239-5
摘要

Flowing blood generates a frictional force called shear stress that has major effects on vascular function. Branches and bends of arteries are exposed to complex blood flow patterns that exert low or low oscillatory shear stress, a mechanical environment that promotes vascular dysfunction and atherosclerosis. Conversely, physiologically high shear stress is protective. Endothelial cells are critical sensors of shear stress but the mechanisms by which they decode complex shear stress environments to regulate physiological and pathophysiological responses remain incompletely understood. Several laboratories have advanced this field by integrating specialized shear-stress models with systems biology approaches, including transcriptome, methylome and proteome profiling and functional screening platforms, for unbiased identification of novel mechanosensitive signalling pathways in arteries. In this Review, we describe these studies, which reveal that shear stress regulates diverse processes and demonstrate that multiple pathways classically known to be involved in embryonic development, such as BMP–TGFβ, WNT, Notch, HIF1α, TWIST1 and HOX family genes, are regulated by shear stress in arteries in adults. We propose that mechanical activation of these pathways evolved to orchestrate vascular development but also drives atherosclerosis in low shear stress regions of adult arteries. The shear stress generated by flowing blood has major effects on vascular function, with low shear stress promoting vascular dysfunction and atherosclerosis. This Review describes the latest findings on how endothelial cells decode complex shear stress environments to regulate physiological and pathophysiological responses, highlighting the role of pathways involved in embryonic development.
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