PIEZO Force Sensors and the Heart.

IF 8.4 2区 生物学 Q1 CELL BIOLOGY
Anna McGrane, Michael Murray, Fiona Bartoli, Marilena Giannoudi, Marcella Conning-Rowland, Leander Stewart, Eylem Levelt, Richard M Cubbon, Erica Dall'Armellina, Kathryn J Griffin, Kate M Herum, Andrew J Smith, David J Beech
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Abstract

The PIEZO1 and PIEZO2 membrane proteins form uniquely structured calcium permeable nonselective cation channels dedicated to mechanical force sensing in eukaryotic cells. In this review of the scientific literature, we address PIEZOs in the heart. PIEZOs enable the formation of the aortic valve, cardiac vasculature, and pericardial drainage. In the established heart, they enable baroreceptor pressure sensing and reflex regulation of the heart rate and influence the heart's size and stiffness through roles in cardiac myocytes and cardiac fibroblasts. Therefore, mechanical force sensing by PIEZOs participates in normal cardiac development and function. There is also interest in PIEZOs in pathophysiology, when the structure and mechanical properties of the heart often change. Studies in rats and mice suggest that experimentally induced cardiac stress and injury cause PIEZO upregulation that is adverse. Similar changes may occur in human heart disease, creating potential for therapeutic benefit through PIEZO modulation. This is a productive, accelerating, and exciting new research topic with importance for our understanding of the heart and its diseases.

压电力传感器与心脏。
PIEZO1和PIEZO2膜蛋白形成独特结构的钙渗透性非选择性阳离子通道,致力于真核细胞的机械力传感。在这篇科学文献综述中,我们讨论了心脏中的压电陶瓷。压电陶瓷能够形成主动脉瓣、心脏血管和心包引流。在已建立的心脏中,它们使压力感受器压力传感和心率反射调节,并通过心肌细胞和心脏成纤维细胞的作用影响心脏的大小和硬度。因此,压电陶瓷的机械力传感参与了正常的心脏发育和功能。在病理生理学中,当心脏的结构和机械特性经常发生变化时,对压电陶瓷也很感兴趣。对大鼠和小鼠的研究表明,实验诱导的心脏应激和损伤会导致PIEZO的上调,这是不利的。类似的变化可能发生在人类心脏疾病中,通过压电调制创造潜在的治疗益处。这是一个富有成效的、加速发展的、令人兴奋的新研究课题,对我们对心脏及其疾病的理解具有重要意义。
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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来源期刊
CiteScore
15.00
自引率
1.40%
发文量
56
审稿时长
3-8 weeks
期刊介绍: Cold Spring Harbor Perspectives in Biology offers a comprehensive platform in the molecular life sciences, featuring reviews that span molecular, cell, and developmental biology, genetics, neuroscience, immunology, cancer biology, and molecular pathology. This online publication provides in-depth insights into various topics, making it a valuable resource for those engaged in diverse aspects of biological research.
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