压电1
机械转化
机械敏感通道
平衡
细胞生物学
弗兰克-斯塔林心脏定律
心力衰竭
信号转导
转导(生物物理学)
心功能曲线
下调和上调
活性氧
离子通道
医学
生物
内科学
化学
射血分数
生物物理学
冲程容积
生物化学
受体
基因
作者
Fan Jiang,Kunlun Yin,Kun Wu,Mingmin Zhang,Shi‐Qiang Wang,Heping Cheng,Zhou Zhou,Bailong Xiao
标识
DOI:10.1038/s41467-021-21178-4
摘要
Abstract The beating heart possesses the intrinsic ability to adapt cardiac output to changes in mechanical load. The century-old Frank–Starling law and Anrep effect have documented that stretching the heart during diastolic filling increases its contractile force. However, the molecular mechanotransduction mechanism and its impact on cardiac health and disease remain elusive. Here we show that the mechanically activated Piezo1 channel converts mechanical stretch of cardiomyocytes into Ca 2+ and reactive oxygen species (ROS) signaling, which critically determines the mechanical activity of the heart. Either cardiac-specific knockout or overexpression of Piezo1 in mice results in defective Ca 2+ and ROS signaling and the development of cardiomyopathy, demonstrating a homeostatic role of Piezo1. Piezo1 is pathologically upregulated in both mouse and human diseased hearts via an autonomic response of cardiomyocytes. Thus, Piezo1 serves as a key cardiac mechanotransducer for initiating mechano-chemo transduction and consequently maintaining normal heart function, and might represent a novel therapeutic target for treating human heart diseases.
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