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Fluid Shear Stress and Inner Curvature Remodeling of the Embryonic Heart. Choosing the Right Lane!

机译:胚胎心脏的流体剪切应力和内曲率重塑​​。选择正确的车道!

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摘要

Cardiovascular development is directed or modulated by genetic and epigenetic factors. The latter include blood flow-related shear stress and blood pressure-related circumferential strain. This review focuses on shear stress and its effects on endothelial cells lining the inner surfaces of the heart and blood vessels. Flow characteristics of the embryonic blood, like velocity, viscosity and periodicity, are taken into account to describe the responses of endothelial cells to shear stress and the sensors for this friction force. The primary cilium, which is an integral part of the shear sensor, connects to the cytoskeletal microtubules and transmits information about the level and direction of blood flow into the endothelial cell. When the heart remodels from a more or less straight into a c-shaped tube the sharp curvature, in combination with the small vessel dimensions and high relative viscosity, directs the highest shear stress to the inner curvature of this pump. This proves to be an important epigenetic modulator of cardiac morphogenesis because when shear stress is experimentally altered inner curvature remodeling is affected which leads to the development of congenital cardiovascular anomalies. The best of both worlds, mechanics and biology, are used here to describe early cardiogenesis.
机译:遗传和表观遗传因素指导或调节心血管的发展。后者包括与血流有关的切应力和与血压有关的周向应变。这篇综述着重于剪切应力及其对衬在心脏和血管内表面的内皮细胞的影响。考虑了胚胎血液的流动特性,例如速度,粘度和周期性,以描述内皮细胞对剪切应力的响应以及该摩擦力的传感器。作为剪切传感器必不可少的一部分的初级纤毛连接到细胞骨架微管,并传输有关进入内皮细胞的血流水平和方向的信息。当心脏从或多或少笔直地转变为C形管时,尖锐的曲率以及较小的血管尺寸和较高的相对粘度将最高的切应力导向该泵的内曲率。这被证明是心脏形态发生的重要表观遗传调节剂,因为当实验上剪切应力改变时,内部曲率重塑会受到影响,从而导致先天性心血管异常的发展。力学和生物学两全其美,在这里用来描述早期心脏发生。

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