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Differential membrane potential and ion current responses to different types of shear stress in vascular endothelial cells.

机译:血管内皮细胞中不同类型的剪切应力的差分膜电位和离子电流响应。

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Vascular endothelial cells (ECs) distinguish among and respond differently to different types of fluid mechanical shear stress. Elucidating the mechanisms governing this differential responsiveness is the key to understanding why early atherosclerotic lesions localize preferentially in arterial regions exposed to low and/or oscillatory flow. An early and very rapid endothelial response to flow is the activation of flow-sensitive K(+) and Cl(-) channels that respectively hyperpolarize and depolarize the cell membrane and regulate several important endothelial responses to flow. We have used whole cell current- and voltage-clamp techniques to demonstrate that flow-sensitive hyperpolarizing and depolarizing currents respond differently to different types of shear stress in cultured bovine aortic ECs. A steady shear stress level of 10 dyn/cm(2) activated both currents leading to rapid membrane hyperpolarization that was subsequently reversed to depolarization. In contrast, a steady shear stress of 1 dyn/cm(2) only activated the hyperpolarizing current. A purely oscillatory shear stress of 0 +/- 10 dyn/cm(2) with an oscillation frequency of either 1 or 0.2 Hz activated the hyperpolarizing current but only minimally the depolarizing current, whereas a 5-Hz oscillation activated neither current. These results demonstrate for the first time that flow-activated ion currents exhibit different sensitivities to shear stress magnitude and oscillation frequency. We propose that flow-sensitive ion channels constitute components of an integrated mechanosensing system that, through the aggregate effect of ion channel activation on cell membrane potential, enables ECs to distinguish among different types of flow.
机译:血管内皮细胞(EC)在不同类型的流体机械剪切应力之间进行区分并做出不同的响应。阐明控制这种差异反应的机制是理解为何早期动脉粥样硬化病变优先定位于暴露于低流量和/或振荡流量的动脉区域的关键。对血流的早期且非常快速的内皮反应是对血流敏感的K(+)和Cl(-)通道的激活,这些通道分别使细胞膜超极化和去极化,并调节对血流的几种重要的内皮反应。我们已经使用全细胞电流钳位和电压钳位技术来证明,在培养的牛主动脉EC中,液流敏感的超极化和去极化电流对不同类型的剪切应力具有不同的响应。稳定的剪切应力水平为10 dyn / cm(2)激活了这两种电流,导致快速的膜超极化,随后又逆转为去极化。相反,稳定的1 dyn / cm(2)的切应力仅激活超极化电流。 0 +/- 10 dyn / cm(2)的纯振荡剪切应力和1或0.2 Hz的振荡频率会激活超极化电流,但去极化电流最小,而5 Hz的振荡均不会激活电流。这些结果首次证明了流动激活的离子流对剪切应力大小和振荡频率表现出不同的敏感性。我们建议对流量敏感的离子通道构成一个集成的机械传感系统的组件,该系统通过离子通道激活对细胞膜电位的聚集效应,使EC能够区分不同类型的流。

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