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钾通道Kv1.5失活恢复过程中的高钠(Na⁺)传导状态。

A high-Na(+) conduction state during recovery from inactivation in the K(+) channel Kv1.5.

作者信息

Wang Z, Hesketh J C, Fedida D

机构信息

Department of Physiology, University of British Columbia, Vancouver, British Columbia V6T 1Z3, Canada.

出版信息

Biophys J. 2000 Nov;79(5):2416-33. doi: 10.1016/S0006-3495(00)76486-1.

Abstract

Na(+) conductance through cloned K(+) channels has previously allowed characterization of inactivation and K(+) binding within the pore, and here we have used Na(+) permeation to study recovery from C-type inactivation in human Kv1.5 channels. Replacing K(+) in the solutions with Na(+) allows complete Kv1.5 inactivation and alters the recovery. The inactivated state is nonconducting for K(+) but has a Na(+) conductance of 13% of the open state. During recovery, inactivated channels progress to a higher Na(+) conductance state (R) in a voltage-dependent manner before deactivating to closed-inactivated states. Channels finally recover from inactivation in the closed configuration. In the R state channels can be reactivated and exhibit supernormal Na(+) currents with a slow biexponential inactivation. Results suggest two pathways for entry to the inactivated state and a pore conformation, perhaps with a higher Na(+) affinity than the open state. The rate of recovery from inactivation is modulated by Na(+)(o) such that 135 mM Na(+)(o) promotes the recovery to normal closed, rather than closed-inactivated states. A kinetic model of recovery that assumes a highly Na(+)-permeable state and deactivation to closed-inactivated and normal closed states at negative voltages can account for the results. Thus these data offer insight into how Kv1. 5 channels recover their resting conformation after inactivation and how ionic conditions can modify recovery rates and pathways.

摘要

通过克隆的钾通道的钠电导先前已用于表征孔内的失活和钾结合,在此我们利用钠通透来研究人Kv1.5通道中C型失活后的恢复情况。用钠替代溶液中的钾可使Kv1.5完全失活并改变恢复情况。失活状态对钾不导电,但具有开放状态13%的钠电导。在恢复过程中,失活的通道在去激活为关闭失活状态之前,以电压依赖的方式转变为更高钠电导状态(R)。通道最终在关闭构型中从失活状态恢复。在R状态下,通道可被重新激活,并表现出具有缓慢双指数失活的超常钠电流。结果表明存在两条进入失活状态的途径和一种孔构象,其对钠的亲和力可能高于开放状态。失活恢复速率受细胞外钠(Na⁺(o))调节,使得135 mM的Na⁺(o)促进恢复到正常关闭状态,而非关闭失活状态。一个假设存在高钠通透状态并在负电压下去激活为关闭失活和正常关闭状态的恢复动力学模型可以解释这些结果。因此,这些数据为Kv1.5通道失活后如何恢复其静息构象以及离子条件如何改变恢复速率和途径提供了见解。

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