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钾通道中的侧链电离状态。

Side-chain ionization states in a potassium channel.

作者信息

Ranatunga K M, Shrivastava I H, Smith G R, Sansom M S

机构信息

Biophysics Section, Blackett Laboratory, Imperial College of Science, Technology, and Medicine, London SW7 2BZ, United Kingdom.

出版信息

Biophys J. 2001 Mar;80(3):1210-9. doi: 10.1016/S0006-3495(01)76097-3.

Abstract

KcsA is a bacterial K+ channel that is gated by pH. Continuum dielectric calculations on the crystal structure of the channel protein embedded in a low dielectric slab suggest that side chains E71 and D80 of each subunit, which lie adjacent to the selectivity filter region of the channel, form a proton-sharing pair in which E71 is neutral (protonated) and D80 is negatively charged at pH 7. When K+ ions are introduced into the system at their crystallographic positions the pattern of proton sharing is altered. The largest perturbation is for a K+ ion at site S3, i.e., interacting with the carbonyls of T75 and V76. The presence of multiple K+ ions in the filter increases the probability of E71 being ionized and of D80 remaining neutral (i.e., protonated). The ionization states of the protein side chains influence the potential energy profile experienced by a K+ ion as it is translated along the pore axis. In particular, the ionization state of the E71-D80 proton-sharing pair modulates the shape of the potential profile in the vicinity of the selectivity filter. Such reciprocal effects of ion occupancy on side-chain ionization states, and of side-chain ionization states on ion potential energy profiles will complicate molecular dynamics simulations and related studies designed to calculate ion permeation energetics.

摘要

KcsA是一种受pH值门控的细菌钾离子通道。对嵌入低介电常数平板中的通道蛋白晶体结构进行的连续介质电介质计算表明,每个亚基的侧链E71和D80位于通道的选择性过滤器区域附近,形成一个质子共享对,其中在pH值为7时E71呈中性(质子化),D80带负电荷。当钾离子在其晶体学位置引入系统时,质子共享模式会发生改变。最大的扰动是针对位于S3位点的钾离子,即与T75和V76的羰基相互作用。过滤器中多个钾离子的存在增加了E71被电离和D80保持中性(即质子化)的可能性。蛋白质侧链的电离状态会影响钾离子沿孔轴移动时所经历的势能分布。特别是,E71-D80质子共享对的电离状态会调节选择性过滤器附近势能分布的形状。离子占据对侧链电离状态以及侧链电离状态对离子势能分布的这种相互影响,将使旨在计算离子渗透能量学的分子动力学模拟及相关研究变得复杂。

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