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通过半胱氨酸诱变揭示的钠通道孔中P段的拓扑结构。

Topology of the P segments in the sodium channel pore revealed by cysteine mutagenesis.

作者信息

Yamagishi T, Janecki M, Marban E, Tomaselli G F

机构信息

Department of Medicine, Johns Hopkins University School of Medicine, Baltimore, Maryland 21205, USA.

出版信息

Biophys J. 1997 Jul;73(1):195-204. doi: 10.1016/S0006-3495(97)78060-3.

Abstract

The P segments of the voltage-dependent Na+ channel line the outer mouth and selectivity filter of the pore. The residues that form the cytoplasmic mouth of the pore of the channel have not been identified. To study the structure of the inner pore mouth, the presumed selectivity filter residues (D400, E755, K1237, and A1529), and three amino acids just amino-terminal to each of these residues in the rat skeletal muscle Na+ channel, were mutated to cysteine and expressed in tsA 201 cells. These amino acids are predicted (by analogy to K+ channels) to be on the cytoplasmic side of the putative selectivity filter residues. Inward and outward Na+ currents were measured with the whole-cell configuration of the patch-clamp technique. Cysteinyl side-chain accessibility was gauged by sensitivity to Cd2+ block and by reactivity with methanethiosulfonate (MTS) reagents applied to both the inside and the outside of the cell. Outward currents through the wild-type and all of the mutant channels were unaffected by internal Cd2+ (100 microM). Similarly, 1 mM methanethiosulfonate ethylammonium (MTSEA) applied to the inside of the membrane did not affect wild-type or mutant outward currents. However, two mutants amino-terminal to the selectivity position in domain III (F1236C and T1235C) and one in domain IV (S1528C) were blocked with high affinity by external Cd2+. The Na+ current through F1236C and S1528C channels was inhibited by MTSEA applied to the outside of the cell. The accessibility of these mutants to externally applied cysteinyl ligands indicates that the side chains of the mutated residues face outward rather than inward. The K+ channel model of the P segments as protein loops that span the selectivity region is not applicable to the Na+ channel.

摘要

电压依赖性钠离子通道的P段构成了孔道的外口和选择性过滤器。构成通道孔道胞质口的残基尚未确定。为了研究孔道内口的结构,将大鼠骨骼肌钠离子通道中假定的选择性过滤器残基(D400、E755、K1237和A1529)以及这些残基每个残基氨基端的三个氨基酸突变为半胱氨酸,并在tsA 201细胞中表达。通过与钾离子通道类比预测,这些氨基酸位于假定的选择性过滤器残基的胞质侧。采用膜片钳技术的全细胞模式测量内向和外向钠离子电流。通过对镉离子阻断的敏感性以及与应用于细胞内、外的甲硫基磺酸盐(MTS)试剂的反应性来衡量半胱氨酸侧链的可及性。野生型和所有突变通道的外向电流不受细胞内镉离子(100微摩尔)的影响。同样,应用于膜内侧的1毫摩尔甲硫基磺酸盐乙铵(MTSEA)不影响野生型或突变型外向电流。然而,结构域III中选择性位置氨基端的两个突变体(F1236C和T1235C)以及结构域IV中的一个突变体(S1528C)被细胞外镉离子高亲和力阻断。通过F1236C和S1528C通道的钠离子电流被应用于细胞外侧的MTSEA抑制。这些突变体对细胞外应用的半胱氨酸配体的可及性表明,突变残基的侧链面向外侧而非内侧。P段作为跨越选择性区域的蛋白质环的钾离子通道模型不适用于钠离子通道。

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