作为 CFTR 通道孔探针的三价阴离子。

IF 1.3 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY General physiology and biophysics Pub Date : 2024-05-01 DOI:10.4149/gpb_2024007
Paul Linsdell
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引用次数: 0

摘要

囊性纤维化跨膜传导调节器(CFTR)Cl- 通道利用带正电荷的氨基酸侧链形成阴离子渗透的结合位点。已使用多种阴离子探针对这些结合位点进行了实验研究。改变孔内正负电荷分布的突变对一价阴离子和二价阴离子的结合有不同的影响。本研究利用野生型和孔突变型 CFTR 的膜片钳记录来研究小的三价阴离子(Co(NO2)63-、Co(CN)3- 和 IrCl63-)作为阴离子结合位点的潜在探针。当这些阴离子作用于膜的细胞内侧时,会对野生型 CFTR 的 Cl- 通透产生微弱的阻滞作用(Kd ≥ 700 μM)。增加孔内正电荷密度的突变(E92Q、I344K、S1141K)使这些阴离子的结合亲和力增加了 80-280 倍,也大大增加了阻滞的电压依赖性,这与孔内固定电荷影响单价:多价阴离子选择性是一致的。然而,Co(NO2)63 对通道的高亲和性阻断显然没有改变通道门控,而这正是二价 Pt(NO2)42- 离子在通道内高亲和性结合的特征。这项工作增加了用于研究 Cl- 通道孔内阴离子结合位点的探针种类。
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Trivalent anions as probes of the CFTR channel pore.

The cystic fibrosis transmembrane conductance regulator (CFTR) Cl- channel uses positively charged amino-acid side-chains to form binding sites for permeating anions. These binding sites have been investigated experimentally using a number of anionic probes. Mutations that alter the distribution of positive and negative charges within the pore have differential effects on the binding of monovalent versus divalent anions. This study uses patch clamp recording from wild-type and pore-mutant forms of CFTR to investigate small trivalent anions (Co(NO2)63-, Co(CN)3- and IrCl63-) as potential probes of anion binding sites. These anions caused weak block of Cl- permeation in wild-type CFTR (Kd ≥ 700 μM) when applied to the intracellular side of the membrane. Mutations that increase the density of positive charge within the pore (E92Q, I344K, S1141K) increased the binding affinity of these anions 80-280-fold, and also greatly increased the voltage-dependence of block, consistent with fixed charges in the pore affecting monovalent : multivalent anion selectivity. However, high-affinity pore block by Co(NO2)63-apparently did not alter channel gating, a hallmark of high-affinity binding of divalent Pt(NO2)42- ions within the pore. This work increases the arsenal of probes available to investigate anion binding sites within Cl- channel pores.

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来源期刊
General physiology and biophysics
General physiology and biophysics 生物-生化与分子生物学
CiteScore
2.70
自引率
0.00%
发文量
42
审稿时长
6-12 weeks
期刊介绍: General Physiology and Biophysics is devoted to the publication of original research papers concerned with general physiology, biophysics and biochemistry at the cellular and molecular level and is published quarterly by the Institute of Molecular Physiology and Genetics, Slovak Academy of Sciences.
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