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Impaired surface membrane insertion of homo- and heterodimeric human muscle chloride channels carrying amino-terminal myotonia-causing mutations

机译:携带氨基末端肌强直性突变的同二聚体和异二聚体人类肌肉氯化物通道的表面膜插入受损

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摘要

Mutations in the muscle chloride channel gene (CLCN1) cause myotonia congenita, an inherited condition characterized by muscle stiffness upon sudden forceful movement. We here studied the functional consequences of four disease-causing mutations that predict amino acid substitutions Q43R, S70L, Y137D and Q160H. Wild-type (WT) and mutant hClC-1 channels were heterologously expressed as YFP or CFP fusion protein in HEK293T cells and analyzed by whole-cell patch clamp and fluorescence recordings on individual cells. Q43R, Y137D and Q160H, but not S70L reduced macroscopic current amplitudes, but left channel gating and unitary current amplitudes unaffected. We developed a novel assay combining electrophysiological and fluorescence measurements at the single-cell level in order to measure the probability of ion channel surface membrane insertion. With the exception of S70L, all tested mutations significantly reduced the relative number of homodimeric hClC-1 channels in the surface membrane. The strongest effect was seen for Q43R that reduced the surface insertion probability by more than 99% in Q43R homodimeric channels and by 92 ± 3% in heterodimeric WT/Q43R channels compared to homodimeric WT channels. The new method offers a sensitive approach to investigate mutations that were reported to cause channelopathies, but display only minor changes in ion channel function.
机译:肌肉氯化物通道基因(CLCN1)中的突变会导致先天性肌强直,这是一种遗传性疾病,其特征是突然剧烈运动时肌肉僵硬。我们在这里研究了预测氨基酸取代Q43R,S70L,Y137D和Q160H的四种致病突变的功能后果。野生型(WT)和突变的hClC-1通道在HEK293T细胞中异源表达为YFP或CFP融合蛋白,并通过全细胞膜片钳和单个细胞的荧光记录进行分析。 Q43R,Y137D和Q160H降低了宏观电流幅度,但S70L没有降低,但左通道门控和单一电流幅度未受影响。我们开发了一种在单细胞水平上结合电生理和荧光测量的新型测定法,以测量离子通道表面膜插入的可能性。除S70L外,所有测试的突变均显着降低了表面膜中同型二聚体hClC-1通道的相对数量。与同型二聚体WT通道相比,对Q43R观察到了最强的作用,与同型二聚体WT通道相比,其在Q43R同型二聚体通道中的表面插入概率降低了99%以上,在异型二聚体WT / Q43R通道中降低了92%±3%。新方法提供了一种灵敏的方法来调查据报道会引起通道病的突变,但仅显示离子通道功能的微小变化。

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