质谱分析和诱变预测多种半胱氨酸参与骨骼肌ryanodine受体离子通道复合物的氧化还原调节。

Evgeniy V Petrotchenko, Naohiro Yamaguchi, Daniel A Pasek, Christoph H Borchers, Gerhard Meissner
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引用次数: 0

摘要

四聚体骨骼肌ryanodine受体离子通道复合物(RyR1)含有大量的游离半胱氨酸,是氧化还原活性分子的潜在靶标。在这里,我们报道了使用亲脂、硫醇特异性探针单溴锰(MBB)对RyR1中的游离硫醇进行质谱分析。在还原性谷胱甘肽存在的情况下,MBB在5个实验中标记了色氨酸肽中每个RyR1亚基14个半胱氨酸。在色氨酸中检测到每RyR1亚基46个mbb标记的半胱氨酸,频率较低,使每RyR1亚基mbb标记的半胱氨酸总数达到60个。在还原谷胱甘肽和氧化谷胱甘肽存在的情况下,RyR1的荧光检测和质谱结合鉴定出两种氧化还原敏感的半胱氨酸(C1040和C1303)。使用[(3)H]赖氨酸配体结合试验,研究了还原和氧化谷胱甘肽对骨骼肌突变体RyR1s中RyR活性的调节,其中18个半胱氨酸被丝氨酸或丙氨酸取代。与野生型RyR1相比,3个单位点RyR1突变体(C1781S、C2436S和C2606S)和2个含有5和7个取代半胱氨酸的多位点RyR1突变体表现出较低的氧化还原反应。结果表明,多种半胱氨酸决定RyR1的氧化还原状态和活性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mass spectrometric analysis and mutagenesis predict involvement of multiple cysteines in redox regulation of the skeletal muscle ryanodine receptor ion channel complex.

The tetrameric skeletal muscle ryanodine receptor ion channel complex (RyR1) contains a large number of free cysteines that are potential targets for redox-active molecules. Here, we report the mass spectrometric analysis of free thiols in RyR1 using the lipophilic, thiol-specific probe monobromobimane (MBB). In the presence of reduced glutathione, MBB labeled 14 cysteines per RyR1 subunit in tryptic peptides in five of five experiments. Forty-six additional MBB-labeled cysteines per RyR1 subunit were detected with lower frequency in tryptic peptides, bringing the total number of MBB-labeled cysteines to 60 per RyR1 subunit. A combination of fluorescence detection and mass spectrometry of RyR1, labeled in the presence of reduced and oxidized glutathione, identified two redox-sensitive cysteines (C1040 and C1303). Regulation of RyR activity by reduced and oxidized glutathione was investigated in skeletal muscle mutant RyR1s in which 18 cysteines were substituted with serine or alanine, using a [(3)H]ryanodine ligand binding assay. Three single-site RyR1 mutants (C1781S, C2436S, and C2606S) and two multisite mutants with five and seven substituted cysteines exhibited a reduced redox response compared with wild-type RyR1. The results suggest that multiple cysteines determine the redox state and activity of RyR1.

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