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肌病相关结蛋白突变体的双色光激活定位显微镜检测

Dual color photoactivation localization microscopy of cardiomyopathy-associated desmin mutants.

机构信息

E. & H. Klessmann Institute for Cardiovascular Research & Development, Ruhr-University Bochum, 32545 Bad Oeynhausen, Germany.

出版信息

J Biol Chem. 2012 May 4;287(19):16047-57. doi: 10.1074/jbc.M111.313841. Epub 2012 Mar 8.

Abstract

Mutations in the DES gene coding for the intermediate filament protein desmin may cause skeletal and cardiac myopathies, which are frequently characterized by cytoplasmic aggregates of desmin and associated proteins at the cellular level. By atomic force microscopy, we demonstrated filament formation defects of desmin mutants, associated with arrhythmogenic right ventricular cardiomyopathy. To understand the pathogenesis of this disease, it is essential to analyze desmin filament structures under conditions in which both healthy and mutant desmin are expressed at equimolar levels mimicking an in vivo situation. Here, we applied dual color photoactivation localization microscopy using photoactivatable fluorescent proteins genetically fused to desmin and characterized the heterozygous status in living cells lacking endogenous desmin. In addition, we applied fluorescence resonance energy transfer to unravel short distance structural patterns of desmin mutants in filaments. For the first time, we present consistent high resolution data on the structural effects of five heterozygous desmin mutations on filament formation in vitro and in living cells. Our results may contribute to the molecular understanding of the pathological filament formation defects of heterozygous DES mutations in cardiomyopathies.

摘要

DES 基因突变可能导致中间丝蛋白 desmin 的骨骼肌和心肌疾病,这些疾病通常在细胞水平上表现为 desmin 和相关蛋白的细胞质聚集。通过原子力显微镜,我们证明了与致心律失常性右心室心肌病相关的 desmin 突变体的细丝形成缺陷。为了了解这种疾病的发病机制,分析在体内等摩尔水平表达健康和突变 desmin 的条件下的 desmin 细丝结构是至关重要的。在这里,我们应用双颜色光活化定位显微镜,使用与 desmin 基因融合的光活化荧光蛋白,并在缺乏内源性 desmin 的活细胞中对杂合状态进行了表征。此外,我们应用荧光共振能量转移来揭示细丝中 desmin 突变体的短程结构模式。我们首次提供了关于体外和活细胞中五种杂合 desmin 突变对细丝形成的结构影响的一致高分辨率数据。我们的结果可能有助于对心肌病中杂合 DES 突变导致的病理性细丝形成缺陷的分子理解。

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