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Structural destabilization of tropomyosin induced by the cardiomyopathy‐linked mutation R21H

机译:心肌病相关突变R21H引起的原肌球蛋白的结构失稳

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摘要

The missense mutation R21H in striated muscle tropomyosin is associated with hypertrophic cardiomyopathy, a genetic cardiac disease and a leading cause of sudden cardiac death in young people. Tropomyosin adopts conformation of a coiled coil which is critical for regulation of muscle contraction. In this study, we investigated the effects of the R21H mutation on the coiled‐coil structure of tropomyosin and its interactions with its binding partners, tropomodulin and leiomodin. Using circular dichroism and isothermal titration calorimetry, we found that the mutation profoundly destabilized the structural integrity of αTM1a1‐28Zip, a chimeric peptide containing the first 28 residues of tropomyosin. The mutated αTM1a1‐28Zip was still able to interact with tropomodulin and leiomodin. However, the mutation resulted in a ∼30‐fold decrease of αTM1a1‐28Zip's binding affinity to leiomodin. We used a crystal structure of αTM1a1‐28Zip that we solved at 1.5 Å resolution to study the mutation's effect in silico by means of molecular dynamics simulation. The simulation data indicated that while the mutation disrupted αTM1a1‐28Zip's coiled‐coil structure, most notably from residue Ala18 to residue His31, it may not affect the N‐terminal end of tropomyosin. The drastic decrease of αTM1a1‐28Zip's affinity to leiomodin caused by the mutation may lead to changes in the dynamics at the pointed end of thin filaments. Therefore, the R21H mutation is likely interfering with the regulation of the normal thin filament length essential for proper muscle contraction.
机译:横纹肌原肌球蛋白的错义突变R21H与肥厚型心肌病,遗传性心脏病和年轻人猝死的主要原因有关。 Tropomyosin采用盘绕线圈的构象,这对调节肌肉收缩至关重要。在这项研究中,我们研究了R21H突变对原肌球蛋白的卷曲螺旋结构及其与它的结合伴侣,原调蛋白和Leiomodin相互作用的影响。使用圆二色性和等温滴定量热法,我们发现该突变极大地破坏了αTM1a1-28Zip的结构完整性,αTM1a1-28Zip是一种包含原肌球蛋白前28个残基的嵌合肽。突变的αTM1a1-28Zip仍然能够与原代调节蛋白和利奥莫丁相互作用。但是,该突变导致αTM1a1-28Zip对Leiomodin的结合亲和力下降了约30倍。我们使用了以1.5Å分辨率解析的αTM1a1-28Zip晶体结构,通过分子动力学模拟研究了突变在计算机中的作用。模拟数据表明,尽管该突变破坏了αTM1a1-28Zip的螺旋线圈结构,最显着的是从残基Ala18到残基His31,但它可能不会影响原肌球蛋白的N末端。由突变引起的αTM1a1–28Zip对Leiomodin亲和力的急剧下降可能导致细丝尖端的动力学变化。因此,R21H突变可能会干扰正常的细丝长度的调节,而正常的细丝长度对于适当的肌肉收缩必不可少。

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