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原肌球蛋白的运动。以晶体作隐喻。

Motions of tropomyosin. Crystal as metaphor.

作者信息

Phillips G N, Fillers J P, Cohen C

出版信息

Biophys J. 1980 Oct;32(1):485-502. doi: 10.1016/S0006-3495(80)84985-X.

Abstract

Movements of tropomyosin play an essential role in muscle regulation. This fibrous protein is a two-chain alpha-helical coiled coil that bonds head to tail to form cables wound in the two long grooves of the actin helix. The regulatory switch consists of tropomyosin and a "globular" Ca2+-sensitive protein complex called troponin. The structure of the tropomyosin filaments has now been determined by x-ray crystallography to approximately 15 A resolution. The complete sequence of alpha-tropomyosin is known; by using mercury markers on the cysteine residues the ends of the molecules in the filaments have been identified. Details of the coiled-coil structure have also been visualized by refinement of models against the diffraction data. The average pitch of the coiled coil is approximately 137 A, so that each tropomyosin molecule can make similar contacts with seven actin monomers. The electron density map also indicates that departures from the alpha-helical coiled coil occur in a few localized regions of the molecule, especially at the overlapping ends. Motions of tropomyosin in the crystal lattice are displaced by the character of the Bragg reflections and the strong diffuse scatter. These effects depend markedly on temperature. It appears that the molecular filaments fluctuate freely in a direction perpendicular to their axes. Moreover, the C-terminal half of the molecule "unfolds" to some degree at less than physiological temperatures. Crystallographic results on co-crystals of tropomyosin and a component of troponin (TnT) suggest that this subunit consists of structurally distinct domains, so that the troponin complex is not in fact simply "globular". The interactions of the extended alpha-helical region of TnT may "stiffen" tropomyosin and influence its motions. We picture the tropomyosin/troponin switch in muscle as a restless cable, perpetually making and breaking bonds as it vibrates on the thin filament. These movements of tropomyosin probably depend on two aspects of its design: the regular pattern of coiled-coil linkages with actin; and the aperiodic features that allow flexibility and motion.

摘要

原肌球蛋白的运动在肌肉调节中起着至关重要的作用。这种纤维状蛋白质是一种由两条链组成的α螺旋卷曲螺旋结构,头对头、尾对尾相连形成绳索状,缠绕在肌动蛋白螺旋的两条长沟中。调节开关由原肌球蛋白和一种称为肌钙蛋白的“球状”钙敏感蛋白复合物组成。现已通过X射线晶体学确定了原肌球蛋白丝的结构,分辨率约为15埃。α-原肌球蛋白的完整序列已知;通过在半胱氨酸残基上使用汞标记物,已确定了丝中分子的末端。通过根据衍射数据优化模型,也可视化了卷曲螺旋结构的细节。卷曲螺旋的平均螺距约为137埃,因此每个原肌球蛋白分子可以与七个肌动蛋白单体进行类似的接触。电子密度图还表明,分子的一些局部区域,特别是在重叠末端,偏离了α螺旋卷曲螺旋结构。晶格中原肌球蛋白的运动因布拉格反射的特性和强烈的漫散射而发生位移。这些效应明显取决于温度。看来分子丝在垂直于其轴的方向上自由波动。此外,在低于生理温度时,分子的C端一半会在一定程度上“展开”。原肌球蛋白与肌钙蛋白(TnT)的一个组分的共晶体的晶体学结果表明,该亚基由结构不同的结构域组成,因此肌钙蛋白复合物实际上并非简单的“球状”。TnT延伸的α螺旋区域的相互作用可能会“使”原肌球蛋白“变硬”并影响其运动。我们将肌肉中的原肌球蛋白/肌钙蛋白开关想象成一根不停摆动的绳索,在细肌丝上振动时不断地形成和断裂键。原肌球蛋白的这些运动可能取决于其设计的两个方面:与肌动蛋白的卷曲螺旋连接的规则模式;以及允许灵活性和运动的非周期性特征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/80cf/1327343/d9dc2872df20/biophysj00252-0500-a.jpg

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