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肌球蛋白轻链结合蛋白 C 对心肌肌球蛋白头部 ATPase 活性的调节作用

Impact of A134 and E218 Amino Acid Residues of Tropomyosin on Its Flexibility and Function.

机构信息

A.N. Bach Institute of Biochemistry, Research Center of Biotechnology, Russian Academy of Sciences, 119071 Moscow, Russia.

Department of Biochemistry, School of Biology, Moscow State University, 119234 Moscow, Russia.

出版信息

Int J Mol Sci. 2020 Nov 18;21(22):8720. doi: 10.3390/ijms21228720.

Abstract

Tropomyosin (Tpm) is one of the major actin-binding proteins that play a crucial role in the regulation of muscle contraction. The flexibility of the Tpm molecule is believed to be vital for its functioning, although its role and significance are under discussion. We choose two sites of the Tpm molecule that presumably have high flexibility and stabilized them with the A134L or E218L substitutions. Applying differential scanning calorimetry (DSC), molecular dynamics (MD), co-sedimentation, trypsin digestion, and in vitro motility assay, we characterized the properties of Tpm molecules with these substitutions. The A134L mutation prevented proteolysis of Tpm molecule by trypsin, and both substitutions increased the thermal stability of Tpm and its bending stiffness estimated from MD simulation. None of these mutations affected the primary binding of Tpm to F-actin; still, both of them increased the thermal stability of the actin-Tpm complex and maximal sliding velocity of regulated thin filaments in vitro at a saturating Ca concentration. However, the mutations differently affected the Ca sensitivity of the sliding velocity and pulling force produced by myosin heads. The data suggest that both regions of instability are essential for correct regulation and fine-tuning of Ca-dependent interaction of myosin heads with F-actin.

摘要

原肌球蛋白(Tropomyosin,Tpm)是一种主要的肌动蛋白结合蛋白,在肌肉收缩的调节中起着至关重要的作用。Tpm 分子的柔韧性被认为对其功能至关重要,尽管其作用和意义仍在讨论中。我们选择了 Tpm 分子中两个可能具有高柔韧性的位点,并通过 A134L 或 E218L 取代来稳定它们。应用差示扫描量热法(Differential Scanning Calorimetry,DSC)、分子动力学(Molecular Dynamics,MD)、共沉淀、胰蛋白酶消化和体外运动测定,我们对具有这些取代的 Tpm 分子的特性进行了表征。A134L 突变阻止了胰蛋白酶对 Tpm 分子的蛋白水解,这两种取代都增加了 Tpm 的热稳定性和从 MD 模拟估计的弯曲刚度。这些突变都没有影响 Tpm 与 F-肌动蛋白的主要结合;尽管如此,它们都增加了肌球蛋白头部与 F-肌动蛋白复合物的热稳定性和在饱和 Ca 浓度下体外调节的薄丝的最大滑动速度。然而,这些突变对滑动速度和肌球蛋白头部产生的拉力的 Ca 敏感性有不同的影响。数据表明,不稳定性的两个区域对于肌球蛋白头部与 F-肌动蛋白的 Ca 依赖性相互作用的正确调节和微调都是必不可少的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5368/7698929/94623d6be2d0/ijms-21-08720-g001.jpg

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