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本文引用的文献

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Macromolecular Crowding Modulates Actomyosin Kinetics.大分子拥挤效应调节肌动球蛋白动力学。
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Erratum to: Identification of functional differences between recombinant human α and β cardiac myosin motors.《重组人α和β心肌肌球蛋白马达功能差异的鉴定》勘误
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Identification of functional differences between recombinant human α and β cardiac myosin motors.鉴定重组人心肌球蛋白 α 和 β 亚基马达的功能差异。
Cell Mol Life Sci. 2012 Jul;69(13):2261-77. doi: 10.1007/s00018-012-0927-3. Epub 2012 Feb 16.
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Kinetic and equilibrium analysis of the myosin ATPase.肌球蛋白ATP酶的动力学与平衡分析
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Experimental investigation of the seesaw mechanism of the relay region that moves the myosin lever arm.移动肌球蛋白杠杆臂的中继区域跷跷板机制的实验研究。
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A point mutation in the SH1 helix alters elasticity and thermal stability of myosin II.SH1螺旋中的一个点突变改变了肌球蛋白II的弹性和热稳定性。
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The molecular mechanism of muscle contraction.肌肉收缩的分子机制。
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Crystal structure of scallop Myosin s1 in the pre-power stroke state to 2.6 a resolution: flexibility and function in the head.扇贝肌球蛋白s1在动力冲程前状态下分辨率为2.6埃的晶体结构:头部的灵活性与功能
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Conformation and dynamics of the SH1-SH2 helix in scallop myosin.扇贝肌球蛋白中SH1-SH2螺旋的构象与动力学
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Requirement of domain-domain interaction for conformational change and functional ATP hydrolysis in myosin.肌球蛋白中构象变化和功能性ATP水解对结构域-结构域相互作用的需求。
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人肌球蛋白致动力区的静电相互作用调节肌动球蛋白中 ADP 的解离。

Electrostatic interactions in the force-generating region of the human cardiac myosin modulate ADP dissociation from actomyosin.

机构信息

Department of Physics and Optical Science, University of North Carolina Charlotte, Charlotte, NC, 28223, USA; Department of Biological Science, University of North Carolina Charlotte, Charlotte, NC, 28223, USA.

Department of Physics and Optical Science, University of North Carolina Charlotte, Charlotte, NC, 28223, USA.

出版信息

Biochem Biophys Res Commun. 2019 Feb 19;509(4):978-982. doi: 10.1016/j.bbrc.2019.01.045. Epub 2019 Jan 14.

DOI:10.1016/j.bbrc.2019.01.045
PMID:30654937
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6348005/
Abstract

Human cardiac myosin has two isoforms, alpha and beta, sharing significant sequence similarity, but different in kinetics: ADP release from actomyosin is an order of magnitude faster in the alpha myosin isoform. Apparently, small differences in the sequence are responsible for distinct local inter-residue interactions within alpha and beta isoforms, leading to such a dramatic difference in the rate of ADP release. Our analysis of structural kinetics of alpha and beta isoforms using molecular dynamics simulations revealed distinct dynamics of SH1:SH2 helix within the force-generation region of myosin head. The simulations showed that the residue R694 of the helix forms two permanent salt bridges in the beta isoform, which are not present in the alpha isoform. We hypothesized that the isoform-specific electrostatic interactions play a role in the difference of kinetic properties of myosin isoforms. We prepared R694N mutant in the beta isoform background to destabilize electrostatic interactions in the force-generating region of the myosin head. Our experimental data confirm faster ADP release from R694N actomyosin mutant, but is not as dramatic as the difference of kinetics of ADP release in the alpha and beta isoforms.

摘要

人类肌球蛋白有两种同工型,α 和 β,它们具有显著的序列相似性,但动力学特性不同:α 肌球蛋白同工型中肌球蛋白与肌动蛋白结合的 ADP 释放速度要快一个数量级。显然,序列中的微小差异导致了 α 和 β 同工型中局部残基间相互作用的不同,从而导致 ADP 释放速度的显著差异。我们使用分子动力学模拟对 α 和 β 同工型的结构动力学进行了分析,揭示了肌球蛋白头部力产生区域中 SH1:SH2 螺旋的不同动力学。模拟表明,β 同工型中螺旋的残基 R694 形成了两个永久性盐桥,而在 α 同工型中则不存在。我们假设同工型特异性静电相互作用在肌球蛋白同工型动力学特性的差异中起作用。我们在 β 同工型背景下制备了 R694N 突变体,以破坏肌球蛋白头部力产生区域的静电相互作用。我们的实验数据证实了 R694N 肌球蛋白突变体中 ADP 的释放速度更快,但与 α 和 β 同工型中 ADP 释放动力学的差异并不明显。