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心肌肌钙蛋白C分子动力学的变化解释了钙增敏突变的作用。

Changes in the dynamics of the cardiac troponin C molecule explain the effects of Ca-sensitizing mutations.

作者信息

Stevens Charles M, Rayani Kaveh, Singh Gurpreet, Lotfalisalmasi Bairam, Tieleman D Peter, Tibbits Glen F

机构信息

Cardiovascular Sciences, British Columbia Children's Hospital Research Institute, Vancouver, British Columbia V5Z 4H4, Canada; Departments of Biomedical Physiology and Kinesiology, Simon Fraser University, Burnaby, British Columbia V5A 1S6, Canada.

Departments of Biomedical Physiology and Kinesiology, Simon Fraser University, Burnaby, British Columbia V5A 1S6, Canada.

出版信息

J Biol Chem. 2017 Jul 14;292(28):11915-11926. doi: 10.1074/jbc.M116.770776. Epub 2017 May 22.

Abstract

Cardiac troponin C (cTnC) is the regulatory protein that initiates cardiac contraction in response to Ca TnC binding Ca initiates a cascade of protein-protein interactions that begins with the opening of the N-terminal domain of cTnC, followed by cTnC binding the troponin I switch peptide (TnI). We have evaluated, through isothermal titration calorimetry and molecular-dynamics simulation, the effect of several clinically relevant mutations (A8V, L29Q, A31S, L48Q, Q50R, and C84Y) on the Ca affinity, structural dynamics, and calculated interaction strengths between cTnC and each of Ca and TnI Surprisingly the Ca affinity measured by isothermal titration calorimetry was only significantly affected by half of these mutations including L48Q, which had a 10-fold higher affinity than WT, and the Q50R and C84Y mutants, each of which had affinities 3-fold higher than wild type. This suggests that Ca affinity of the N-terminal domain of cTnC in isolation is insufficient to explain the pathogenicity of these mutations. Molecular-dynamics simulation was used to evaluate the effects of these mutations on Ca binding, structural dynamics, and TnI interaction independently. Many of the mutations had a pronounced effect on the balance between the open and closed conformations of the TnC molecule, which provides an indirect mechanism for their pathogenic properties. Our data demonstrate that the structural dynamics of the cTnC molecule are key in determining myofilament Ca sensitivity. Our data further suggest that modulation of the structural dynamics is the underlying molecular mechanism for many disease mutations that are far from the regulatory Ca-binding site of cTnC.

摘要

心肌肌钙蛋白C(cTnC)是一种调节蛋白,可响应钙离子(Ca)结合而启动心脏收缩。肌钙蛋白C(TnC)与Ca结合后会引发一系列蛋白质-蛋白质相互作用,首先是cTnC的N端结构域打开,随后cTnC与肌钙蛋白I转换肽(TnI)结合。我们通过等温滴定量热法和分子动力学模拟,评估了几种临床相关突变(A8V、L29Q、A31S、L48Q、Q50R和C84Y)对Ca亲和力、结构动力学以及cTnC与Ca和TnI之间计算出的相互作用强度的影响。令人惊讶的是,通过等温滴定量热法测得的Ca亲和力仅受到其中一半突变的显著影响,包括L48Q,其亲和力比野生型高10倍,以及Q50R和C84Y突变体,它们的亲和力均比野生型高3倍。这表明孤立的cTnC N端结构域的Ca亲和力不足以解释这些突变的致病性。分子动力学模拟被用于独立评估这些突变对Ca结合、结构动力学和TnI相互作用的影响。许多突变对TnC分子的开放和关闭构象之间的平衡有显著影响,这为它们的致病特性提供了一种间接机制。我们的数据表明,cTnC分子的结构动力学是决定肌丝Ca敏感性的关键。我们的数据进一步表明,结构动力学的调节是许多远离cTnC调节性Ca结合位点的疾病突变的潜在分子机制。

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