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共轭 ω-7,9 反式脂肪酸通过变构调节心肌肌球蛋白力学和动力学。

Allosteric modulation of cardiac myosin mechanics and kinetics by the conjugated omega-7,9 trans-fat rumenic acid.

机构信息

PhysioLab, University of Florence, Florence, 50019, Italy.

Institute for Biophysical Chemistry, OE4350, Medizinische Hochschule Hannover, Hannover, 30625, Germany.

出版信息

J Physiol. 2021 Aug;599(15):3639-3661. doi: 10.1113/JP281563. Epub 2021 Jun 1.

Abstract

KEY POINTS

Direct binding of rumenic acid to the cardiac myosin-2 motor domain increases the release rate for orthophosphate and increases the Ca responsiveness of cardiac muscle at low load. Physiological cellular concentrations of rumenic acid affect the ATP turnover rates of the super-relaxed and disordered relaxed states of β-cardiac myosin, leading to a net increase in myocardial metabolic load. In Ca -activated trabeculae, rumenic acid exerts a direct inhibitory effect on the force-generating mechanism without affecting the number of force-generating motors. In the presence of saturating actin concentrations rumenic acid binds to the β-cardiac myosin-2 motor domain with an EC of 200 nM. Molecular docking studies provide information about the binding site, the mode of binding, and associated allosteric communication pathways. Free rumenic acid may exceed thresholds in cardiomyocytes above which contractile efficiency is reduced and interference with small molecule therapeutics, targeting cardiac myosin, occurs.

ABSTRACT

Based on experiments using purified myosin motor domains, reconstituted actomyosin complexes and rat heart ventricular trabeculae, we demonstrate direct binding of rumenic acid, the cis-delta-9-trans-delta-11 isomer of conjugated linoleic acid, to an allosteric site located in motor domain of mammalian cardiac myosin-2 isoforms. In the case of porcine β-cardiac myosin, the EC for rumenic acid varies from 10.5 μM in the absence of actin to 200 nM in the presence of saturating concentrations of actin. Saturating concentrations of rumenic acid increase the maximum turnover of basal and actin-activated ATPase activity of β-cardiac myosin approximately 2-fold but decrease the force output per motor by 23% during isometric contraction. The increase in ATP turnover is linked to an acceleration of the release of the hydrolysis product orthophosphate. In the presence of 5 μM rumenic acid, the difference in the rate of ATP turnover by the super-relaxed and disordered relaxed states of cardiac myosin increases from 4-fold to 20-fold. The equilibrium between the two functional myosin states is not affected by rumenic acid. Calcium responsiveness is increased under zero-load conditions but unchanged under load. Molecular docking studies provide information about the rumenic acid binding site, the mode of binding, and associated allosteric communication pathways. They show how the isoform-specific replacement of residues in the binding cleft induces a different mode of rumenic acid binding in the case of non-muscle myosin-2C and blocks binding to skeletal muscle and smooth muscle myosin-2 isoforms.

摘要

要点

反式-9-顺式-11-亚油酸(rumenic acid)与肌球蛋白-2 分子马达域的直接结合增加了 orthophosphate 的释放速率,并增加了低负荷下心肌的钙反应性。生理细胞浓度的反式-9-顺式-11-亚油酸影响β-心肌球蛋白超松弛和无序松弛状态的 ATP 周转率,导致心肌代谢负荷的净增加。在钙激活的横管中,反式-9-顺式-11-亚油酸对产生力的机制产生直接抑制作用,而不影响产生力的发动机数量。在饱和肌动蛋白浓度存在的情况下,反式-9-顺式-11-亚油酸与β-心肌球蛋白-2 分子马达域的结合 EC 为 200 nM。分子对接研究提供了关于结合位点、结合方式和相关变构通讯途径的信息。游离反式-9-顺式-11-亚油酸可能超过心肌细胞中的阈值,从而降低收缩效率,并干扰针对心肌球蛋白的小分子治疗药物。

摘要

基于使用纯化的肌球蛋白分子马达域、重组的肌动球蛋白复合物和大鼠心室横管进行的实验,我们证明了反式-9-顺式-11-亚油酸(共轭亚油酸的顺式-δ-9-反式-δ-11 异构体)直接结合到哺乳动物心肌球蛋白-2 同工型分子马达域的变构位点。在猪β-心肌球蛋白的情况下,反式-9-顺式-11-亚油酸的 EC 在没有肌动蛋白的情况下从 10.5 μM 变化到存在饱和浓度肌动蛋白时的 200 nM。饱和浓度的反式-9-顺式-11-亚油酸使β-心肌球蛋白的基础和肌动蛋白激活的 ATPase 活性的最大周转率增加约 2 倍,但使等长收缩时每个发动机的输出力降低 23%。ATP 周转率的增加与水解产物 orthophosphate 的释放加速有关。在 5 μM 反式-9-顺式-11-亚油酸存在下,心肌球蛋白超松弛和无序松弛状态之间的 ATP 周转率差异从 4 倍增加到 20 倍。肌球蛋白两种功能状态之间的平衡不受反式-9-顺式-11-亚油酸的影响。在零负荷条件下,钙反应性增加,但在负荷下不变。分子对接研究提供了关于反式-9-顺式-11-亚油酸结合位点、结合方式和相关变构通讯途径的信息。它们表明,结合腔内同工型特异性取代残基如何导致非肌球蛋白-2C 中反式-9-顺式-11-亚油酸结合方式的不同,并阻止与骨骼肌和平滑肌肌球蛋白-2 同工型的结合。

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