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Cardiomyopathy Mutations Reveal Variable Region of Myosin Converter as Major Element of Cross-Bridge Compliance

机译:心肌病突变揭示肌球蛋白转化子的可变区是跨桥顺应性的主要因素

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摘要

The ability of myosin to generate motile forces is based on elastic distortion of a structural element of the actomyosin complex (cross-bridge) that allows strain to develop before filament sliding. Addressing the question, which part of the actomyosin complex experiences main elastic distortion, we suggested previously that the converter domain might be the most compliant region of the myosin head domain. Here we test this proposal by studying functional effects of naturally occurring missense mutations in the β-myosin heavy chain, 723Arg → Gly (R723G) and 736Ile → Thr (I736T), in comparison to 719Arg → Trp (R719W). All three mutations are associated with hypertrophic cardiomyopathy and are located in the converter region of the myosin head domain. We determined several mechanical parameters of single skinned slow fibers isolated from Musculus soleus biopsies of hypertrophic cardiomyopathy patients and healthy controls. Major findings of this study for mutation R723G were i), a >40% increase in fiber stiffness in rigor with a 2.9-fold increase in stiffness per myosin head (Srigor R723G = 0.84 pN/nm Srigor WT = 0.29 pN/nm); and ii), a significant increase in force per head (F10°C, 1.99 pN vs. 1.49 pN = 1.3-fold increase; F20°C, 2.56 pN vs. 1.92 pN = 1.3-fold increase) as well as stiffness per head during isometric steady-state contraction (Sactive10°C, 0.52 pN/nm vs. 0.28 pN/nm = 1.9-fold increase). Similar changes were found for mutation R719W (2.6-fold increase in Srigor; 1.8-fold increase in F10°C, 1.6-fold in F20°C; twofold increase in Sactive10°C). Changes in active cross-bridge cycling kinetics could not account for the increase in force and active stiffness. For the above estimates the previously determined fraction of mutated myosin in the biopsies was taken into account. Data for wild-type myosin of slow soleus muscle fibers support previous findings that for the slow myosin isoform S and F are significantly lower than for fast myosin e.g., of rabbit psoas muscle. The data indicate that two mutations, R723G and R719W, are associated with an increase in resistance to elastic distortion of the individual mutated myosin heads whereas mutation I736T has essentially no effect. The data strongly support the notion that major elastic distortion occurs within the converter itself. Apparently, the compliance depends on specific residues, e.g., R719 and R723, presumably located at strategic positions near the long α-helix of the light chain binding domain. Because amino acids 719 and 723 are nonconserved residues, cross-bridge stiffness may well be specifically tuned for different myosins.
机译:肌球蛋白产生运动力的能力是基于肌动球蛋白复合物(跨桥)的结构元件的弹性变形,其允许应变在长丝滑动之前发展。针对肌动球蛋白复合物的哪一部分经历主要的弹性变形这一问题,我们之前曾提出,转化子域可能是肌球蛋白头域的最顺应性区域。在这里,我们通过研究与719Arg→Trp(R719W)相比,β-肌球蛋白重链723Arg→Gly(R723G)和736Ile→Thr(I736T)中自然发生的错义突变的功能效应来测试该建议。所有这三个突变都与肥厚型心肌病有关,并且位于肌球蛋白头部结构域的转化子区域。我们确定了从肥厚型心肌病患者的比目鱼活检组织和健康对照中分离的单皮慢纤维的几个机械参数。这项针对R723G突变的研究的主要发现是i),严格的纤维硬度增加> 40%,每个肌球蛋白头的硬度增加2.9倍(S * 严格的R723G = 0.84 pN / nm S 严格WT = 0.29 pN / nm); ii)人均受力显着增加(F * 10°C,1.99 pN vs. 1.49 pN = 1.3倍; F * 20°C, 2.56 pN对1.92 pN =增加1.3倍)以及等距稳态收缩期间每头的刚度(S active10°C,0.52 pN / nm对0.28 pN / nm = 1.9 -增加)。对于突变R719W也发现了类似的变化(S 严格度增加了2.6倍; F 10°C增加了1.8倍,F 增加了1.6倍∗ 20°C; S active10°C增加两倍。主动跨桥循环动力学的变化不能解释力和主动刚度的增加。对于以上估计,考虑活检中先前确定的突变的肌球蛋白分数。比目鱼肌纤维慢的野生型肌球蛋白的数据支持以前的发现,即慢肌球蛋白同工型S 和F 显着低于快肌球蛋白,例如兔腰肌。数据表明,两个突变R723G和R719W与单个突变的肌球蛋白头的弹性变形抵抗力的增强相关,而突变I736T基本没有作用。数据有力地支持了转换器本身内部会发生重大弹性变形的观点。显然,顺应性取决于特定的残基,例如R719和R723,大概位于轻链结合域的长α-螺旋附近的关键位置。因为氨基酸719和723是非保守残基,所以可以针对不同的肌球蛋白专门调节跨桥刚度。

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