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Alternative S2 hinge regions of the myosin rod differentially affect muscle function myofibril dimensions and myosin tail length

机译:肌球蛋白棒的其他S2铰链区会不同地影响肌肉功能肌原纤维的尺寸和肌球蛋白尾巴的长度

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摘要

Muscle myosin heavy chain (MHC) rod domains intertwine to form alpha-helical coiled-coil dimers; these subsequently multimerize into thick filaments via electrostatic interactions. The subfragment 2/light meromyosin “hinge” region of the MHC rod, located in the C-terminal third of heavy meromyosin, may form a less stable coiled-coil than flanking regions. Partial “melting” of this region has been proposed to result in a helix to random-coil transition. A portion of the Drosophila melanogaster MHC hinge is encoded by mutually exclusive alternative exons 15a and 15b, the use of which correlates with fast (hinge A) or slow (hinge B) muscle physiological properties. To test the functional significance of alternative hinge regions, we constructed transgenic fly lines in which fast muscle isovariant hinge A was switched for slow muscle hinge B in the MHC isoforms of indirect flight and jump muscles. Substitution of the slow muscle hinge B impaired flight ability, increased sarcomere lengths by approximately 13% and resulted in minor disruption to indirect flight muscle sarcomeric structure compared with a transgenic control. With age, residual flight ability decreased rapidly and myofibrils developed peripheral defects. Computational analysis indicates that hinge B has a greater coiled-coil propensity and thus reduced flexibility compared to hinge A. Intriguingly, the MHC rod with hinge B was ~5 nm longer than myosin with hinge A, consistent with the more rigid coiled-coil conformation predicted for hinge B. Our study demonstrates that hinge B cannot functionally substitute for hinge A in fast muscle types, likely as a result of differences in the molecular structure of the rod, subtle changes in myofibril structure and decreased ability to maintain sarcomere structure in indirect flight muscle myofibrils. Thus alternative hinges are important in dictating the distinct functional properties of myosin isoforms and the muscles in which they are expressed.
机译:肌肉肌球蛋白重链(MHC)杆域交织在一起,形成α-螺旋卷曲螺旋二聚体;这些随后通过静电相互作用多聚成粗丝。 MHC杆的亚片段2 /轻肌球蛋白“铰链”区域位于重肌球蛋白的C末端三分之一处,与侧翼区域相比,形成的盘绕线圈稳定性较差。已经提出该区域的部分“熔化”导致螺旋向随机螺旋的过渡。果蝇MHC铰链的一部分由互斥的替代外显子15a和15b编码,它们的使用与快(铰链A)或慢(铰链B)肌肉生理特性相关。为了测试其他铰链区域的功能意义,我们构建了转基因飞行系,其中快速肌肉同变铰链A转换为间接飞行和跳跃肌肉的MHC亚型中的慢速肌肉铰链B。与转基因对照相比,慢肌铰链B的取代削弱了飞行能力,使肌节长度增加了约13%,并导致间接飞行肌肌节结构的轻微破坏。随着年龄的增长,残留的飞行能力迅速下降,肌原纤维发展为外周缺陷。计算分析表明,与铰链A相比,铰链B具有更大的卷曲螺旋倾向,因此柔韧性降低。有趣的是,带有铰链B的MHC棒比带有铰链A的肌球蛋白长约5 nm,这与更刚性的卷曲螺旋构象相符我们的研究表明,在快速肌肉类型中,铰链B不能在功能上替代铰链A,这可能是由于杆的分子结构差异,肌原纤维结构的细微变化以及间接维持肌小节结构的能力降低所致。飞行肌肌原纤维。因此,替代的铰链在决定肌球蛋白同工型和表达它们的肌肉的独特功能特性方面很重要。

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