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An embryonic myosin converter domain influences Drosophila indirect flight muscle stretch activation, power generation and flight

机译:胚胎肌球蛋白转换器域影响果蝇间接飞行肌肉拉伸激活,发电和飞行

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摘要

Stretch activation (SA) is critical to the flight ability of insects powered by asynchronous, indirect flight muscles (IFMs). An essential muscle protein component for SA and power generation is myosin. Which structural domains of myosin are significant for setting SA properties and power generation levels is poorly understood. We made use of the transgenic techniques and unique single muscle myosin heavy chain gene of Drosophila to test the influence of the myosin converter domain on IFM SA and power generation. Replacing the endogenous converter with an embryonic version decreased SA tension and the rate of SA tension generation. The alterations in SA properties and myosin kinetics from the converter exchange caused power generation to drop to 10% of control fiber power when the optimal conditions for control fibers - 1% muscle length (ML) amplitude and 150 Hz oscillation frequency - were applied to fibers expressing the embryonic converter (IFI-EC). Optimizing conditions for IFI-EC fiber power production, by doubling ML amplitude and decreasing oscillation frequency by 60%, improved power output to 60% of optimized control fiber power. IFI-EC flies altered their aerodynamic flight characteristics to better match optimal fiber power generation conditions as wing beat frequency decreased and wing stroke amplitude increased. This enabled flight in spite of the drastic changes to fiber mechanical performance.
机译:拉伸激活(SA)对于由异步,间接飞行肌肉(IFM)驱动的昆虫的飞行能力至关重要。肌球蛋白是SA和发电的必不可少的肌肉蛋白质成分。肌球蛋白的哪些结构域对于设定SA特性和发电水平至关重要。我们利用果蝇的转基因技术和独特的单肌肌球蛋白重链基因来测试肌球蛋白转化域对IFM SA和发电的影响。用胚胎型替代内源转化器降低了SA张力和SA张力产生的速率。当将控制纤维的最佳条件-肌肉长度(ML)振幅和150 Hz振荡频率的最佳条件应用到纤维上时,来自转换器交换的SA特性和肌球蛋白动力学的变化导致发电量下降至控制纤维功率的10%。表达胚胎转化子(IFI-EC)。通过将ML振幅加倍并将振荡频率降低60%,优化IFI-EC光纤功率生产的条件,将功率输出提高到优化控制光纤功率的60%。随着机翼节拍频率的降低和机翼冲程幅度的增加,IFI-EC苍蝇改变了其空气动力学飞行特性,以更好地匹配最佳的纤维发电条件。尽管纤维机械性能发生了巨大变化,但仍可以进行飞行。

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