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The Work of Titin Protein Folding as a Major Driver in Muscle Contraction

机译:折叠肌肉收缩中的主要驱动器的三蛋白蛋白折叠的工作

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Single-molecule atomic force microscopy and magnetic tweezers experiments have demonstrated that titin immunoglobulin (Ig) domains are capable of folding against a pulling force, generating mechanical work that exceeds that produced by a myosin motor. We hypothesize that upon muscle activation, formation of actomyosin cross bridges reduces the force on titin, causing entropic recoil of the titin polymer and triggering the folding of the titin Ig domains. In the physiological force range of 4-15 pN under which titin operates in muscle, the folding contraction of a single Ig domain can generate 200% of the work of entropic recoil and occurs at forces that exceed the maximum stalling force of single myosin motors. Thus, titin operates like a mechanical battery, storing elastic energy efficiently by unfolding Ig domains and delivering the charge back by folding when the motors are activated during a contraction. We advance the hypothesis that titin folding and myosin activation act as inextricable partners during muscle contraction.
机译:单分子原子力显微镜和磁性镊子实验表明,铁蛋白免疫球蛋白(Ig)结构域能够抵抗拉力,产生超过由肌蛋白电动机产生的机械工作。我们假设在肌肉激活后,肌动素交叉桥的形成减少了三肽上的力,导致葡萄酒聚合物的熵反冲并触发三肽IG结构域的折叠。在4-15pn的生理力范围为4-15pn,在肌肉中运行的斜纹蛋白,单个Ig结构域的折叠收缩可以产生200%的熵反冲工作,并且发生在超过单个肌素电动机的最大停滞力的力下发生。因此,刺嘧啶如机械电池一样操作,通过展开IG域,通过展开IG域储存弹性能量并通过折叠在收缩期间激活时折叠输送电荷。我们推进了在肌肉收缩期间肌肉折叠和肌球蛋白激活的假设是肌肉收缩。

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