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肌球蛋白杆卷曲螺旋解折叠转变的耗散力谱探测动力学。

Dynamics of the coiled-coil unfolding transition of myosin rod probed by dissipation force spectrum.

机构信息

School of Materials Science, Japan Advanced Institute of Science and Technology, Ishikawa, Japan.

出版信息

Biophys J. 2010 Jul 7;99(1):257-62. doi: 10.1016/j.bpj.2010.04.007.

Abstract

The motor protein myosin II plays a crucial role in muscle contraction. The mechanical properties of its coiled-coil region, the myosin rod, are important for effective force transduction during muscle function. Previous studies have investigated the static elastic response of the myosin rod. However, analogous to the study of macroscopic complex fluids, how myosin will respond to physiological time-dependent loads can only be understood from its viscoelastic response. Here, we apply atomic force microscopy using a magnetically driven oscillating cantilever to measure the dissipative properties of single myosin rods that provide unique dynamical information about the coiled-coil structure as a function of force. We find that the friction constant of the single myosin rod has a highly nontrivial variation with force; in particular, the single-molecule friction constant is reduced dramatically and increases again as it passes through the coiled-uncoiled transition. This is a direct indication of a large free-energy barrier to uncoiling, which may be related to a fine-tuned dynamic mechanosignaling response to large and unexpected physiological loads. Further, from the critical force at which the minimum in friction occurs we determine the asymmetry of the bistable landscape that controls uncoiling of the coiled coil. This work highlights the sensitivity of the dissipative signal in force unfolding to dynamic molecular structure that is hidden to the elastic signal.

摘要

肌球蛋白 II 是一种运动蛋白,在肌肉收缩中起着至关重要的作用。其卷曲螺旋区(肌球蛋白杆)的机械性能对于肌肉功能期间的有效力传递很重要。先前的研究已经研究了肌球蛋白杆的静态弹性响应。然而,类似于宏观复杂流体的研究,肌球蛋白对生理时变载荷的响应只能从其粘弹性响应来理解。在这里,我们使用磁驱动振动悬臂原子力显微镜来测量单个肌球蛋白杆的耗散特性,这些特性提供了关于卷曲螺旋结构的独特动态信息,作为力的函数。我们发现,单个肌球蛋白杆的摩擦常数随力具有非常复杂的变化;特别是,当它通过卷曲-解卷过渡时,单分子摩擦常数会急剧降低,然后再次增加。这直接表明解卷的自由能势垒很大,这可能与对大的和意外的生理载荷的精细动态机械信号响应有关。此外,从摩擦最小值出现的临界力,我们确定了控制卷曲螺旋解卷的双稳态景观的不对称性。这项工作突出了耗散信号在力展开中对隐藏于弹性信号的动态分子结构的敏感性。

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