Geeves M A, Fedorov R, Manstein D J
Department of Biosciences, University of Kent, Canterbury, Kent CT2 7NJ, United Kingdom.
Cell Mol Life Sci. 2005 Jul;62(13):1462-77. doi: 10.1007/s00018-005-5015-5.
Sophisticated molecular genetic, biochemical and biophysical studies have been used to probe the molecular mechanism of actomyosin-based motility. Recent solution measurements, high-resolution structures of recombinant myosin motor domains, and lower resolution structures of the complex formed by filamentous actin and the myosin motor domain provide detailed insights into the mechanism of chemomechanical coupling in the actomyosin system. They show how small conformational changes are amplified by a lever-arm mechanism to a working stroke of several nanometres, explain the mechanism that governs the directionality of actin-based movement, and reveal a communication pathway between the nucleotide binding pocket and the actin-binding region that explains the reciprocal relationship between actin and nucleotide affinity. Here we focus on the interacting elements in the actomyosin system and the communication pathways in the myosin motor domain that respond to actin binding.
复杂的分子遗传学、生物化学和生物物理研究已被用于探究基于肌动球蛋白的运动分子机制。最近的溶液测量、重组肌球蛋白运动结构域的高分辨率结构以及丝状肌动蛋白与肌球蛋白运动结构域形成的复合物的低分辨率结构,为肌动球蛋白系统中的化学机械偶联机制提供了详细见解。它们展示了小的构象变化如何通过杠杆臂机制放大到几纳米的工作冲程,解释了控制基于肌动蛋白运动方向性的机制,并揭示了核苷酸结合口袋与肌动蛋白结合区域之间的通信途径,该途径解释了肌动蛋白与核苷酸亲和力之间的相互关系。在这里,我们重点关注肌动球蛋白系统中的相互作用元件以及肌球蛋白运动结构域中响应肌动蛋白结合的通信途径。