Department of Kinesiology and Physical Education, McGill University, Montreal, Canada.
Department of Kinesiology and Physical Education, McGill University, Montreal, Canada.
Arch Biochem Biophys. 2019 Jan;661:168-177. doi: 10.1016/j.abb.2018.11.002. Epub 2018 Nov 20.
The mechanical work and the actin-activated ATP kinetics in skeletal muscles are closely associated with two surface loops that are present in the myosin molecule: loop 1 and loop 2. They are located close to the ATP-loop (loop 1), and the actin binding domain (loop 2). In this study we investigated the roles of loops 1 and 2 in the regulation of the load-dependent velocity of actin sliding and ATPase activity.
Heavy meromyosin (HMM) from rabbit skeletal muscle was subjected to limited tryptic proteolysis to obtain fragments containing different amounts of loops 1 and 2. The amino-acid sequences of these fragments were confirmed with quantitative mass-spectrometry. The velocity of actin motility propelled by the HMM fragments was measured using in-vitro motility assays, with varying loads induced by the addition of different concentrations of α-actinin.
The load-dependent velocity of the myosin-propelled actin motility, and the fraction of actin filaments motility, were decreased in close association with the depletion of loop 1 in the HMM. The ATPase activity was decreased in close association with depletion of loops 1 and 2.
Loop 1 is responsible for regulating the load-dependent velocity of actin motility.
Myosin-actin interaction is closely regulated by two flexible loops in the structure of myosin. The results of this study are important for the understanding of the molecular mechanisms of contraction, and therefore the most basic functions of life, such as locomotion, heart beating, and breathing.
骨骼肌的机械功和肌球蛋白上的肌动蛋白激活的 ATP 动力学与存在于肌球蛋白分子中的两个表面环密切相关:环 1 和环 2。它们位于靠近 ATP 环(环 1)和肌动蛋白结合域(环 2)的位置。在这项研究中,我们研究了环 1 和环 2 在调节肌动蛋白滑动的负载依赖速度和 ATP 酶活性中的作用。
从兔骨骼肌中提取重酶解肌球蛋白(HMM),并用有限的胰蛋白酶消化来获得含有不同数量的环 1 和环 2 的片段。用定量质谱法确认这些片段的氨基酸序列。通过体外运动分析测量由 HMM 片段推动的肌动蛋白运动的速度,通过添加不同浓度的α-辅肌动蛋白来诱导不同的负载。
与 HMM 中环 1 的消耗密切相关,肌球蛋白推动的肌动蛋白运动的负载依赖速度和肌动蛋白丝运动的分数减少。与环 1 和环 2 的消耗密切相关,ATP 酶活性降低。
环 1 负责调节肌动蛋白运动的负载依赖速度。
肌球蛋白-肌动蛋白相互作用受到肌球蛋白结构中两个灵活环的紧密调节。本研究的结果对理解收缩的分子机制以及运动、心跳和呼吸等生命的最基本功能非常重要。