School of Physics, Georgia Institute of Technology, Atlanta, GA, 30332 USA.
Biophysics Collaborative Access Team and CSRRI, Department of Biological Sciences, Illinois Institute of Technology, Chicago, IL, 60616 USA.
J Exp Biol. 2020 May 4;223(Pt 9):jeb212829. doi: 10.1242/jeb.212829.
Muscle is highly organized across multiple length scales. Consequently, small changes in the arrangement of myofilaments can influence macroscopic mechanical function. Two leg muscles of a cockroach have identical innervation, mass, twitch responses, length-tension curves and force-velocity relationships. However, during running, one muscle is dissipative (a 'brake'), while the other dissipates and produces significant positive mechanical work (bifunctional). Using time-resolved X-ray diffraction in intact, contracting muscle, we simultaneously measured the myofilament lattice spacing, packing structure and macroscopic force production of these muscles to test whether structural differences in the myofilament lattice might correspond to the muscles' different mechanical functions. While the packing patterns are the same, one muscle has 1 nm smaller lattice spacing at rest. Under isometric stimulation, the difference in lattice spacing disappeared, consistent with the two muscles' identical steady-state behavior. During periodic contractions, one muscle undergoes a 1 nm greater change in lattice spacing, which correlates with force. This is the first identified structural feature in the myofilament lattice of these two muscles that shares their whole-muscle dynamic differences and quasi-static similarities.
肌肉在多个长度尺度上高度有序。因此,肌丝排列的微小变化会影响宏观机械功能。一只蟑螂的两条腿肌肉具有相同的神经支配、质量、抽搐反应、长度-张力曲线和力-速度关系。然而,在跑步时,一条肌肉是耗散的(“刹车”),而另一条肌肉既耗散又产生显著的正机械功(双功能)。我们使用完整收缩肌肉的时间分辨 X 射线衍射技术,同时测量这些肌肉的肌丝晶格间距、包装结构和宏观力产生情况,以测试肌丝晶格中的结构差异是否与肌肉的不同机械功能相对应。虽然包装模式相同,但一条肌肉在休息时的晶格间距小 1nm。在等长刺激下,晶格间距的差异消失,与两条肌肉的稳态行为一致。在周期性收缩过程中,一条肌肉的晶格间距发生了 1nm 的更大变化,这与力相关。这是在这两条肌肉的肌丝晶格中首次发现的结构特征,它共享了它们整个肌肉的动态差异和准静态相似性。