Institute of Physiology, Department of Physiology and Medical Biophysics, Medical University Innsbruck, 6020, Innsbruck, Austria.
Institute of General, Inorganic and Theoretical Chemistry, University of Innsbruck, Innsbruck, Austria.
Nat Commun. 2024 Aug 28;15(1):7440. doi: 10.1038/s41467-024-51809-5.
Skeletal muscle contractions are initiated by action potentials, which are sensed by the voltage-gated calcium channel (Ca1.1) and are conformationally coupled to calcium release from intracellular stores. Notably, Ca1.1 contains four separate voltage-sensing domains (VSDs), which activate channel gating and excitation-contraction (EC-) coupling at different voltages and with distinct kinetics. Here we show that a single VSD of Ca1.1 controls skeletal muscle EC-coupling. Whereas mutations in VSDs I, II and IV affect the current properties but not EC-coupling, only mutations in VSD III alter the voltage-dependence of depolarization-induced calcium release. Molecular dynamics simulations reveal comprehensive, non-canonical state transitions of VSD III in response to membrane depolarization. Identifying the voltage sensor that activates EC-coupling and detecting its unique conformational changes opens the door to unraveling the downstream events linking VSD III motion to the opening of the calcium release channel, and thus resolving the signal transduction mechanism of skeletal muscle EC-coupling.
骨骼肌收缩由动作电位引发,动作电位由电压门控钙离子通道(Ca1.1)感知,并与细胞内储存的钙离子释放形成构象偶联。值得注意的是,Ca1.1 包含四个独立的电压感应结构域(VSD),它们在不同的电压和不同的动力学下激活通道门控和兴奋-收缩(EC)偶联。在这里,我们表明 Ca1.1 的单个 VSD 控制着骨骼肌的 EC 偶联。虽然 VSD I、II 和 IV 的突变会影响电流特性但不会影响 EC 偶联,但只有 VSD III 的突变会改变去极化诱导的钙离子释放的电压依赖性。分子动力学模拟揭示了 VSD III 对膜去极化的全面、非典型的状态转变。确定激活 EC 偶联的电压传感器并检测其独特的构象变化,为解开 VSD III 运动与钙离子释放通道开放之间的下游事件联系以及解决骨骼肌 EC 偶联的信号转导机制打开了大门。