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Microsecond rotational dynamics of spin-labeled myosin regulatory light chain induced by relaxation and contraction of scallop muscle

机译:旋转标记肌蛋白调节轻链的微秒旋转动力学,扇形肌肉收缩诱导

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We have used saturation transfer electron paramagnetic resonance (ST-EPR) to study the rotational dynamics of spin-labeled regulatory light chain (RLC) in scallop (Placopecten magellanicus) muscle fibers. The single cysteine (Cys 51) in isolated clam (Mercenaria) RLC was labeled with an indanedione spin label (InVSL). RLC was completely and specifically extracted from scallop striated muscle fibers, eliminating the Ca sensitivity of ATPase activity and isometric force, which were both completely restored by stoichiometric incorporation of labeled RLC. The EPR spectrum of the isolated RLC revealed nanosecond rotational motions within the RLC, which were completely eliminated when the labeled RLC was bound to myosin heads in myofibrils or fibers in rigor. This is the most strongly immobilized RLC-bound probe reported to date and thus offers the most reliable detection of the overall rotational motion of the LC domain. Conventional EPR spectra of oriented fibers indicated essentially complete probe disorder, independent of ATP and Ca, eliminating orientational dependence and thus making this probe ideal for unambiguous measurement of microsecond rotational motions of the LC domain by ST-EPR. ST-EPR spectra of fibers in rigor indicated an effective rotational correlation time (tau(r)(eff)) of 140 +/- 5 mu s, similar to that observed for the same spin label bound to the catalytic domain. Relaxation by ATP induced microsecond rotational motion (tau(r)(eff) = 70 +/- 4 mu s), and this motion was slightly slower upon Ca activation of isometric contraction (tau(r)(eff) = 100 +/- 5 mu s). These motions in relaxation and contraction are similar to, but slower than, the motions previously reported for the same spin label bound to the catalytic domain. These results support a model for force generation involving rotational motion of the LC domain relative to the catalytic domain and dynamic disorder-to-order transitions in both domains. [References: 62]
机译:我们使用了饱和传递电子顺磁共振(ST-EPR)来研究扇贝(Placopecten Magellanicus)肌纤维中旋转标记的调节轻链(RLC)的旋转动态。分离蛤(Mercenaria)RLC中的单半胱氨酸(Cys 51)用茚满硫代旋旋标记(INVSL)标记。 RLC完全且特异性地从扇贝横纹状的肌肉纤维中提取,消除了ATP酶活性和等距力的Ca敏感性,其均由标记的RLC的化学计量完全恢复。分离的RLC的EPR光谱揭示了RLC内的纳秒旋转运动,当标记的RLC与RIGOR中的肌原纤维或纤维中的肌球蛋白头结合时完全消除。这是迄今为止报告的最强烈的RLC绑定探针,因此提供了最可靠地检测LC域的整体旋转运动。定向纤维的常规EPR光谱表明基本上完全探测障碍,与ATP和CA无关,消除了取向依赖性,从而使该探测器理想地通过ST-EPR明确地测量LC域的微秒旋转运动。 RIGOR中的纤维ST-EPR光谱表明了140 +/-5μs的有效旋转相关时间(TAU(R)(EFF)),其类似于与催化结构域结合的相同旋转标签观察到的旋转相关时间通过ATP诱导微秒旋转运动(TAU(R)(EFF)= 70 +/- 4亩)放松,并且在CA激活等距收缩时,这种运动略微慢一点(TAU(r)(eff)= 100 +/- 5亩)。这些放松和收缩的动作类似于,但比以前报道了与催化结构域相同的旋转标记的运动较慢。这些结果支持涉及LC域的旋转运动相对于催化结构域的旋转运动和两个结构域的动态紊乱转变的模型。 [参考:62]

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