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由骨骼肌管中异源性心脏/脑二氢吡啶受体β2a亚基触发的钙依赖性兴奋-收缩偶联。

Ca2+-dependent excitation-contraction coupling triggered by the heterologous cardiac/brain DHPR beta2a-subunit in skeletal myotubes.

作者信息

Sheridan David C, Carbonneau Leah, Ahern Chris A, Nataraj Priya, Coronado Roberto

机构信息

Department of Physiology, University of Wisconsin, School of Medicine, Madison, Wisconsin 53706, USA.

出版信息

Biophys J. 2003 Dec;85(6):3739-57. doi: 10.1016/S0006-3495(03)74790-0.

Abstract

Molecular determinants essential for skeletal-type excitation-contraction (EC) coupling have been described in the cytosolic loops of the dihydropyridine receptor (DHPR) alpha1S pore subunit and in the carboxyl terminus of the skeletal-specific DHPR beta1a-subunit. It is unknown whether EC coupling domains present in the beta-subunit influence those present in the pore subunit or if they act independent of each other. To address this question, we investigated the EC coupling signal that is generated when the endogenous DHPR pore subunit alpha1S is paired with the heterologous heart/brain DHPR beta2a-subunit. Studies were conducted in primary cultured myotubes from beta1 knockout (KO), ryanodine receptor type 1 (RyR1) KO, ryanodine receptor type 3 (RyR3) KO, and double RyR1/RyR3 KO mice under voltage clamp with simultaneous monitoring of confocal fluo-4 fluorescence. The beta2a-mediated Ca2+ current recovered in beta1 KO myotubes lacking the endogenous DHPR beta1a-subunit verified formation of the alpha1S/beta1a pair. In myotube genotypes which express no or low-density L-type Ca2+ currents, namely beta1 KO and RyR1 KO, beta2a overexpression recovered a wild-type density of nifedipine-sensitive Ca2+ currents with a slow activation kinetics typical of skeletal myotubes. Concurrent with Ca2+ current recovery, there was a drastic reduction of voltage-dependent, skeletal-type EC coupling and emergence of Ca2+ transients triggered by the Ca2+ current. A comparison of beta2a overexpression in RyR3 KO, RyR1 KO, and double RyR1/RyR3 KO myotubes concluded that both RyR1 and RyR3 isoforms participated in Ca2+-dependent Ca2+ release triggered by the beta2a-subunit. In beta1 KO and RyR1 KO myotubes, the Ca2+-dependent EC coupling promoted by beta2a overexpression had the following characteristics: 1), L-type Ca2+ currents had a wild-type density; 2), Ca2+ transients activated much slower than controls overexpressing beta1a, and the rate of fluorescence increase was consistent with the activation kinetics of the Ca2+ current; 3), the voltage dependence of the Ca2+ transient was bell-shaped and the maximum was centered at approximately +30 mV, consistent with the voltage dependence of the Ca2+ current; and 4), Ca2+ currents and Ca2+ transients were fully blocked by nifedipine. The loss in voltage-dependent EC coupling promoted by beta2a was inferred by the drastic reduction in maximal Ca2+ fluorescence at large positive potentials (DeltaF/Fmax) in double dysgenic/beta1 KO myotubes overexpressing the pore mutant alpha1S (E1014K) and beta2a. The data indicate that beta2a, upon interaction with the skeletal pore subunit alpha1S, overrides critical EC coupling determinants present in alpha1S. We propose that the alpha1S/beta pair, and not the alpha1S-subunit alone, controls the EC coupling signal in skeletal muscle.

摘要

二氢吡啶受体(DHPR)α1S孔道亚基的胞质环以及骨骼肌特异性DHPRβ1a亚基的羧基末端中,已描述了对骨骼肌型兴奋-收缩(EC)偶联至关重要的分子决定因素。尚不清楚β亚基中存在的EC偶联结构域是否会影响孔道亚基中存在的那些结构域,或者它们是否彼此独立发挥作用。为了解决这个问题,我们研究了内源性DHPR孔道亚基α1S与异源性心脏/脑DHPRβ2a亚基配对时产生的EC偶联信号。在电压钳制下,对来自β1基因敲除(KO)、1型兰尼碱受体(RyR1)KO、3型兰尼碱受体(RyR3)KO和双RyR1/RyR3 KO小鼠的原代培养肌管进行了研究,同时监测共聚焦fluo-4荧光。在缺乏内源性DHPRβ1a亚基的β1 KO肌管中恢复的β2a介导的Ca2+电流,证实了α1S/β1a对的形成。在不表达或低密度表达L型Ca2+电流的肌管基因型中,即β1 KO和RyR1 KO,β2a的过表达恢复了硝苯地平敏感的Ca2+电流的野生型密度,其具有骨骼肌管典型的缓慢激活动力学。与Ca2+电流恢复同时发生的是,电压依赖性的骨骼肌型EC偶联急剧减少,并且出现了由Ca2+电流触发的Ca2+瞬变。对RyR3 KO、RyR1 KO和双RyR1/RyR3 KO肌管中β2a过表达的比较得出结论,RyR1和RyR3同工型都参与了由β2a亚基触发的Ca2+依赖性Ca2+释放。在β1 KO和RyR1 KO肌管中,β2a过表达促进的Ca2+依赖性EC偶联具有以下特征:1),L型Ca2+电流具有野生型密度;2),Ca2+瞬变的激活比过表达β1a的对照慢得多,并且荧光增加速率与Ca2+电流的激活动力学一致;3),Ca2+瞬变的电压依赖性呈钟形,最大值集中在约+30 mV,与Ca2+电流的电压依赖性一致;4),Ca2+电流和Ca2+瞬变被硝苯地平完全阻断。在过表达孔道突变体α1S(E1014K)和β2a的双发育异常/β1 KO肌管中,大正电位(ΔF/Fmax)下最大Ca2+荧光的急剧降低推断出β2a促进的电压依赖性EC偶联的丧失。数据表明,β2a与骨骼肌孔道亚基α1S相互作用后,会覆盖α1S中存在的关键EC偶联决定因素。我们提出,α1S/β对,而不是单独的α1S亚基,控制骨骼肌中的EC偶联信号。

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