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Depression of voltage-activated Ca2+ release in skeletal muscle by activation of a voltage-sensing phosphatase

机译:通过激活电压感应磷酸酶来抑制骨骼肌中电压激活的Ca2 +释放

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摘要

Phosphoinositides act as signaling molecules in numerous cellular transduction processes, and phosphatidylinositol 4,5-bisphosphate (PtdIns(4,5)P2) regulates the function of several types of plasma membrane ion channels. We investigated the potential role of PtdIns(4,5)P2 in Ca2+ homeostasis and excitation–contraction (E-C) coupling of mouse muscle fibers using in vivo expression of the voltage-sensing phosphatases (VSPs) Ciona intestinalis VSP (Ci-VSP) or Danio rerio VSP (Dr-VSP). Confocal images of enhanced green fluorescent protein–tagged Dr-VSP revealed a banded pattern consistent with VSP localization within the transverse tubule membrane. Rhod-2 Ca2+ transients generated by 0.5-s-long voltage-clamp depolarizing pulses sufficient to elicit Ca2+ release from the sarcoplasmic reticulum (SR) but below the range at which VSPs are activated were unaffected by the presence of the VSPs. However, in Ci-VSP–expressing fibers challenged by 5-s-long depolarizing pulses, the Ca2+ level late in the pulse (3 s after initiation) was significantly lower at 120 mV than at 20 mV. Furthermore, Ci-VSP–expressing fibers showed a reversible depression of Ca2+ release during trains, with the peak Ca2+ transient being reduced by ∼30% after the application of 10 200-ms-long pulses to 100 mV. A similar depression was observed in Dr-VSP–expressing fibers. Cav1.1 Ca2+ channel–mediated current was unaffected by Ci-VSP activation. In fibers expressing Ci-VSP and a pleckstrin homology domain fused with monomeric red fluorescent protein (PLCδ1PH-mRFP), depolarizing pulses elicited transient changes in mRFP fluorescence consistent with release of transverse tubule–bound PLCδ1PH domain into the cytosol; the voltage sensitivity of these changes was consistent with that of Ci-VSP activation, and recovery occurred with a time constant in the 10-s range. Our results indicate that the PtdIns(4,5)P2 level is tightly maintained in the transverse tubule membrane of the muscle fibers, and that VSP-induced depletion of PtdIns(4,5)P2 impairs voltage-activated Ca2+ release from the SR. Because Ca2+ release is thought to be independent from InsP3 signaling, the effect likely results from an interaction between PtdIns(4,5)P2 and a protein partner of the E-C coupling machinery.
机译:磷脂酰肌醇在许多细胞转导过程中充当信号分子,而磷脂酰肌醇4,5-双磷酸酯(PtdIns(4,5)P2)调节几种类型的质膜离子通道的功能。我们使用电压感应磷酸酶(VSPs)的体内表达研究了PtdIns(4,5)P2在Ca 2 + 稳态和小鼠肌肉纤维的兴奋-收缩(EC)耦合中的潜在作用。 Ciona intestinalis VSP(Ci-VSP)或Danio rerio VSP(Dr-VSP)。标记有绿色荧光蛋白的Dr-VSP的共聚焦图像显示出与VSP在横管膜内定位一致的带状模式。由0.5 s长的电压钳去极化脉冲产生的Rhod-2 Ca 2 + 瞬变足以引起Ca 2 + 从肌浆网(SR)释放,但低于VSP的激活范围不受VSP的存在的影响。但是,在受5 s长去极化脉冲挑战的表达Ci-VSP的光纤中,在脉冲后期(启动后3 s),Ca 2 + 的水平在120 mV时显着低于20 kV毫伏此外,表达Ci-VSP的纤维在列车运行过程中表现出可逆的Ca 2 + 释放抑制作用,应用后的峰值Ca 2 + 瞬态降低了约30% 10 200 ms长的脉冲达到100 mV。在表达Dr-VSP的纤维中也观察到类似的凹陷。 Cav1.1 Ca 2 + 通道介导的电流不受Ci-VSP激活的影响。在表达Ci-VSP和与单体红色荧光蛋白(PLCδ1PH-mRFP)融合的pleckstrin同源结构域的纤维中,去极化脉冲引起mRFP荧光的瞬时变化,与横向小管结合的PLCδ1PH结构域释放到细胞质中一致。这些变化的电压灵敏度与Ci-VSP激活的电压灵敏度一致,并且恢复时间为10 s范围内。我们的结果表明,PtdIns(4,5)P2水平在肌肉纤维的横向小管膜中紧密维持,并且VSP诱导的PtdIns(4,5)P2耗竭削弱了电压激活的Ca 2+ 从SR释放。因为Ca 2 + 的释放被认为与InsP3信号传导无关,所以这种作用可能是PtdIns(4,5)P2与E-C偶联机制的蛋白质伴侣之间相互作用的结果。

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