Tracking the sarcoplasmic reticulum membrane voltage in muscle with a FRET biosensor.

The Journal of General Physiology Pub Date : 2018-08-06 Epub Date: 2018-06-13 DOI:10.1085/jgp.201812035
Colline Sanchez, Christine Berthier, Bruno Allard, Jimmy Perrot, Clément Bouvard, Hidekazu Tsutsui, Yasushi Okamura, Vincent Jacquemond
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引用次数: 19

Abstract

Ion channel activity in the plasma membrane of living cells generates voltage changes that are critical for numerous biological functions. The membrane of the endoplasmic/sarcoplasmic reticulum (ER/SR) is also endowed with ion channels, but whether changes in its voltage occur during cellular activity has remained ambiguous. This issue is critical for cell functions that depend on a Ca2+ flux across the reticulum membrane. This is the case for contraction of striated muscle, which is triggered by opening of ryanodine receptor Ca2+ release channels in the SR membrane in response to depolarization of the transverse invaginations of the plasma membrane (the t-tubules). Here, we use targeted expression of voltage-sensitive fluorescence resonance energy transfer (FRET) probes of the Mermaid family in differentiated muscle fibers to determine whether changes in SR membrane voltage occur during depolarization-contraction coupling. In the absence of an SR targeting sequence, FRET signals from probes present in the t-tubule membrane allow calibration of the voltage sensitivity and amplitude of the response to voltage-clamp pulses. Successful SR targeting of the probes was achieved using an N-terminal domain of triadin, which completely eliminates voltage-clamp-activated FRET signals from the t-tubule membrane of transfected fibers. In fibers expressing SR-targeted Mermaid probes, activation of SR Ca2+ release in the presence of intracellular ethyleneglycol-bis(β-amino-ethyl ether)-N,N,N',N'-tetra acetic acid (EGTA) results in an accompanying FRET signal. We find that this signal results from pH sensitivity of the probe, which detects cytosolic acidification because of the release of protons upon Ca2+ binding to EGTA. When EGTA is substituted with either 1,2-bis(o-aminophenoxy)ethane-N,N,N',N'-tetraacetic acid or the contraction blocker N-benzyl-p-toluene sulfonamide, we find no indication of a substantial change in the FRET response caused by a voltage change. These results suggest that the ryanodine receptor-mediated SR Ca2+ efflux is well balanced by concomitant counterion currents across the SR membrane.

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用FRET生物传感器跟踪肌肉肌浆网膜电压。
离子通道活性在活细胞的质膜产生电压的变化是至关重要的许多生物功能。内质/肌浆网(ER/SR)膜也具有离子通道,但其电压是否在细胞活动期间发生变化仍不清楚。这个问题是至关重要的细胞功能,依赖于钙离子通量通过网状膜。这就是横纹肌收缩的情况,它是由SR膜中ryanodine受体Ca2+释放通道的打开触发的,以响应质膜(t小管)横向内陷的去极化。在这里,我们使用美人鱼家族的电压敏感荧光共振能量转移(FRET)探针在分化肌纤维中的靶向表达来确定SR膜电压是否发生在去极化-收缩耦合过程中。在没有SR靶向序列的情况下,来自t管膜中探针的FRET信号允许校准电压灵敏度和电压钳位脉冲响应的幅度。利用triadin的n端结构域实现了探针的SR靶向,完全消除了来自转染纤维t小管膜的电压钳激活的FRET信号。在表达SR靶向Mermaid探针的纤维中,在细胞内乙二醇-双(β-氨基乙醚)-N,N,N',N'-四乙酸(EGTA)存在的情况下,SR Ca2+释放的激活会导致伴随的FRET信号。我们发现这个信号来自探针的pH敏感性,它检测细胞质酸化,因为Ca2+结合到EGTA时释放的质子。当EGTA被1,2-二(邻氨基苯氧基)乙烷-N,N,N',N'-四乙酸或收缩阻滞剂N-苄基-对甲苯磺酰胺取代时,我们没有发现电压变化导致FRET响应发生实质性变化的迹象。这些结果表明,ryanodine受体介导的SR Ca2+外排通过伴随的反离子流在SR膜上很好地平衡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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