Acute exposure to extracellular BTP2 does not inhibit Ca2+ release during EC coupling in intact skeletal muscle fibers.

The Journal of General Physiology Pub Date : 2022-09-05 Epub Date: 2021-12-15 DOI:10.1085/jgp.202112976
Lan Wei-LaPierre, Linda Groom, Robert T Dirksen
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引用次数: 3

Abstract

The inhibitor of store-operated Ca2+ entry (SOCE) BTP2 was reported to inhibit ryanodine receptor Ca2+ leak and electrically evoked Ca2+ release from the sarcoplasmic reticulum when introduced into mechanically skinned muscle fibers. However, it is unclear how effects of intracellular application of a highly lipophilic drug like BTP2 on Ca2+ release during excitation-contraction (EC) coupling compare with extracellular exposure in intact muscle fibers. Here, we address this question by quantifying the effect of short- and long-term exposure to 10 and 20 µM BTP2 on the magnitude and kinetics of electrically evoked Ca2+ release in intact mouse flexor digitorum brevis muscle fibers. Our results demonstrate that neither the magnitude nor the kinetics of electrically evoked Ca2+ release evoked during repetitive electrical stimulation were altered by brief exposure (2 min) to either BTP2 concentration. However, BTP2 did reduce the magnitude of electrically evoked Ca2+ release in intact fibers when applied extracellularly for a prolonged period of time (30 min at 10 µM or 10 min at 20 µM), consistent with slow diffusion of the lipophilic drug across the plasma membrane. Together, these results indicate that the time course and impact of BTP2 on Ca2+ release during EC coupling in skeletal muscle depends strongly on whether the drug is applied intracellularly or extracellularly. Further, these results demonstrate that electrically evoked Ca2+ release in intact muscle fibers is unaltered by extracellular application of 10 µM BTP2 for <25 min, validating this use to assess the role of SOCE in the absence of an effect on EC coupling.

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急性暴露于细胞外BTP2不会抑制完整骨骼肌纤维EC偶联期间Ca2+的释放。
据报道,储存操作Ca2+进入(SOCE) BTP2抑制剂抑制ryanodine受体Ca2+泄漏,并在引入机械皮肤肌纤维时电诱发肌浆网Ca2+释放。然而,目前尚不清楚细胞内应用高度亲脂性药物如BTP2对兴奋-收缩(EC)偶联期间Ca2+释放的影响与完整肌纤维细胞外暴露的影响相比。在这里,我们通过量化短期和长期暴露于10和20µM BTP2对完整小鼠指屈肌短肌纤维电诱发Ca2+释放的大小和动力学的影响来解决这个问题。我们的研究结果表明,在重复电刺激期间引起的电诱发Ca2+释放的幅度和动力学都不会因短暂暴露于BTP2浓度(2分钟)而改变。然而,当细胞外施加较长时间(在10µM下30分钟或在20µM下10分钟)时,BTP2确实降低了完整纤维中电诱发Ca2+释放的大小,这与亲脂性药物在质膜上的缓慢扩散一致。总之,这些结果表明,骨骼肌EC偶联过程中BTP2对Ca2+释放的时间过程和影响在很大程度上取决于药物是在细胞内还是细胞外应用。此外,这些结果表明,在完整的肌肉纤维中,电诱发的Ca2+释放不会因细胞外应用10µM BTP2而改变
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