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Mitochondrial Ca2+ uptake prevents desynchronization of quantal release and minimizes depletion during repetitive stimulation of mouse motor nerve terminals

机译:线粒体Ca2 +的吸收可防止定量释放的失步并在重复刺激小鼠运动神经末梢时最大程度地减少消耗

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摘要

We investigated how inhibition of mitochondrial Ca2+ uptake affects transmitter release from mouse motor terminals during brief trains of action potentials (500 at 50 Hz) in physiological bath [Ca2+]. When mitochondrial Ca2+ uptake was inhibited by depolarizing mitochondria with antimycin A1 or carbonyl cyanide m-chlorophenyl-hydrazone, the stimulation-induced increase in cytosolic [Ca2+] was greater (> 10 μm, compared to ≤ 1μm in control solution), the quantal content of the endplate potential (EPP) depressed more rapidly (∼84 % depression compared to ∼8 % in controls), and asynchronous release during the stimulus train reached higher frequencies (peak rates of ∼6000 s−1 compared to ∼75 s−1 in controls). These effects of mitochondrial depolarization were not accompanied by a significant change in EPP quantal content or the rate of asynchronous release during 1 Hz stimulation, and were not seen in oligomycin, which blocks mitochondrial ATP synthesis without depolarizing mitochondria. Inhibition of endoplasmic reticular Ca2+ uptake with cyclopiazonic acid also had little effect on stimulation-induced changes in cytosolic [Ca2+] or EPP amplitude. We hypothesize that the high rate of asynchronous release evoked by stimulation during mitochondrial depolarization was produced by the elevation of cytosolic [Ca2+], and contributed to the accelerated depression of phasic release by reducing the availability of releasable vesicles. During mitochondrial depolarization, the post-tetanic potentiation of the EPP observed under control conditions was replaced by a post-tetanic depression with a slow time course of recovery. Thus, mitochondrial Ca2+ uptake is essential for sustaining phasic release, and thus neuromuscular transmission, during and following tetanic stimulation.
机译:我们研究了在生理浴[Ca 2 + ]中短暂的动作电位训练(50 Hz时为500)期间,线粒体Ca 2 + 的吸收抑制如何影响小鼠运动末端的递质释放。 ]。当用抗霉素A1或羰基氰化物间氯苯基-使线粒体去极化来抑制线粒体Ca 2 + 的摄取时,刺激引起的胞浆[Ca 2 + ]增加更大(> 10μm,相比于对照溶液中的≤1μm),端板电位(EPP)的定量含量下降更快(与对照中的8%相比下降了〜84%),并且在刺激过程中达到了异步释放更高的频率(峰值速率为〜6000 s -1 ,而对照组为〜75 s -1 )。线粒体去极化的这些效应在1 Hz刺激过程中并未伴随着EPP定量含量或异步释放速率的显着变化,而在寡霉素中则未见到,后者在不使线粒体去极化的情况下阻断了线粒体ATP的合成。环吡嗪酸抑制内质网状Ca 2 + 的吸收对刺激诱导的胞质[Ca 2 + ]或EPP振幅的变化也几乎没有影响。我们假设线粒体去极化过程中刺激引起的异步释放的高速率是由胞质[Ca 2 + ]的升高引起的,并通过减少可释放物质的可用性而促进了相释放的加速抑制。囊泡。线粒体去极化过程中,在对照条件下观察到的EPP的强直后增强作用被强直后抑制所取代,恢复过程缓慢。因此,线粒体Ca 2 + 的吸收对于在强直性刺激期间和之后维持阶段性释放以及神经肌肉的传递至关重要。

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