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Increasing Ca2+ in photoreceptor mitochondria alters metabolites, accelerates photoresponse recovery, and reveals adaptations to mitochondrial stress

机译:增加Ca2 +在感光体线粒体中改变代谢物,加速光响应恢复,并揭示对线粒体应力的适应

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摘要

Photoreceptors are specialized neurons that rely on Ca2+ to regulate phototransduction and neurotransmission. Photoreceptor dysfunction and degeneration occur when intracellular Ca2+ homeostasis is disrupted. Ca2+ homeostasis is maintained partly by mitochondrial Ca2+ uptake through the mitochondrial Ca2+ uniporter (MCU), which can influence cytosolic Ca2+ signals, stimulate energy production, and trigger apoptosis. Here we discovered that zebrafish cone photoreceptors express unusually low levels of MCU. We expected that this would be important to prevent mitochondrial Ca2+ overload and consequent cone degeneration. To test this hypothesis, we generated a cone-specific model of MCU overexpression. Surprisingly, we found that cones tolerate MCU overexpression, surviving elevated mitochondrial Ca2+ and disruptions to mitochondrial ultrastructure until late adulthood. We exploited the survival of MCU overexpressing cones to additionally demonstrate that mitochondrial Ca2+ uptake alters the distributions of citric acid cycle intermediates and accelerates recovery kinetics of the cone response to light. Cones adapt to mitochondrial Ca2+ stress by decreasing MICU3, an enhancer of MCU-mediated Ca2+ uptake, and selectively transporting damaged mitochondria away from the ellipsoid toward the synapse. Our findings demonstrate how mitochondrial Ca2+ can influence physiological and metabolic processes in cones and highlight the remarkable ability of cone photoreceptors to adapt to mitochondrial stress.
机译:光感受器是依赖CA2 +的专用神经元来调节光电传递和神经递质。当细胞内Ca2 +稳态被破坏时,会发生感光体功能障碍和退化。 CA2 +稳态由线粒体CA2 +通过线粒体CA2 +单百(MCU)部分维持,其可以影响细胞溶质CA2 +信号,刺激能量产生和触发凋亡。在这里,我们发现斑马鱼锥形光感受器表达异常低水平的MCU。我们预期这对于预防线粒体CA2 +过载和随后的锥变性是重要的。为了测试这一假设,我们生成了一个特定于MCU过表达的锥形模型。令人惊讶的是,我们发现锥体耐受MCU过表达,存活升高的线粒体Ca2 +并对线粒体超微结构的破坏直到过去晚期。我们利用了MCU过表达锥体的存活,另外证明了线粒体CA2 +摄取改变了柠檬酸循环中间体的分布,并加速锥体响应光的回收动力学。通过减少Micu3,MCu介导的Ca2 +摄取的增强剂,并选择性地将受损的线粒体远离椭球朝向突触的突触,通过降低MIToCoCondrial Ca2 +应力。我们的研究结果表明了线粒体CA2 +如何影响锥体中的生理和代谢过程,并突出锥形光感受器以适应线粒体应激的显着能力。

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