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依赖于 Miro1 的小脑浦肯野细胞中神经元线粒体动力学。

Miro1-dependent mitochondrial dynamics in parvalbumin interneurons.

机构信息

Department of Neuroscience, Physiology and Pharmacology, University College London, London, United Kingdom.

Department of Physiology, Anatomy and Genetics, University of Oxford, Oxford, United Kingdom.

出版信息

Elife. 2021 Jun 30;10:e65215. doi: 10.7554/eLife.65215.

Abstract

The spatiotemporal distribution of mitochondria is crucial for precise ATP provision and calcium buffering required to support neuronal signaling. Fast-spiking GABAergic interneurons expressing parvalbumin (PV+) have a high mitochondrial content reflecting their large energy utilization. The importance for correct trafficking and precise mitochondrial positioning remains poorly elucidated in inhibitory neurons. Miro1 is a Ca²-sensing adaptor protein that links mitochondria to the trafficking apparatus, for their microtubule-dependent transport along axons and dendrites, in order to meet the metabolic and Ca-buffering requirements of the cell. Here, we explore the role of Miro1 in PV+ interneurons and how changes in mitochondrial trafficking could alter network activity in the mouse brain. By employing live and fixed imaging, we found that the impairments in Miro1-directed trafficking in PV+ interneurons altered their mitochondrial distribution and axonal arborization, while PV+ interneuron-mediated inhibition remained intact. These changes were accompanied by an increase in the ex vivo hippocampal γ-oscillation (30-80 Hz) frequency and promoted anxiolysis. Our findings show that precise regulation of mitochondrial dynamics in PV+ interneurons is crucial for proper neuronal signaling and network synchronization.

摘要

线粒体的时空分布对于支持神经元信号所需的精确 ATP 供应和钙缓冲至关重要。表达钙结合蛋白 Parvalbumin (PV+)的快速放电 GABA 能中间神经元具有高线粒体含量,反映了它们大量的能量利用。对于抑制性神经元中正确的运输和精确的线粒体定位,其重要性仍未得到充分阐明。Miro1 是一种 Ca² 感应衔接蛋白,它将线粒体与运输装置连接起来,以便在线粒体沿轴突和树突的微管依赖性运输过程中,满足细胞的代谢和 Ca 缓冲需求。在这里,我们探讨了 Miro1 在 PV+中间神经元中的作用,以及线粒体运输的变化如何改变小鼠大脑中的网络活动。通过采用活细胞和固定细胞成像,我们发现,PV+中间神经元中 Miro1 指导的运输受损会改变其线粒体分布和轴突分支,而 PV+中间神经元介导的抑制仍然完整。这些变化伴随着体外海马 γ-振荡(30-80 Hz)频率的增加,并促进焦虑缓解。我们的研究结果表明,PV+中间神经元中线粒体动力学的精确调节对于适当的神经元信号和网络同步至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f58b/8294849/2119c7e09f71/elife-65215-fig1.jpg

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