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ATAD1通过调节线粒体功能来调控神经元发育和突触形成。

ATAD1 Regulates Neuronal Development and Synapse Formation Through Tuning Mitochondrial Function.

作者信息

Yan Hao-Hao, He Jia-Jia, Fu Chuanhai, Chen Jia-Hui, Tang Ai-Hui

机构信息

Hefei National Laboratory for Physical Sciences at the Microscale, MOE Key Laboratory for Membrane-Less Organelles & Cellular Dynamics, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei 230026, China.

Anhui Province Key Laboratory of Biomedical Imaging and Intelligent Processing, Institute of Artificial Intelligence, Hefei Comprehensive National Science Center, Hefei 230088, China.

出版信息

Int J Mol Sci. 2024 Dec 24;26(1):44. doi: 10.3390/ijms26010044.

Abstract

Mitochondrial function is essential for synaptic function. ATAD1, an AAA+ protease involved in mitochondrial quality control, governs fission-fusion dynamics within the organelle. However, the distribution and functional role of ATAD1 in neurons remain poorly understood. In this study, we demonstrate that ATAD1 is primarily localized to mitochondria in dendrites and, to a lesser extent, in spines in cultured hippocampal neurons. We found that ATAD1 deficiency disrupts the mitochondrial fission-fusion balance, resulting in mitochondrial fragmentation. This deficiency also impairs dendritic branching, hinders dendritic spine maturation, and reduces glutamatergic synaptic transmission in hippocampal neuron. To further investigate the underlying mechanism, we employed an ATP hydrolysis-deficient mutant of ATAD1 to rescue the neuronal deficits associated with ATAD1 loss. We discovered that the synaptic deficits are independent of the mitochondrial morphology changes but rely on its ATP hydrolysis. Furthermore, we show that ATAD1 loss leads to impaired mitochondrial function, including decreased ATP production, impaired membrane potential, and elevated oxidative stress. In conclusion, our results provide evidence that ATAD1 is crucial for maintaining mitochondrial function and regulating neurodevelopment and synaptic function.

摘要

线粒体功能对于突触功能至关重要。ATAD1是一种参与线粒体质量控制的AAA+蛋白酶,它调控细胞器内的裂变-融合动态。然而,ATAD1在神经元中的分布和功能作用仍知之甚少。在本研究中,我们证明ATAD1主要定位于培养的海马神经元树突中的线粒体,在较小程度上定位于树棘中的线粒体。我们发现,ATAD1缺陷会破坏线粒体裂变-融合平衡,导致线粒体碎片化。这种缺陷还会损害树突分支,阻碍树突棘成熟,并降低海马神经元中的谷氨酸能突触传递。为了进一步研究潜在机制,我们使用了ATAD1的ATP水解缺陷突变体来挽救与ATAD1缺失相关的神经元缺陷。我们发现,突触缺陷与线粒体形态变化无关,而是依赖于其ATP水解。此外,我们表明,ATAD1缺失会导致线粒体功能受损,包括ATP生成减少、膜电位受损和氧化应激升高。总之,我们的结果提供了证据,证明ATAD1对于维持线粒体功能以及调节神经发育和突触功能至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c1d4/11719905/477fa7f03697/ijms-26-00044-g001.jpg

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