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线粒体超级复合物:与年龄相关的神经退行性疾病中的生理组织和失调

Mitochondrial Supercomplexes: Physiological Organization and Dysregulation in Age-Related Neurodegenerative Disorders.

机构信息

Laboratory of Brain Aging and Neurodegeneration-Fundación Instituto Leloir-IIBBA-CONICET, Buenos Aires, Argentina.

出版信息

Front Endocrinol (Lausanne). 2020 Sep 11;11:600. doi: 10.3389/fendo.2020.00600. eCollection 2020.

Abstract

Several studies suggest that the assembly of mitochondrial respiratory complexes into structures known as supercomplexes (SCs) may increase the efficiency of the electron transport chain, reducing the rate of production of reactive oxygen species. Therefore, the study of the (dis)assembly of SCs may be relevant for the understanding of mitochondrial dysfunction reported in brain aging and major neurodegenerative disorders such as Alzheimer's disease (AD) and Parkinson's disease (PD). Here we briefly reviewed the biogenesis and structural properties of SCs, the impact of mtDNA mutations and mitochondrial dynamics on SCs assembly, the role of lipids on stabilization of SCs and the methodological limitations for the study of SCs. More specifically, we summarized what is known about mitochondrial dysfunction and SCs organization and activity in aging, AD and PD. We focused on the critical variables to take into account when postmortem tissues are used to study the (dis)assembly of SCs. Since few works have been performed to study SCs in AD and PD, the impact of SCs dysfunction on the alteration of brain energetics in these diseases remains poorly understood. The convergence of future progress in the study of SCs structure at high resolution and the refinement of animal models of AD and PD, as well as the use of iPSC-based and somatic cell-derived neurons, will be critical in understanding the biological relevance of the structural remodeling of SCs.

摘要

几项研究表明,线粒体呼吸复合物组装成称为超级复合物 (SCs) 的结构可能会提高电子传递链的效率,降低活性氧物种的产生速率。因此,研究 SC 的(解)组装对于理解脑衰老和阿尔茨海默病 (AD) 和帕金森病 (PD) 等主要神经退行性疾病中报道的线粒体功能障碍可能具有重要意义。在这里,我们简要回顾了 SC 的生物发生和结构特性、mtDNA 突变和线粒体动力学对 SC 组装的影响、脂质对 SC 稳定的作用以及研究 SC 的方法学限制。更具体地说,我们总结了关于衰老、AD 和 PD 中线粒体功能障碍和 SC 组织和活性的已知信息。我们重点介绍了在使用死后组织研究 SC 的(解)组装时需要考虑的关键变量。由于很少有研究致力于研究 AD 和 PD 中的 SCs,因此 SCs 功能障碍对这些疾病中大脑能量代谢改变的影响仍知之甚少。未来在高分辨率研究 SC 结构方面的进展的融合,以及 AD 和 PD 动物模型的改进,以及使用 iPSC 为基础和体细胞衍生神经元,对于理解 SC 结构重塑的生物学相关性将至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b166/7518391/351658a72d2d/fendo-11-00600-g0001.jpg

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