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线粒体类核:超分辨率显微镜分析。

Mitochondrial Nucleoids: Superresolution microscopy analysis.

机构信息

Department of Mitochondrial Physiology, No.75, Institute of Physiology of the Czech Academy of Sciences, Prague, Czech Republic.

Department of Mitochondrial Physiology, No.75, Institute of Physiology of the Czech Academy of Sciences, Prague, Czech Republic.

出版信息

Int J Biochem Cell Biol. 2019 Jan;106:21-25. doi: 10.1016/j.biocel.2018.10.012. Epub 2018 Nov 2.

Abstract

The mitochondrion owns an autonomous genome. Double-stranded circular mitochondrial DNA (mtDNA) is organized in complexes with a packing/stabilizing transcription factor TFAM, having multiple roles, and proteins of gene expression machinery in structures called nucleoids. From hundreds to thousands nucleoids exist distributed in the matrix of mitochondrial reticulum network. A single mtDNA molecule contained within the single nucleoid is a currently preferred but questioned model. Nevertheless, mtDNA replication should lead transiently to its doubling within a nucleoid. However, nucleoid division has not yet been documented in detail. A 3D superresolution microscopy is required to resolve nucleoid biology occurring in ∼100 nm space, having an advantage over electron microscopy tomography in resolving the particular protein components. We discuss stochastic vs. stimulated emission depletion microscopy yielding wide vs. narrow nucleoid size distribution, respectively. Nucleoid clustering into spheroids fragmented from the continuous mitochondrial network, likewise possible nucleoid attachment to the inner membrane is reviewed.

摘要

线粒体拥有自主基因组。双链环状线粒体 DNA(mtDNA)与具有多种功能的包装/稳定转录因子 TFAM 以及基因表达机制的蛋白质一起组织在称为核仁的结构中。从数百到数千个核仁存在于线粒体网状网络的基质中。单个 mtDNA 分子包含在单个核仁中,这是目前首选但有争议的模型。然而,mtDNA 复制应该会导致其在核仁内短暂加倍。然而,核仁分裂尚未详细记录。需要 3D 超分辨率显微镜来解析发生在 ∼100nm 空间的核仁生物学,与电子显微镜断层扫描相比,它具有解析特定蛋白质成分的优势。我们讨论了随机发射损耗显微镜和受激发射损耗显微镜分别产生的宽和窄核仁大小分布。核仁聚集成从连续线粒体网络中分裂出来的球体,同样可能的核仁附着在内膜上也被综述。

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