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线粒体形态与功能:一举两得!

Mitochondrial morphology and function: two for the price of one!

机构信息

Wellcome Centre for Mitochondrial Research, Translational and Clinical Research, Newcastle University, Newcastle, UK.

Electron Microscopy Research Services, Newcastle University, Newcastle, UK.

出版信息

J Microsc. 2020 May;278(2):89-106. doi: 10.1111/jmi.12891. Epub 2020 Apr 22.

Abstract

Mitochondrial shape and function are known to be linked; therefore, there is a need to combine three-dimensional EM structural analysis with functional analysis. Cytochrome c oxidase labelling is one approach to examine mitochondrial function at the EM level. However, previous efforts to apply this method have had several issues including inconsistent results, disruption to mitochondrial ultrastructure, and a lack of optimisation for volume EM methods. We have used short fixation and microwave processing to address these issues. We show that our method gives consistent cytochrome c oxidase labelling and improves labelling penetration across tissue volume. We also quantify mitochondrial morphology metrics, including in volume EM, to show that ultrastructure is unaltered by the processing. This work represents a technical advance that allows the correlation of mitochondrial function and morphology with greater resolution and volume than has previously been feasible. LAY SUMMARY: Transmission electron microscopy (TEM) is a high-resolution technique used for the study of cells and their components, such as mitochondria. However, the two-dimensional nature of TEM means that quantification of these structures is difficult without making assumptions about their shape; a problem that was solved by the advent of three-dimensional EM approaches. Mitochondrial shape and function are known to be linked therefore there is a need to combine three-dimensional EM structural analysis with functional analysis. To do this we used electron microscopy to visualise a reaction that assesses the activity of cytochrome c oxidase in the mitochondrial respiratory chain. The reaction deposits a dark staining on mitochondrial cristae where cytochrome c oxidase is functioning and a lack of staining where it is not. We first optimised this technique for TEM, showing that the tissue was evenly stained and exhibited no effect on mitochondrial shape when compared to conventionally processed tissue. We then demonstrated that this was also true of a sample processed for three-dimensional EM imaging. This work presents an advance in three-dimensional EM imaging that allows us to look at both mitochondrial function and shape and to detect subtle changes in shape.

摘要

线粒体的形状和功能是相关联的;因此,需要将三维电子显微镜(EM)结构分析与功能分析结合起来。细胞色素 c 氧化酶标记是一种在 EM 水平上检查线粒体功能的方法。然而,以前应用这种方法存在几个问题,包括结果不一致、线粒体超微结构破坏以及缺乏针对体积 EM 方法的优化。我们使用短时间固定和微波处理来解决这些问题。我们表明,我们的方法可提供一致的细胞色素 c 氧化酶标记,并改善组织体积内的标记穿透。我们还定量了线粒体形态学指标,包括在体积 EM 中,以表明处理不会改变超微结构。这项工作代表了一项技术进步,使我们能够以比以前更可行的分辨率和体积来关联线粒体功能和形态。

摘要

透射电子显微镜(TEM)是一种用于研究细胞及其成分(如线粒体)的高分辨率技术。然而,TEM 的二维性质意味着,如果不根据其形状做出假设,对这些结构进行定量是很困难的;这一问题随着三维 EM 方法的出现得到了解决。已知线粒体的形状和功能是相关联的,因此需要将三维 EM 结构分析与功能分析结合起来。为此,我们使用电子显微镜来可视化评估线粒体呼吸链中细胞色素 c 氧化酶活性的反应。该反应在细胞色素 c 氧化酶起作用的线粒体嵴上沉积深色染色,而在不起作用的地方则没有染色。我们首先针对 TEM 优化了这项技术,结果表明与常规处理的组织相比,组织染色均匀,且对线粒体形状没有影响。然后我们证明,对于经过三维 EM 成像处理的样本也是如此。这项工作代表了三维 EM 成像的一项进步,使我们能够同时观察线粒体的功能和形态,并检测到形状的细微变化。

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