Ultrastructural Characterization of Flashing Mitochondria.

Manon Rosselin, Paula Nunes-Hasler, Nicolas Demaurex
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引用次数: 4

Abstract

Mitochondria undergo spontaneous transient elevations in matrix pH associated with drops in mitochondrial membrane potential. These mitopHlashes require a functional respiratory chain and the profusion protein optic atrophy 1, but their mechanistic basis is unclear. To gain insight on the origin of these dynamic events, we resolved the ultrastructure of flashing mitochondria by correlative light and electron microscopy. HeLa cells expressing the matrix-targeted pH probe mitoSypHer were screened for mitopHlashes and fixed immediately after the occurrence of a flashing event. The cells were then processed for imaging by serial block face scanning electron microscopy using a focused ion beam to generate ~1,200 slices of 10 nm thickness from a 28 μm × 15 μm cellular volume. Correlation of live/fixed fluorescence and electron microscopy images allowed the unambiguous identification of flashing and nonflashing mitochondria. Three-dimensional reconstruction and surface mapping revealed that each tomogram contained two flashing mitochondria of unequal sizes, one being much larger than the average mitochondrial volume. Flashing mitochondria were 10-fold larger than silent mitochondria but with a surface to volume ratio and a cristae volume similar to nonflashing mitochondria. Flashing mitochondria were connected by tubular structures, formed more membrane contact sites, and a constriction was observed at a junction between a flashing mitochondrion and a nonflashing mitochondrion. These data indicate that flashing mitochondria are structurally preserved and bioenergetically competent but form numerous membrane contact sites and are connected by tubular structures, consistent with our earlier suggestion that mitopHlashes might be triggered by the opening of fusion pores between contiguous mitochondria.

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闪烁线粒体的超微结构表征。
线粒体经历基质pH值的自发瞬时升高,并伴有线粒体膜电位的下降。这些线粒体眨眼需要功能性呼吸链和丰富的视神经萎缩蛋白1,但其机制基础尚不清楚。为了深入了解这些动态事件的起源,我们通过相关的光镜和电镜分析了闪烁线粒体的超微结构。表达基质靶向pH探针mitosyphher的HeLa细胞进行mitophlash筛选,并在闪烁事件发生后立即进行固定。然后用聚焦离子束对细胞进行连续块面扫描电子显微镜成像,在28 μm × 15 μm的细胞体积上生成约1200片10 nm厚度的切片。活/固定荧光和电子显微镜图像的相关性允许明确识别闪烁和非闪烁线粒体。三维重建和表面测绘显示,每张断层图包含两个大小不等的闪烁线粒体,其中一个比平均线粒体体积大得多。闪烁线粒体比沉默线粒体大10倍,但表面体积比和嵴体积与非闪烁线粒体相似。闪烁线粒体以管状结构连接,形成更多的膜接触位点,并且在闪烁线粒体和非闪烁线粒体之间的连接处观察到收缩。这些数据表明,闪烁的线粒体在结构上是保存的,具有生物能量能力,但形成了许多膜接触位点,并通过管状结构连接,这与我们之前提出的相邻线粒体之间的融合孔打开可能触发线粒体闪光的观点一致。
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