Department of Chemistry and Biotechnology, School of Engineering, The University of Tokyo, Tokyo, Japan.
Imaging Section, Okinawa Institute of Science and Technology (OIST), Okinawa, Japan.
PLoS Biol. 2023 Aug 31;21(8):e3002246. doi: 10.1371/journal.pbio.3002246. eCollection 2023 Aug.
The convolution of membranes called cristae is a critical structural and functional feature of mitochondria. Crista structure is highly diverse between different cell types, reflecting their role in metabolic adaptation. However, their precise three-dimensional (3D) arrangement requires volumetric analysis of serial electron microscopy and has therefore been limiting for unbiased quantitative assessment. Here, we developed a novel, publicly available, deep learning (DL)-based image analysis platform called Python-based human-in-the-loop workflow (PHILOW) implemented with a human-in-the-loop (HITL) algorithm. Analysis of dense, large, and isotropic volumes of focused ion beam-scanning electron microscopy (FIB-SEM) using PHILOW reveals the complex 3D nanostructure of both inner and outer mitochondrial membranes and provides deep, quantitative, structural features of cristae in a large number of individual mitochondria. This nanometer-scale analysis in micrometer-scale cellular contexts uncovers fundamental parameters of cristae, such as total surface area, orientation, tubular/lamellar cristae ratio, and crista junction density in individual mitochondria. Unbiased clustering analysis of our structural data unraveled a new function for the dynamin-related GTPase Optic Atrophy 1 (OPA1) in regulating the balance between lamellar versus tubular cristae subdomains.
膜的卷曲称为嵴,是线粒体的一个关键结构和功能特征。不同细胞类型之间的嵴结构差异很大,反映了它们在代谢适应中的作用。然而,它们的精确三维(3D)排列需要通过连续电子显微镜的体视学分析,因此这一直限制了对其进行无偏定量评估。在这里,我们开发了一种新颖的、公开可用的基于深度学习(DL)的图像分析平台,称为基于 Python 的人机交互工作流程(PHILOW),该平台使用基于人机交互(HITL)的算法实现。使用 PHILOW 对聚焦离子束扫描电子显微镜(FIB-SEM)的密集、大而各向同性的体积进行分析,揭示了内外线粒体膜的复杂 3D 纳米结构,并为大量单个线粒体提供了嵴的深度、定量、结构特征。这种在微米级细胞环境中的纳米级分析揭示了嵴的基本参数,例如单个线粒体中嵴的总表面积、方向、管状/层状嵴比以及嵴连接密度。我们的结构数据分析的无偏聚类分析揭示了与视神经萎缩 1 相关的 GTP 酶(OPA1)在调节层状与管状嵴亚区之间平衡方面的新功能。