High-content high-throughput imaging reveals distinct connections between mitochondrial morphology and functionality for OXPHOS complex I, III, and V inhibitors

线粒体 氧化磷酸化 ATP-ADP转位酶 细胞生物学 生物 线粒体融合 线粒体分裂 碎片(计算) 线粒体DNA 线粒体凋亡诱导通道 线粒体内膜 高含量筛选 线粒体基质 线粒体通透性转换孔 生物能学 生物化学 生物物理学 胞浆 程序性细胞死亡 细胞凋亡 基因 细胞 生态学
作者
Wanda van der Stel,Huan Yang,Sylvia E. Le Dévédec,Bob van de Water,Joost B. Beltman,Erik H.J. Danen
出处
期刊:Cell Biology and Toxicology [Springer Nature]
卷期号:39 (2): 415-433 被引量:14
标识
DOI:10.1007/s10565-022-09712-6
摘要

Cells can adjust their mitochondrial morphology by altering the balance between mitochondrial fission and fusion to adapt to stressful conditions. The connection between a chemical perturbation, changes in mitochondrial function, and altered mitochondrial morphology is not well understood. Here, we made use of high-throughput high-content confocal microscopy to assess the effects of distinct classes of oxidative phosphorylation (OXPHOS) complex inhibitors on mitochondrial parameters in a concentration and time resolved manner. Mitochondrial morphology phenotypes were clustered based on machine learning algorithms and mitochondrial integrity patterns were mapped. In parallel, changes in mitochondrial membrane potential (MMP), mitochondrial and cellular ATP levels, and viability were microscopically assessed. We found that inhibition of MMP, mitochondrial ATP production, and oxygen consumption rate (OCR) using sublethal concentrations of complex I and III inhibitors did not trigger mitochondrial fragmentation. Instead, complex V inhibitors that suppressed ATP and OCR but increased MMP provoked a more fragmented mitochondrial morphology. In agreement, complex V but not complex I or III inhibitors triggered proteolytic cleavage of the mitochondrial fusion protein, OPA1. The relation between increased MMP and fragmentation did not extend beyond OXPHOS complex inhibitors: increasing MMP by blocking the mPTP pore did not lead to OPA1 cleavage or mitochondrial fragmentation and the OXPHOS uncoupler FCCP was associated with OPA1 cleavage and MMP reduction. Altogether, our findings connect vital mitochondrial functions and phenotypes in a high-throughput high-content confocal microscopy approach that help understanding of chemical-induced toxicity caused by OXPHOS complex perturbing chemicals.

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