线粒体
生物
细胞生物学
氧化磷酸化
DNAJA3公司
转录调控
基因表达调控
线粒体DNA
基因
基因表达
逆行信号
呼吸链
转录因子
基因表达谱
线粒体呼吸链
抄写(语言学)
ATP-ADP转位酶
信号转导
线粒体ROS
串扰
遗传学
粒线体疾病
柠檬酸循环
调节器
线粒体载体
细胞信号
细胞
活性氧
线粒体融合
电子传递复合体Ⅰ
线粒体内膜
作者
Hao Luo,Xiaona Yin,Hongxin He,Yaning Wang,Haitao Zhang
摘要
Mitochondria play central roles in cellular energy metabolism and signal transduction, and maintenance of mitochondrial homeostasis is essential for proper cellular function. Rather than being regulated by individual genes alone, mitochondrial homeostasis is governed by coordinated functional modules, including glucose and lipid metabolism, the tricarboxylic acid (TCA) cycle, oxidative phosphorylation (OXPHOS), calcium handling, mitochondrial dynamics, mitochondrial reactive oxygen species (mtROS) regulation, and mitochondrial transcription and translation. However, how perturbation of these modules reshapes cellular states remains incompletely understood. Here, we combined targeted chemical perturbations with single-cell RNA sequencing (scRNA-seq) to systematically profile transcriptional responses to inhibition of core mitochondrial functional modules. Comparative analyses revealed both shared and module-specific transcriptional programs, including recurrent co-expression patterns across distinct perturbations. Analysis of mitochondrial gene expression across conditions implicated mtROS as an important regulator of mitochondrial respiratory chain (MRC) gene expression, potentially acting through activation of the mitochondrial integrated stress response (mtISR). Further comparative analysis of perturbations targeting individual MRC complexes uncovered distinct transcriptional and cellular consequences among complexes. Examination of cell-cycle dynamics showed that mitochondrial perturbations generally suppress cell proliferation; inhibition of most MRC complexes was associated with G1-phase arrest, whereas perturbation of complex III preferentially led to G2/M-phase arrest, potentially reflecting differential engagement of p53-associated signaling pathways. Finally, our analysis revealed both conserved and divergent transcriptional responses to mitochondrial perturbations between human and mouse cells. Together, these findings establish a systematic single-cell framework for dissecting mitochondrial functional modules and highlight both shared and function-specific principles by which mitochondrial perturbations influence cellular transcriptional states.
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