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利用全基因组 RNAi 筛选技术,研究调控线粒体融合缺陷的秀丽隐杆线虫突变体中 UPRmt 的因子。

Genome-wide RNAi screen for regulators of UPRmt in Caenorhabditis elegans mutants with defects in mitochondrial fusion.

机构信息

Faculty of Biology, Ludwig-Maximilians-University Munich, Planegg 82152, Germany.

Computational Biology Group, Max Planck Institute of Biochemistry, Planegg 82152, Germany.

出版信息

G3 (Bethesda). 2021 Jul 14;11(7). doi: 10.1093/g3journal/jkab095.

Abstract

Mitochondrial dynamics plays an important role in mitochondrial quality control and the adaptation of metabolic activity in response to environmental changes. The disruption of mitochondrial dynamics has detrimental consequences for mitochondrial and cellular homeostasis and leads to the activation of the mitochondrial unfolded protein response (UPRmt), a quality control mechanism that adjusts cellular metabolism and restores homeostasis. To identify genes involved in the induction of UPRmt in response to a block in mitochondrial fusion, we performed a genome-wide RNAi screen in Caenorhabditis elegans mutants lacking the gene fzo-1, which encodes the ortholog of mammalian Mitofusin, and identified 299 suppressors and 86 enhancers. Approximately 90% of these 385 genes are conserved in humans, and one-third of the conserved genes have been implicated in human disease. Furthermore, many have roles in developmental processes, which suggests that mitochondrial function and their response to stress are defined during development and maintained throughout life. Our dataset primarily contains mitochondrial enhancers and non-mitochondrial suppressors of UPRmt, indicating that the maintenance of mitochondrial homeostasis has evolved as a critical cellular function, which, when disrupted, can be compensated for by many different cellular processes. Analysis of the subsets "non-mitochondrial enhancers" and "mitochondrial suppressors" suggests that organellar contact sites, especially between the ER and mitochondria, are of importance for mitochondrial homeostasis. In addition, we identified several genes involved in IP3 signaling that modulate UPRmt in fzo-1 mutants and found a potential link between pre-mRNA splicing and UPRmt activation.

摘要

线粒体动态在维持线粒体质量和适应代谢活性方面起着重要作用,以响应环境变化。线粒体动态的破坏对线粒体和细胞内稳态有不利影响,并导致线粒体未折叠蛋白反应 (UPRmt) 的激活,这是一种质量控制机制,可调节细胞代谢并恢复内稳态。为了鉴定参与线粒体融合阻断后 UPRmt 诱导的基因,我们在缺失编码哺乳动物 Mitofusin 同源物 fzo-1 的基因的 Caenorhabditis elegans 突变体中进行了全基因组 RNAi 筛选,鉴定了 299 个抑制子和 86 个增强子。这些 385 个基因中约有 90%在人类中保守,其中三分之一的保守基因与人类疾病有关。此外,许多基因在发育过程中发挥作用,这表明线粒体功能及其对压力的反应在发育过程中确定,并在整个生命周期中保持。我们的数据集主要包含 UPRmt 的线粒体增强子和非线粒体抑制子,这表明维持线粒体内稳态已成为一种关键的细胞功能,当这种功能受到破坏时,可以通过许多不同的细胞过程进行补偿。对“非线粒体增强子”和“线粒体抑制子”这两个子集的分析表明,细胞器接触点,特别是内质网和线粒体之间的接触点,对线粒体内稳态很重要。此外,我们鉴定了几个参与 IP3 信号转导的基因,这些基因在 fzo-1 突变体中调节 UPRmt,并且发现了 pre-mRNA 剪接和 UPRmt 激活之间的潜在联系。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eea5/8495942/c4ddb6f68df8/jkab095f1.jpg

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