A transcription network underlies the dual genomic coordination of mitochondrial biogenesis.

IF 6.4 1区 生物学 Q1 BIOLOGY
eLife Pub Date : 2024-12-27 DOI:10.7554/eLife.96536
Fan Zhang, Annie Lee, Anna V Freitas, Jake T Herb, Zong-Heng Wang, Snigdha Gupta, Zhe Chen, Hong Xu
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引用次数: 0

Abstract

Mitochondrial biogenesis requires the expression of genes encoded by both the nuclear and mitochondrial genomes. However, aside from a handful transcription factors regulating specific subsets of mitochondrial genes, the overall architecture of the transcriptional control of mitochondrial biogenesis remains to be elucidated. The mechanisms coordinating these two genomes are largely unknown. We performed a targeted RNAi screen in developing eyes with reduced mitochondrial DNA content, anticipating a synergistic disruption of tissue development due to impaired mitochondrial biogenesis and mitochondrial DNA (mtDNA) deficiency. Among 638 transcription factors annotated in the Drosophila genome, 77 were identified as potential regulators of mitochondrial biogenesis. Utilizing published ChIP-seq data of positive hits, we constructed a regulatory network revealing the logic of the transcription regulation of mitochondrial biogenesis. Multiple transcription factors in core layers had extensive connections, collectively governing the expression of nearly all mitochondrial genes, whereas factors sitting on the top layer may respond to cellular cues to modulate mitochondrial biogenesis through the underlying network. CG1603, a core component of the network, was found to be indispensable for the expression of most nuclear mitochondrial genes, including those required for mtDNA maintenance and gene expression, thus coordinating nuclear genome and mtDNA activities in mitochondrial biogenesis. Additional genetic analyses validated YL-1, a transcription factor upstream of CG1603 in the network, as a regulator controlling CG1603 expression and mitochondrial biogenesis.

转录网络是线粒体生物发生的双重基因组协调的基础。
线粒体生物发生需要核基因组和线粒体基因组编码的基因表达。然而,除了少数调节线粒体基因特定亚群的转录因子外,线粒体生物发生的转录控制的整体结构仍有待阐明。协调这两个基因组的机制在很大程度上是未知的。我们在线粒体DNA含量降低的发育中的眼睛中进行了靶向RNAi筛选,预计由于线粒体生物发生受损和线粒体DNA (mtDNA)缺乏而导致组织发育的协同破坏。在果蝇基因组中注释的638个转录因子中,有77个被确定为线粒体生物发生的潜在调节因子。利用已发表的ChIP-seq阳性命中数据,我们构建了一个揭示线粒体生物发生转录调控逻辑的调控网络。核心层中的多个转录因子具有广泛的联系,共同控制着几乎所有线粒体基因的表达,而顶层的转录因子可能通过潜在的网络响应细胞信号来调节线粒体的生物发生。CG1603是该网络的核心组成部分,在线粒体生物发生过程中,包括mtDNA维持和基因表达所需的大部分核线粒体基因的表达中都不可或缺,从而协调核基因组和mtDNA的活动。另外的遗传分析证实了CG1603网络上游的转录因子YL-1是控制CG1603表达和线粒体生物发生的调节因子。
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来源期刊
eLife
eLife BIOLOGY-
CiteScore
12.90
自引率
3.90%
发文量
3122
审稿时长
17 weeks
期刊介绍: eLife is a distinguished, not-for-profit, peer-reviewed open access scientific journal that specializes in the fields of biomedical and life sciences. eLife is known for its selective publication process, which includes a variety of article types such as: Research Articles: Detailed reports of original research findings. Short Reports: Concise presentations of significant findings that do not warrant a full-length research article. Tools and Resources: Descriptions of new tools, technologies, or resources that facilitate scientific research. Research Advances: Brief reports on significant scientific advancements that have immediate implications for the field. Scientific Correspondence: Short communications that comment on or provide additional information related to published articles. Review Articles: Comprehensive overviews of a specific topic or field within the life sciences.
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