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黄色黏球菌csgA、fruA和mrpC突变体的转录组分析揭示了关键调控因子在多细胞发育过程中的广泛多样作用。

Transcriptomic analysis of Myxococcus xanthus csgA, fruA, and mrpC mutants reveals extensive and diverse roles of key regulators in the multicellular developmental process.

作者信息

A Farrugia Mark, Rajagopalan Ramya, Kroos Lee

机构信息

Department of Biochemistry and Molecular Biology, Michigan State University, East Lansing, MI, USA.

Department of Molecular & Cellular Biology, Kennesaw State University, Kennesaw, GA, USA.

出版信息

BMC Genomics. 2025 Apr 8;26(1):355. doi: 10.1186/s12864-025-11417-z.

Abstract

BACKGROUND

The bacterium Myxococcus xanthus provides an important multicellular model for understanding stress responses. The regulatory proteins CsgA, FruA, and MrpC are essential to survive prolonged starvation by forming fruiting bodies, which are mounds containing hardy round spores formed from vegetative rods, but the genome-wide pathways affected by these proteins remain poorly understood. Only a fruA mutant transcriptome and MrpC ChIP-seq have been reported. We describe RNA-seq transcriptome analysis of csgA, fruA, and mrpC mutants relative to a wild-type laboratory strain midway during the starvation-induced developmental process, when mounds, but not spores, have formed.

RESULTS

We show that CsgA, FruA, and MrpC broadly impact developmental gene expression, with over 60% of the genes differentially expressed in one or more mutants. Building upon previous investigations, we found that strongly regulated genes in the mrpC mutant correlate with MrpC DNA-binding sites located ~ 80 bp upstream of transcriptional start sites. We also confirmed that FruA directly or indirectly regulates many genes negatively, as well as many others positively. CsgA regulates indirectly and its strongest effects are positive. MrpC strongly stimulates fruA transcription and FruA accumulation, impacting many genes, but our results reveal that MrpC is also a strong negative or positive regulator of hundreds of genes independently of FruA. Indeed, we observed nearly every possible pattern of coregulation, unique regulation, and counterregulation by comparing the wild-type and mutant transcriptomes, indicating diverse roles of CsgA, FruA, and MrpC in the developmental gene regulatory network. The genes most strongly regulated were coregulated in two or three of the mutants. Each set of genes exhibiting differential expression in one or more mutants was analyzed for enrichment of gene ontology (GO) terms or KEGG pathways, and predicted protein-protein interactions. These analyses highlighted enrichment of pathways involved in cellular signaling, protein synthesis, energetics, and envelope function. In particular, we describe how CsgA, FruA, and MrpC control production of ribosomes, lipid signals, and peptidoglycan intermediates during development.

CONCLUSIONS

By comparing wild-type and mutant transcriptomes midway in development, this study documents individual and coordinate regulation of crucial pathways by CsgA, FruA, and MrpC, providing a valuable resource for future investigations.

摘要

背景

黄色粘球菌是理解应激反应的重要多细胞模型。调节蛋白CsgA、FruA和MrpC对于通过形成子实体在长期饥饿中存活至关重要,子实体是由营养杆形成的含有抗性圆形孢子的丘状物,但受这些蛋白质影响的全基因组途径仍知之甚少。仅报道了fruA突变体转录组和MrpC染色质免疫沉淀测序(ChIP-seq)。我们描述了相对于野生型实验室菌株,在饥饿诱导的发育过程中期(此时丘状物已形成,但孢子未形成),csgA、fruA和mrpC突变体的RNA测序转录组分析。

结果

我们表明CsgA、FruA和MrpC广泛影响发育基因表达,超过60%的基因在一个或多个突变体中差异表达。基于先前的研究,我们发现mrpC突变体中强烈调控的基因与位于转录起始位点上游约80 bp处的MrpC DNA结合位点相关。我们还证实FruA直接或间接负调控许多基因,以及许多其他正调控的基因。CsgA间接调控,其最强作用是正向的。MrpC强烈刺激fruA转录和FruA积累,影响许多基因,但我们的结果表明MrpC也是数百个基因独立于FruA的强负调控或正调控因子。实际上,通过比较野生型和突变体转录组,我们观察到了几乎所有可能的共调控、独特调控和反调控模式,表明CsgA、FruA和MrpC在发育基因调控网络中的作用多样。受调控最强烈的基因在两个或三个突变体中被共调控。对在一个或多个突变体中表现出差异表达的每组基因进行基因本体(GO)术语或京都基因与基因组百科全书(KEGG)途径的富集分析,以及预测的蛋白质-蛋白质相互作用分析。这些分析突出了参与细胞信号传导、蛋白质合成、能量学和包膜功能的途径的富集。特别是,我们描述了CsgA、FruA和MrpC在发育过程中如何控制核糖体、脂质信号和肽聚糖中间体的产生。

结论

通过比较发育中期的野生型和突变体转录组,本研究记录了CsgA、FruA和MrpC对关键途径的个体和协同调控,为未来的研究提供了宝贵资源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1504/11980068/eb780bbdaba9/12864_2025_11417_Fig1_HTML.jpg

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