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副溶血性弧菌几丁质降解的功能基因组学揭示了其为支持环境适应性而进行的精细整合的代谢贡献。

Functional genomics of chitin degradation by Vibrio parahaemolyticus reveals finely integrated metabolic contributions to support environmental fitness.

作者信息

Getz Landon J, Robinson Oriana S, Thomas Nikhil A

机构信息

Department of Microbiology and Immunology, Dalhousie University, Halifax, Nova Scotia, Canada.

Department of Medicine (Infectious Diseases), Dalhousie University, Halifax, Nova Scotia, Canada.

出版信息

PLoS Genet. 2025 Mar 3;21(3):e1011370. doi: 10.1371/journal.pgen.1011370. eCollection 2025 Mar.

Abstract

Vibrio species are marine prokaryotes that inhabit diverse ecological niches, colonizing abiotic and biotic surfaces. These bacteria are vital players in the global carbon cycle, assimilating billions of tonnes of chitin for carbon (and nitrogen) metabolites. Many bacterial proteins involved in the process-including chitinases, sugar transporters, and modifying enzymes-have been well studied. However, the genetic functional interplay and key drivers of Vibrio competitive survival in the presence of chitin as the dominant carbon source is not understood. To address this question, we carried out transposon sequencing (Tn-seq) to determine the genetic fitness of Vibrio parahaemolyticus mutants grown on chitin as a sole carbon source. Along with validating known Vibrio genes associated with chitin metabolism, our data newly identified vital roles for an unclassified OprD-like import chitoporin and a HexR family transcriptional regulator. Furthermore, we functionally implicated HexR in regulating multiple physiological processes involved in V. parahaemolyticus environmental survival including carbon assimilation and cell growth, biofilm formation, and cell motility. Under nutrient limiting conditions, our data revealed a requirement for HexR in filamentous cell morphology, a critical trait for V. parahaemolyticus environmental fitness. Therefore, a vital import porin and genomic regulation mediated by HexR support multiple physiological processes for Vibrio chitinolytic growth and environmental fitness.

摘要

弧菌属是海洋原核生物,栖息于各种生态位,定殖在非生物和生物表面。这些细菌是全球碳循环中的重要参与者,摄取数十亿吨几丁质以获取碳(和氮)代谢物。许多参与该过程的细菌蛋白,包括几丁质酶、糖转运蛋白和修饰酶,都已得到充分研究。然而,在几丁质作为主要碳源的情况下,弧菌竞争性生存的遗传功能相互作用和关键驱动因素尚不清楚。为了解决这个问题,我们进行了转座子测序(Tn-seq),以确定在几丁质作为唯一碳源的条件下生长的副溶血性弧菌突变体的遗传适应性。除了验证与几丁质代谢相关的已知弧菌基因外,我们的数据还新发现了一种未分类的类OprD导入几丁质孔蛋白和一个HexR家族转录调节因子的重要作用。此外,我们在功能上表明HexR参与调节副溶血性弧菌环境生存所涉及的多个生理过程,包括碳同化和细胞生长、生物膜形成以及细胞运动。在营养限制条件下,我们的数据显示丝状细胞形态需要HexR,这是副溶血性弧菌环境适应性的一个关键特征。因此,一种重要的导入孔蛋白和由HexR介导的基因组调控支持了弧菌几丁质分解生长和环境适应性的多个生理过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b59e/11906056/20d389a44007/pgen.1011370.g001.jpg

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