Genome-Wide Identification and Evolutionary Analyses of Operon Genes in .

Genes (Basel)

College of Horticulture, Academy for Advanced Interdisciplinary Studies, Nanjing Agricultural University, Nanjing 210095, China.

Published: February 2023

AI Article Synopsis

  • Bacterial nonribosomal peptide synthases (NRPSs) synthesize various secondary metabolites that aid plant growth, with surfactin biosynthesis governed by a specific operon.
  • A study analyzing 999 bacterial genomes identified three critical genes within the surfactin operon, revealing a high degree of sequence similarity and the presence of 66 orthologous gene families.
  • Phylogenetic analysis shows these genes do not form distinct groups, indicating a close evolutionary relationship, and suggests that processes like gene duplication and mutation have influenced their functional diversity.

Article Abstract

A variety of secondary metabolites contributing to plant growth are synthesized by bacterial nonribosomal peptide synthases (NRPSs). Among them, the NRPS biosynthesis of surfactin is regulated by the operon. To explore the molecular mechanism for the diversity of surfactins produced by bacteria within the genus , we performed a genome-wide identification study focused on three critical genes of the operon-, and -from 999 genomes (belonging to 47 species). Gene family clustering indicated the three genes can be divided into 66 orthologous groups (gene families), of which a majority comprised members of multiple genes (e.g., OG0000009 had members of all three , and genes), indicating high sequence similarity among the three genes. Phylogenetic analyses also found that none of the three genes formed monophyletic groups, but were usually arranged in a mixed manner, suggesting the close evolutionary relationship among the three genes. Considering the module structure of the three genes, we propose that self-duplication, especially tandem duplications, might have contributed to the initial establishment of the entire operon, and further gene fusion and recombination as well as accumulated mutations might have continuously shaped the different functional roles of , and . Overall, this study provides novel insight into metabolic gene clusters and operon evolution in bacteria.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9956979PMC
http://dx.doi.org/10.3390/genes14020422DOI Listing

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