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Published on: September 27, 2016
Efficient Breeding and Metabolomic Characterization of Bacillus safensis Mutants with High-Antagonistic Activity
Longfeng Wei1, Hang Pan1, Xinhui Xing2,3,4
1Key Laboratory of Plant Resource Conservation and Germplasm Innovation in Mountainous Region (Ministry of Education), College of Life Sciences/Institute of Agro-bioengineering, Guizhou University, Guiyang 550025, China.
Abstract:
The limited antimicrobial efficacy of biocontrol microorganisms often constrains their practical implementation in crop disease management. To address this challenge, we developed an integrated high-throughput screening platform combining atmospheric and room temperature plasma (ARTP) mutagenesis with droplet microfluidics, which efficiently selected Bacillus safensis mutants with high-antagonistic activity from ∼106 variants by low fluorescence screening of GFP-labeled Erwinia carotovora Ecc15 (GFP-Ecc15) in microdroplets. The optimal mutant R1 demonstrated enhanced broad-spectrum antagonistic activity against Ecc15 and nine phytopathogens. Untargeted metabolomic analysis identified quinolinic acid and clindamycin as key synergistic antimicrobial metabolites in R1. HPLC and in vitro assays confirmed their biosynthesis and synergistic efficacy, contributing to R1's improved antimicrobial performance. This study represents the first report of microbial-derived clindamycin biosynthesis and provides systematic characterization of quinolinic acid's antimicrobial properties. Our work provides a feasible strategy for breeding high-performance biocontrol strains while offering mechanistic insights into metabolite-mediated antagonism, advancing the design of next-generation microbial pesticides.

