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Genomic and Functional Characterization of Bacillus subtilis Strain 55-7 as a Dual-Function Bioinoculant for Fungal
Yusuf Ibrahim Sadisu1, Koonsirin Buraphan1, Jiraporn Jirakkakul2
1Natural Resource Management and Sustainability Program, School of Bioresources and Technology, King Mongkut's University of Technology Thonburi, Tha Kham, Bang Khun Thian, Bangkok, 10150, Thailand.
Abstract:
Fungal pathogens and unsustainable fertilizer use pose a threat to global food security, driving demand for eco-friendly alternatives to conventional disease management and crop fertilization. This study characterizes Bacillus subtilis strain 55-7, isolated from a saline hot spring in Krabi, Thailand, as a dual-function bioinoculant for sustainable plant cultivation. Laboratory assays demonstrated potent antifungal activity against Curvularia lunata (91.9% by volatile organic compounds and 49.1% by confrontation assay) and multiple plant growth-promoting traits, including nitrogen fixation, phosphate solubilization, siderophore production, and IAA synthesis. In greenhouse trials, combining strain 55-7 with 50% reduced N-P-K fertilizer enhanced sweet corn shoot biomass by 2.9-fold and root length by 70.8% compared to the control, matching full-fertilizer performance. Whole-genome sequencing revealed 4,324 genes within a 4.06 Mb genome, and ten biosynthetic gene clusters with low similarity (16-73%) to known antimicrobial pathways, suggesting novel or uncharacterized variants of the secondary metabolites. These findings position B. subtilis strain 55-7 as a promising bioinoculant for integrated crop management, reducing chemical inputs while maintaining productivity.
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