2026· Anais da Academia Brasileira de Ciências· Vol 98 suppl 1, pp.
e20250852
· 0 citations· 72 references
Medicine
TL;DR
SNRUSA4 demonstrated efficacy in the biocontrol of bacterial and Fusarium wilt diseases, along with promoting tomato growth in pot experiments, highlighting the potential of Bacillus sp.
Abstract
Tomato cultivation worldwide faces problems with bacterial wilt and Fusarium wilt, which cause significant yield losses. This study evaluated Bacillus sp. SNRUSA4, a polylactic acid (PLA)-degrading bacterium isolated from compost, for plant growth promotion and biocontrol against these diseases. In vitro assays confirmed that SNRUSA4 effectively inhibited Ralstonia solanacearum and Fusarium oxysporum f. sp. lycopersici, the pathogens responsible for bacterial wilt and Fusarium wilt, respectively. Important traits, including phosphate solubilization, nitrogen fixation, biofilm formation, and the production of siderophore, indole-3-acetic acid, ammonia, and hydrolytic enzymes (amylase, cellulase, lipase, protease, and chitinase), which are consistent with its PLA-degrading capability, were observed in SNRUSA4. These traits contribute to both plant growth promotion and disease suppression. The seedling tray experiment indicated that the combined application of SNRUSA4 and L-tryptophan synergistically promoted tomato seedling growth, enhancing shoot and root lengths. Seed priming with SNRUSA4 enhanced tomato seedling growth as shown in fresh weight, dry weight, and vigor index. SNRUSA4 demonstrated efficacy in the biocontrol of bacterial and Fusarium wilt diseases, along with promoting tomato growth in pot experiments. Thus, this study highlights the potential of Bacillus sp. SNRUSA4 as a multi-functional strain for bridging bioplastic waste management with tomato growth promotion and disease control.
Abstract Fusarium wilt of tomato, caused by Fusarium oxysporum f. sp. lycopersici, is a major constraint to global production, causing up to 80% yield loss under favourable conditions. Plant growth-promoting rhizobacteria (PGPR) offer an eco-friendly alternative for disease management through growth promotion and pathogen suppression. This study aimed to isolate and characterise PGPR from tomato rhizosphere soils across different agro-climatic zones of Assam and evaluate their antagonistic potential under in vitro and glasshouse conditions. A total of 216 isolates were obtained, of which six showed strong antifungal activity (64–83% inhibition) in dual culture assays. Glasshouse evaluation revealed significant reduction in disease incidence (64.80–80.73%) over control. Molecular identification classified these isolates into Bacillus, Pseudomonas, Clostridium, Lysinibacillus, and Achromobacter. Biochemical analyses confirmed production of indole acetic acid, ammonia, siderophores, and phosphate-solubilizing compounds. These results demonstrate the potential of indigenous PGPR isolates as promising biocontrol agents for suppressing Fusarium wilt of tomato under greenhouse conditions. However, field validation and experiments including pathogen-free PGPR treatments are required to distinguish direct plant growth promotion from disease suppression before practical application.
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IR6 exhibited the most notable agronomic performance, increasing seedling leaf area, fruit production, and fruit size under field conditions and demonstrating antagonistic activity against Fusarium oxysporum, confirming its potential as a biocontrol agent and PGPR.
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