Aug 2026· Pest Management Science· 0 citations· 55 references
Medicine
TL;DR
The Streptomyces strain Strep_22 represents a highly promising, dual-action biocontrol agent that effectively protects wheat and tomato crops against devastating fungal infections while simultaneously stimulating plant vegetative growth and development.
Abstract
Background
Modern agriculture urgently requires sustainable alternatives to synthetic chemical pesticides to mitigate crop yield losses while protecting human health and the environment. This study evaluated the biocontrol potential and plant growth-promoting (PGP) traits of three newly isolated Streptomyces strains (Strep_22, Strep_23, and Strep_24) against severe soilborne fungal pathogens affecting durum wheat (Triticum durum Desf.) and tomato (Solanum lycopersicum L.), two economically crucial crops.
Results
In in vitro dual-culture assays, strain Strep_22, identified as Streptomyces netropsis, demonstrated the highest overall efficacy, achieving a mean fungal growth inhibition rate of 91.52% and near-complete suppression of critical pathogens such as Agroathelia rolfsii, Fusarium solani, and Sclerotinia sclerotiorum. Kinetic modelling confirmed that Strep_22 significantly reduced fungal growth rates. Based on these outstanding findings, Strep_22 was selected for in vivo glasshouse validation. Glasshouse trials demonstrated that treatments with this strain significantly reduced disease incidence and severity (such as root rot and wilt) in both wheat and tomato crops. Concurrently, Strep_22 exhibited strong PGP traits, inducing a significant increase in plant biomass, shoot height, and root development compared to untreated, infected controls.
Overall, in planta efficacy was highly variable compared to the strong in vitro inhibition, Nevertheless, selected commercial strains show clear potential to mitigate severe disease symptoms under high R. solani pressure.
F. Porsche, Marwin S. Nagel, Anja Frank et al.· Scientific Reports· 0 citations
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.
L. Giri, Daisy Senapoty, P. Kaman et al.· Archives of Phytopathology a...· 0 citations
A functionally diverse seed endophytic community with complementary roles in plant growth and disease suppression is revealed and rational selection and combination of complementary strains, particularly N. cucumis WSSR17 (growth promotion), C. erzurumensis WSSR11 (biocontrol), and P. poae WSSR12 (multifunctional nutrient mobilization) could enable the development of targeted, multi-strain bioinoculant strategies for wheat.
Indigenous rhizospheric Streptomyces possess complementary plant growth-promoting and biocontrol characteristics that support their use as multifunctional bioinoculants.
Pronounced cultivar × treatment interactions confirmed that PGPR efficacy is modulated by host genetic background, with resistant varieties carrying pyramided Xa resistance genes showing additive responses to biological treatment.
S. Naqvi, Ateeq ur Rehman, Ummad ud Din Umar· World Journal of Microbiolog...· 0 citations
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