Molecular identification and functional characterisation of efficient indigenous Azotobacter strains conferring salinity tolerance in rice (Oryza sativa L.)
Findings demonstrate that the indigenous A. vinelandii strain AztACU1 possesses multifunctional plant growth-promoting traits and effectively enhances salinity tolerance in rice, highlighting its potential as a sustainable biofertiliser for improving productivity in salt-affected agroecosystems.
Abstract
An indigenous Azotobacter vinelandii strain (AztACU1) was isolated from the rice rhizosphere and evaluated for its nitrogen-fixing ability, plant growth-promoting (PGP) traits and potential to enhance salinity tolerance in rice (Oryza sativa L. var. IR64). A total of 10 bacterial isolates were obtained from rice rhizosphere soil and characterised using morphological, biochemical and molecular (16S rRNA gene sequencing) approaches. Nitrogen-fixing efficiency was assessed using the acetylene reduction assay (ARA). Among the isolates, A. vinelandii AztACU1 exhibited the highest nitrogenase activity (131.05 ± 3.16 nmol C₂H₄ mg-1 bacterial protein hr-1). The isolate also showed superior plant growth-promoting characteristics, including siderophore production, hydrogen cyanide (HCN) production, phosphate solubilisation, 1-aminocyclopropane-1-carboxylate (ACC) deaminase activity, ammonia production and synthesis of salicylic acid, indole-3-acetic acid (IAA), gibberellic acid (GA₃) and zeatin. The 16S rRNA gene sequence of AztACU1 was deposited in the NCBI GenBank database under accession number PZ167826.1. The salinity tolerance-promoting potential of AztACU1 was evaluated in rice plants exposed to 200 mM NaCl. Under salinity stress, inoculated plants exhibited approximately 1.5-fold higher proline accumulation, 2-fold lower malondialdehyde (MDA) content, 2.5-fold lower H₂O₂ accumulation and 1.5-fold lower electrolyte leakage than uninoculated control plants. In addition, inoculated plants showed increased concentrations of endogenous phytohormones (GA₃, IAA and zeatin) and improved growth and yield attributes under saline conditions. These findings demonstrate that the indigenous A. vinelandii strain AztACU1 possesses multifunctional plant growth-promoting traits and effectively enhances salinity tolerance in rice, highlighting its potential as a sustainable biofertiliser for improving productivity in salt-affected agroecosystems.
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