In this study, researchers investigated how rhizosphere microorganisms, including specific bacteria and fungi, can regulate plant root architecture in acidic red soils by mechanisms such as hormone production and phosphorus solubilization, potentially enhancing soil productivity.
6 citations
,
February 2023 in “Plant and Soil” This study found that volatile organic compounds from Bacillus subtilis strain WM13-24 enhanced root development in Arabidopsis and its host plant through auxin signaling.
September 2023 in “Mağallaẗ baġdād li-l-ʿulūm” This study found diverse and distinct microbial communities in dry and wet habitats of Duku plants, with varying relative abundances linked to plant health and soil nutrient interactions.
October 2022 in “Research Square (Research Square)” This study found that volatile compounds from Bacillus subtilis strain WM13-24 improved root development in Arabidopsis by influencing auxin signaling.
8 citations
,
February 2022 in “PLoS ONE” This study found that Bacillus subtilis strain Ydj3 significantly enhanced sweet pepper seed germination, fruit quality, and rhizosphere bacterial composition, including increased yield and vitamin C content, in a commercial greenhouse setting.