Area of research
Plant Science · Pollution
Research interest
Research interests include Intercropping, Biology, Agronomy, Rhizosphere, Nutrient, and Phosphorus.
Flavonoid‐Mediated Recruitment of <i>Bradyrhizobium</i> Enhances Maize Root Development and Nutrient Acquisition in Maize–Soybean Intercropping Systems
Siderophore-producing Bacillus and free-living nematodes are associated with soil suppressiveness to banana root-knot nematodes
Integrating microbial siderophores into concepts of plant iron nutrition
Genistein Exudation Drives Spatial Root Allocation and Heterogeneous Microbial Communities to Enhance Phosphorus Acquisition in Soybean‐Maize Intercropping
Belowground Interaction in Tea/Soybean Intercropping Enhances Tea Quality by Improving Soil Nutrient Dynamics
Low-phosphorus stress induces GmSTOP1-3-mediated organic acid exudation to recruit phosphate-solubilizing bacteria for organic phosphorus mineralization in soybean rhizosphere
GmAIR12-5 governs soybean nodule development associated with phosphorus availability
Microbiome convergence enables siderophore-secreting-rhizobacteria to improve iron nutrition and yield of peanut intercropped with maize
The Phosphorus-Iron Nexus: Decoding the Nutrients Interaction in Soil and Plant
<i>Bacillus</i> suppresses nitrogen efficiency of soybean–rhizobium symbiosis through regulation of nitrogen‐related transcriptional and microbial patterns
Graph attention automatic encoder based on contrastive learning for domain recognition of spatial transcriptomics
Enhanced bacterial cancer therapy delivering therapeutic RNA interference of c-Myc
From intercropping to monocropping: The effects of Pseudomonas strain to facilitate nutrient efficiency in peanut and soil
[Effects of different genotypes soybean and maize intercropping on soil phosphorus fractions and crop phosphorus uptake].
Enhanced bacterial cancer therapy delivering therapeutic RNA interference of c-Myc, a key driver of tumourigenesis.