Area of research
Plant Science
Research interest
Research interests include Plant nutrient uptake and metabolism, Plant Micronutrient Interactions and Effects, Legume Nitrogen Fixing Symbiosis, and Aluminum toxicity and tolerance in plants and animals.
Flavonoid‐Mediated Recruitment of <i>Bradyrhizobium</i> Enhances Maize Root Development and Nutrient Acquisition in Maize–Soybean Intercropping Systems
Integrated Metabolomic and Transcriptomic Analysis Reveals Mechanisms Underlying Increased Nitrogen and Protein Concentrations by Phosphorus Deficiency in Soybean Seeds
A Phosphate‐Starvation Enhanced <i>Purple Acid Phosphatase</i>, <i>GmPAP23</i> Mediates Intracellular Phosphorus Recycling and Yield in Soybean
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
Insights into the Molecular Basis of Pollen Coat Development and Its Role in Male Sterility
GmAIR12-5 governs soybean nodule development associated with phosphorus availability
The Phosphorus-Iron Nexus: Decoding the Nutrients Interaction in Soil and Plant
Research progress on the physiological and molecular mechanisms underlying soybean aluminum resistance
<i>Bacillus</i> suppresses nitrogen efficiency of soybean–rhizobium symbiosis through regulation of nitrogen‐related transcriptional and microbial patterns
GmSTOP1-3 regulates flavonoid synthesis to reduce ROS accumulation and enhance aluminum tolerance in soybean
Crystal structure and function of a phosphate starvation responsive protein phosphatase, <scp>GmHAD1</scp>‐2 regulating soybean root development and flavonoid metabolism
GmSTOP1‐3 Increases Soybean Manganese Accumulation Under Phosphorus Deficiency by Regulating <i>GmMATE2/13</i> and <i>GmZIP6/GmIREG3</i>
Soybean variety influences the advantages of nutrient uptake and yield in soybean/maize intercropping via regulating root–root interaction and rhizobacterial composition
Border‐like cell formation mediated by SgPG1 confers aluminum resistance in <i>Stylosanthes guianensis</i>
The Stylo Cysteine-Rich Peptide SgSnakin1 Is Involved in Aluminum Tolerance through Enhancing Reactive Oxygen Species Scavenging
[Effects of different genotypes soybean and maize intercropping on soil phosphorus fractions and crop phosphorus uptake].
Arabidopsis transcription factor WRKY45 confers cadmium tolerance via activating PCS1 and PCS2 expression
Soybean (Glycine max) rhizosphere organic phosphorus recycling relies on acid phosphatase activity and specific phosphorus-mineralizing-related bacteria in phosphate deficient acidic soils
Impaired glycosylation of GmPAP15a, a root‐associated purple acid phosphatase, inhibits extracellular phytate‐P utilization in soybean
Editorial: Physiological, molecular and genetic mechanisms of abiotic stress tolerance in tropical crops
Mechanisms Underlying Soybean Response to Phosphorus Deficiency through Integration of Omics Analysis
Proteomic Analysis Dissects Molecular Mechanisms Underlying Plant Responses to Phosphorus Deficiency
A Berberine Bridge Enzyme-Like Protein, GmBBE-like43, Confers Soybean's Coordinated Adaptation to Aluminum Toxicity and Phosphorus Deficiency
Advances in Plant Lipid Metabolism Responses to Phosphate Scarcity
Proton exudation mediated by GmVP2 has widespread effects on plant growth, remobilization of soil phosphorus, and the structure of the rhizosphere microbial community
Diverse functions of GmNLA1 members in controlling phosphorus homeostasis highlight coordinate response of soybean to nitrogen and phosphorus availability
Phosphate starvation responsive GmSPX5 mediates nodule growth through interaction with GmNF‐YC4 in soybean (<i>Glycine max</i>)
A phosphate starvation responsive malate dehydrogenase, GmMDH12 mediates malate synthesis and nodule size in soybean (Glycine max)
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