Area of research
Plant Science
Research interest
Research interests include Aluminum toxicity and tolerance in plants and animals, Plant Stress Responses and Tolerance, Plant Micronutrient Interactions and Effects, and Plant Molecular Biology Research.
Establishment and application of a loop-mediated isothermal amplification method based on MetAP2 gene for the detection of Nosema bombycis in silkworms (Bombyx mori)
Border‐like cell formation mediated by SgPG1 confers aluminum resistance in <i>Stylosanthes guianensis</i>
Molecular characterization and phylogenetic analyses of MetAP2 gene and protein of Nosema bombycis isolated from Guangdong, China
Co-chaperoning of chlorophyll and carotenoid biosynthesis by ORANGE family proteins in plants
Glutathione is involved in selenium detoxification and suppresses the selenate-induced SULTR1;1 gene expression in plants
Sulfate availability and soil selenate adsorption alleviate selenium toxicity in rice plants
The plasma membrane-localized OsNIP1;2 mediates internal aluminum detoxification in rice
The combination of sesamol and clofibric acid moieties leads to a novel potent hypolipidemic agent with antioxidant, anti-inflammatory and hepatoprotective activity
An exclusion mechanism is epistatic to an internal detoxification mechanism in aluminum resistance in Arabidopsis
An exclusion mechanism is epistatic to an internal detoxification mechanism in aluminum resistance in Arabidopsis
A unique aluminum resistance mechanism conferred by aluminum and salicylic-acid-activated root efflux of benzoxazinoids in maize
An exclusion mechanism is epistatic to an internal detoxification mechanism in aluminum resistance in Arabidopsis
Adaption of Roots to Nitrogen Deficiency Revealed by 3D Quantification and Proteomic Analysis
Aluminum-activated root malate and citrate exudation is independent of NIP1;2-facilitated root-cell-wall aluminum removal in <i>Arabidopsis</i>
NIP1;2 is a plasma membrane-localized transporter mediating aluminum uptake, translocation, and tolerance in <i>Arabidopsis</i>
Plant Adaptation to Acid Soils: The Molecular Basis for Crop Aluminum Resistance
<i>Arabidopsis</i> OR proteins are the major posttranscriptional regulators of phytoene synthase in controlling carotenoid biosynthesis
The role of aluminum sensing and signaling in plant aluminum resistance
Natural variation underlies alterations in Nramp aluminum transporter ( <i>NRAT1</i> ) expression and function that play a key role in rice aluminum tolerance
Low pH, Aluminum, and Phosphorus Coordinately Regulate Malate Exudation through <i>GmALMT1</i> to Improve Soybean Adaptation to Acid Soils
Targeted expression of Sb<scp>MATE</scp> in the root distal transition zone is responsible for sorghum aluminum resistance