Area of research
Plant Science · Environmental Chemistry
Research interest
Research interests include Arsenic contamination and mitigation, Advanced Photocatalysis Techniques, Plant nutrient uptake and metabolism, and Plant Micronutrient Interactions and Effects.
Knocking out OsPht1;9-1;10 genes decreases arsenic accumulation in rice (Oryza sativa) grains.
Microbial Phosphate Solubilization Promotes Rare Earth Element Accumulation in the Hyperaccumulator <i>Dicranopteris linearis</i> from China
Homologous Gene Analysis Reveals ACR3 Expansion as a Key Driver of Arsenic Hyperaccumulation in Plants
Rare earth element hyperaccumulation in vascular plants: Occurrence, mechanisms, and applications
DNA viral community enhances microbial carbon fixation capacity via auxiliary metabolic genes in contaminated soils
Homologous Gene Analysis Reveals ACR3 Expansion as a Key Driver of Arsenic Hyperaccumulation in Plants.
Microbial Phosphate Solubilization Promotes Rare Earth Element Accumulation in the Hyperaccumulator <i>Dicranopteris linearis</i> from China.
Arsenite antiporters ACR3/3;1 are critical for Se-enhanced plant growth and As accumulation in As-hyperaccumulators Pteris multifida and Pteris cretica.
Phytate-Mediated Arsenic Hyperaccumulation in <i>Pteris vittata</i>: Synthesis, Sequestration, and Exudation.
DNA viral community enhances microbial carbon fixation capacity via auxiliary metabolic genes in contaminated soils.
Root Zn sequestration transporter heavy metal ATPase 3 from Odontarrhena chalcidica enhance Cd tolerance and accumulation in Arabidopsis thaliana
Novel Phosphate Transporter-B PvPTB1;1/1;2 Contribute to Efficient Phosphate Uptake and Arsenic Accumulation in As-Hyperaccumulator <i>Pteris vittata</i>
Arsenic-Hyperaccumulator <i>Pteris vittata</i> Effectively Uses Sparingly-Soluble Phosphate Rock: Rhizosphere Solubilization, Nutrient Improvement, and Arsenic Accumulation.
Novel Phosphate Transporter-B PvPTB1;1/1;2 Contribute to Efficient Phosphate Uptake and Arsenic Accumulation in As-Hyperaccumulator <i>Pteris vittata</i>.
Plasma-Membrane-Localized Transporter NREET1 is Responsible for Rare Earth Element Uptake in Hyperaccumulator <i>Dicranopteris linearis</i>
As-hyperaccumulator Pteris vittata and non-hyperaccumulator Pteris ensiformis under low As-exposure: Transcriptome analysis and implication for As hyperaccumulation
Rare earth elements detoxification mechanism in the hyperaccumulator Dicranopteris linearis: [silicon-pectin] matrix fixation
Plasma-Membrane-Localized Transporter NREET1 is Responsible for Rare Earth Element Uptake in Hyperaccumulator <i>Dicranopteris linearis</i>.
As-hyperaccumulator Pteris vittata and non-hyperaccumulator Pteris ensiformis under low As-exposure: Transcriptome analysis and implication for As hyperaccumulation.
Phytate and Arsenic Enhance Each Other's Uptake in As-hyperaccumulator <i>Pteris vittata</i>: Root Exudation of Phytate and Phytase, and Plant Uptake of Phytate-P.
Mutation of OsLPR3 Enhances Tolerance to Phosphate Starvation in Rice
Mutation of <i>OsLPR3</i> Enhances Tolerance to Phosphate Starvation in Rice.
Enhancing Phytate Availability in Soils and Phytate-P Acquisition by Plants: A Review
Enhancing Phytate Availability in Soils and Phytate-P Acquisition by Plants: A Review.
Novel Mycorrhiza-Specific P Transporter PvPht1;6 Contributes to As Accumulation at the Symbiotic Interface of As-Hyperaccumulator <i>Pteris vittata</i>
Novel Mycorrhiza-Specific P Transporter PvPht1;6 Contributes to As Accumulation at the Symbiotic Interface of As-Hyperaccumulator <i>Pteris vittata</i>.
Selenium Increased Arsenic Accumulation by Upregulating the Expression of Genes Responsible for Arsenic Reduction, Translocation, and Sequestration in Arsenic Hyperaccumulator <i>Pteris vittata</i>.
Overexpression of OsPHT1;4 Increases Phosphorus Utilization Efficiency and Improves the Agronomic Traits of Rice cv. Wuyunjing 7
Geographical distribution of As-hyperaccumulator Pteris vittata in China: Environmental factors and climate changes
Variation in rare earth element (REE), aluminium (Al) and silicon (Si) accumulation among populations of the hyperaccumulator Dicranopteris linearis in southern China