Area of research
Plant Science
Research interest
Research interests include Biology, Transporter, Mutant, Gene, Oryza sativa, and Phosphate.
Adaptive dynamics of extrachromosomal circular DNA in rice under nutrient stress
Two AP2/ERF transcription factors coregulate <i>OsHAK1</i> to modulate potassium and cesium uptake in rice
Sugar transporter modulates nitrogen-determined tillering and yield formation in rice
The transcription factor MYB110 regulates plant height, lodging resistance, and grain yield in rice
Potassium transporter OsHAK18 mediates potassium and sodium circulation and sugar translocation in rice
The rice phosphate transporter OsPHT1;7 plays a dual role in phosphorus redistribution and anther development
The rice transcription factor Nhd1 regulates root growth and nitrogen uptake by activating nitrogen transporters
A crucial role for a node‐localized transporter, HvSPDT, in loading phosphorus into barley grains
The transcription factor OsWRKY10 inhibits phosphate uptake via suppressing<i>OsPHT1;2</i>expression under phosphate-replete conditions in rice
Rice circadian clock regulator Nhd1 controls the expression of the sucrose transporter gene<i>OsSUT1</i>and impacts carbon–nitrogen balance
OsWRKY108 is an integrative regulator of phosphorus homeostasis and leaf inclination in rice
OsWRKY21 and OsWRKY108 function redundantly to promote phosphate accumulation through maintaining the constitutive expression of <i>OsPHT1;1</i> under phosphate‐replete conditions
Two ADP‐glucose pyrophosphorylase subunits, OsAGPL1 and OsAGPS1, modulate phosphorus homeostasis in rice
OsPHT1;3 Mediates Uptake, Translocation, and Remobilization of Phosphate under Extremely Low Phosphate Regimes
A nodule‐localized phosphate transporter Gm <scp>PT</scp> 7 plays an important role in enhancing symbiotic N <sub>2</sub> fixation and yield in soybean
Maintenance of phosphate homeostasis and root development are coordinately regulated by MYB1, an R2R3-type MYB transcription factor in rice
Transport properties and regulatory roles of nitrogen in arbuscular mycorrhizal symbiosis
Nitrate increases ethylene production and aerenchyma formation in roots of lowland rice plants under water stress
Three cis-Regulatory Motifs, AuxRE, MYCRS1 and MYCRS2, are Required for Modulating the Auxin- and Mycorrhiza-Responsive Expression of a Tomato GH3 Gene
Analysis of tomato plasma membrane H+-ATPase gene family suggests a mycorrhiza-mediated regulatory mechanism conserved in diverse plant species
Complex Regulation of Plant Phosphate Transporters and the Gap between Molecular Mechanisms and Practical Application: What Is Missing?
Aquaporin plays an important role in mediating chloroplastic <scp>CO<sub>2</sub></scp> concentration under high‐N supply in rice (<i>Oryza sativa</i>) plants
Signal transduction during aluminum-induced secretion of organic acids in plants
Genome-wide investigation and expression analysis suggest diverse roles and genetic redundancy of Pht1 family genes in response to Pi deficiency in tomato
Phosphate transporter OsPht1;8 in rice plays an important role in phosphorus redistribution from source to sink organs and allocation between embryo and endosperm of seeds
The Characterization of Six Auxin-Induced Tomato GH3 Genes Uncovers a Member, SlGH3.4, Strongly Responsive to Arbuscular Mycorrhizal Symbiosis
Identification of microRNAs in six solanaceous plants and their potential link with phosphate and mycorrhizal signaling
Engineering a sensitive visual‐tracking reporter system for real‐time monitoring phosphorus deficiency in tobacco
Fine characterization of OsPHO2 knockout mutants reveals its key role in Pi utilization in rice
A Constitutive Expressed Phosphate Transporter, OsPht1;1, Modulates Phosphate Uptake and Translocation in Phosphate-Replete Rice
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