Area of research
Plant Science · Molecular Biology
Research interest
Research interests include Plant-Microbe Interactions and Immunity, Fungal and yeast genetics research, Plant Molecular Biology Research, and Plant Stress Responses and Tolerance.
The HIRA-interacting histone chaperone CABIN1 negatively regulates plant immunity mediated by immune receptor gene <i>SNC1</i>
Rice false smut fungus hijacks rice lipid signalling to manipulate floret development and immunity
Light-induced OsLIKE1 phosphorylation enhances rice resistance against blast disease
MoMtg1 Acts as a Novel Transcriptional Repressor of MoSwi6 During Appressorium‐Mediated Penetration in the Rice Blast Fungus
A novel fucosylation-specific cell wall-degrading enzyme promotes Magnaporthe oryzae infection
A plant NLR receptor activates auxin signaling through Aux/IAAs-ARF19 and YUC8-TIR1/AFBs to promote callose-mediated antiviral defense
Early molecular events in the interaction between Magnaporthe oryzae and rice
Autophagy and cell wall integrity pathways coordinately regulate the development and pathogenicity through MoAtg4 phosphorylation in Magnaporthe oryzae
MoMkk1 and MoAtg1 dichotomously regulating autophagy and pathogenicity through MoAtg9 phosphorylation in <i>Magnaporthe oryzae</i>
MoRgs3 functions in intracellular reactive oxygen species perception-integrated cAMP signaling to promote appressorium formation in <i>Magnaporthe oryzae</i>
Bridging the perception: ICE1 links cold sensing and salicylic acid signaling
Peroxisome dynamics determines host-derived ROS accumulation and infectious growth of the rice blast fungus
Hydrophobic cue-induced appressorium formation depends on MoSep1-mediated MoRgs7 phosphorylation and internalization in Magnaporthe oryzae
Methionine biosynthesis enzyme MoMet2 is required for rice blast fungus pathogenicity by promoting virulence gene expression via reducing 5mC modification
Editorial: Molecular and genetic mechanisms of chilling tolerance in plants
Multiple chromatin‐associated modules regulate expression of an intracellular immune receptor gene in Arabidopsis
AIG2A and AIG2B limit the activation of salicylic acid-regulated defenses by tryptophan-derived secondary metabolism in Arabidopsis
HOS15 and HDA9 negatively regulate immunity through histone deacetylation of intracellular immune receptor NLR genes in Arabidopsis
Natural variations of growth thermo‐responsiveness determined by <scp>SAUR</scp>26/27/28 proteins in <i>Arabidopsis thaliana</i>
<scp>MOS</scp>1 functions closely with <scp>TCP</scp> transcription factors to modulate immunity and cell cycle in Arabidopsis
Chloroplast RNA-Binding Protein RBD1 Promotes Chilling Tolerance through 23S rRNA Processing in Arabidopsis