Area of research
Plant Science · Molecular Biology
Research interest
Research interests include Plant Molecular Biology Research, CRISPR and Genetic Engineering, Plant Parasitism and Resistance, and Plant and animal studies.
A mortise-tenon joint system facilitates precise targeted DNA insertion and replacement in rice.
Root microbiota regulates tiller number in rice.
OsWUS-driven synthetic apomixis in hybrid rice.
Cas9-PE: a robust multiplex gene editing tool for simultaneous precise editing and site-specific random mutation in rice.
Creation of high-resistant starch rice through systematic editing of amylopectin biosynthetic genes in rs4.
LAZY5 acts in an LAZY1‐independent pathway to regulate rice tiller angle
Chemical Glycoproteomic Profiling in Rice Seedlings Reveals N-glycosylation in the ERAD-L Machinery
Shaping future sugarcane: Ideal plant architecture and breeding strategies.
LAZY5 acts in an LAZY1-independent pathway to regulate rice tiller angle.
Natural Variation of a Specific NLR Gene RGA4L Confers Strong Chilling Tolerance in Rice.
Peptide REF1 is a local wound signal promoting plant regeneration.
Regulatory mechanisms of strigolactone perception in rice
LAZY4 acts additively with the starch–statolith-dependent gravity-sensing pathway to regulate shoot gravitropism and tiller angle in rice
Genome editing of 3' UTR-embedded inhibitory region enables generation of gene knock-up alleles in plants.
Shaping rice Green Revolution traits by engineering ATG immediate upstream 5'-UTR sequences of OsSBI and OsHTD1.
Generation of OsGRF4 and OsSNAC1 alleles for improving rice agronomic traits by CRISPR/Cas9-mediated manipulation of transposable elements.
Improving Seed Shattering Resistance in Wild <i>O. alta</i> Rice with Mesoporous Silica Nanoparticle Delivery Systems.
Low phosphorus promotes NSP1–NSP2 heterodimerization to enhance strigolactone biosynthesis and regulate shoot and root architecture in rice
Low phosphorus promotes NSP1-NSP2 heterodimerization to enhance strigolactone biosynthesis and regulate shoot and root architecture in rice.
OsFTL12, a member of FT-like family, modulates the heading date and plant architecture by florigen repression complex in rice.
Loss of function of <i>SSIIIa</i> and <i>SSIIIb</i> coordinately confers high RS content in cooked rice.
Targeting a gene regulatory element enhances rice grain yield by decoupling panicle number and size.
Chilling-induced phosphorylation of IPA1 by OsSAPK6 activates chilling tolerance responses in rice.
OsMPK4 promotes phosphorylation and degradation of IPA1 in response to salt stress to confer salt tolerance in rice.
Improving the efficiency of prime editing with epegRNAs and high-temperature treatment in rice.
An engineered platform for reconstituting functional multisubunit SCF E3 ligase in vitro.
Protocol for genome editing in wild allotetraploid rice <i>Oryza alta</i>.
A route to de novo domestication of wild allotetraploid rice
A route to de novo domestication of wild allotetraploid rice.
Generating broad-spectrum tolerance to ALS-inhibiting herbicides in rice by base editing.