Area of research
Plant Science · Molecular Biology
Research interest
Research interests include Plant Molecular Biology Research, Photosynthetic Processes and Mechanisms, Genetic Mapping and Diversity in Plants and Animals, and Nitrogen and Sulfur Effects on Brassica.
BnUC1 Is a Key Regulator of Epidermal Wax Biosynthesis and Lipid Transport in Brassica napus
A small chromosomal inversion mediated by MITE transposons confers cleistogamy in <i>Brassica napus</i>
Fine mapping of the BnaC04.BIL1 gene controlling plant height in Brassica napus L
AtPER1 enhances primary seed dormancy and reduces seed germination by suppressing the ABA catabolism and GA biosynthesis in <i>Arabidopsis</i> seeds
Mapping of QTLs controlling seed weight and seed-shape traits in Brassica napus L. using a high-density SNP map
Quantitative Trait Transcripts Mapping Coupled with Expression Quantitative Trait Loci Mapping Reveal the Molecular Network Regulating the Apetalous Characteristic in Brassica napus L.
Histological, Physiological, and Comparative Proteomic Analyses Provide Insights into Leaf Rolling in <i>Brassica napus</i>
Fine mapping of a major locus controlling plant height using a high-density single-nucleotide polymorphism map in Brassica napus
Mapping a major QTL responsible for dwarf architecture in Brassica napus using a single-nucleotide polymorphism marker approach
Ectopic expression of NnPER1, a <i>Nelumbo nucifera</i> 1‐cysteine peroxiredoxin antioxidant, enhances seed longevity and stress tolerance in Arabidopsis
Fine mapping of a dominant gene conferring chlorophyll-deficiency in Brassica napus
Genome-wide transcriptomic analysis uncovers the molecular basis underlying early flowering and apetalous characteristic in Brassica napus L
Proteome Dynamics and Physiological Responses to Short-Term Salt Stress in Brassica napus Leaves
iTRAQ-based quantitative proteomics analysis of Brassica napus leaves reveals pathways associated with chlorophyll deficiency
Complete Mitochondrial Genome of Eruca sativa Mill. (Garden Rocket)
An RNA-seq transcriptome analysis of floral buds of an interspecific Brassica hybrid between B. carinata and B. napus
The Mitochondrial Genome of Soybean Reveals Complex Genome Structures and Gene Evolution at Intercellular and Phylogenetic Levels
Correction: The Mitochondrial Genome of Soybean Reveals Complex Genome Structures and Gene Evolution at Intercellular and Phylogenetic Levels
Overexpression of AtOGG1, a DNA glycosylase/AP lyase, enhances seed longevity and abiotic stress tolerance in Arabidopsis