熊立仲
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Abiotic stresses such as drought, high salinity, and extreme temperature cause extensive losses to agricultural production worldwide due to the global climate change, fresh water shortage, cropland decrease and increasing population. Plants have evolved a range of physiological, biochemical, and molecular responses to confer tolerance to these environmental stresses. Our lab is interested in understanding the molecular mechanism of how plants response to abiotic stress in rice. We applied traditional forward genetics, reverse genetics and GWAS to identifying key regulators in abiotic stress of rice. We wish to eventually improve the production of rice under these abiotic stress that can help us to solving the problem of uncorrelated increasing rate between human population and cereal yield in the future.
- A MITE variation-associated heat-inducible isoform of a heat-shock factor confers heat tolerance through regulation of JASMONATE ZIM-DOMAIN genes in rice..New Phytologist,2022,234(4):1315-1331.
- Genome-wide association study revealed genetic variations of ABA sensitivity controlled by multiple stress-related genes in rice..Stress Biology,2021,1(1):
- Combining UAV-RGB high-throughput field phenotyping and genome-wide association study to reveal genetic variation of rice germplasms in dynamic response to drought stress..New Phytologist,2021,232(1):440-455.
- Genetic analyses of lodging resistance and yield provide insights into post-Green-Revolution breeding in rice..Plant Biotechnology Journal,2021,19(4):814-829.
- Synergistic regulation of drought-responsive genes by transcription factor OsbZIP23 and histone modification in rice..Journal of Integrative Plant Biology,2020,62(6):723-729.