科研项目 |
(1) 国家自然科学基金委员会, 面上项目, 32371920, 油菜素内酯通过CiBEH1调控薄壳山核桃耐盐性的分子机理, 2024-01-01 至 2027-12-31, 50万元, 在研, 主持 (2) 国家自然科学基金委员会, 青年科学基金项目, 32101557, 单宁酶调控山核桃种皮水解单宁积累的分子机理, 2022-01-01 至 2024-12-31, 30万元, 在研, 主持 (3) 国家自然科学基金委员会, 面上项目, 32170342, 植物特有蛋白BRAF调控胞吞途径参与免疫应答的分子机制, 2022-01-01 至 2025-12-31, 58万元, 在研, 参与 (4) 国家自然科学基金委员会, 面上项目, 31970181, 植物ESCRT组分AtBRO1调控可溶性液泡蛋白运输参与种子发育的分子机制, 2020-01-01 至 2023-12-31, 58万元, 在研, 参与 |
代表性论文 |
1. Huang CY#, Li Y#*,Wang KT, Xi JW, Wang HY, Zhu DM, Jiang CY Si XL, Shi DS, Wang S, Li XB and Huang JQ* Journal of Agricultural and Food Chemistry, 2023, 71 (17), 6763-6774. 2. Wang HY#, He TJ#, Huang CY, Wang KT, Shi DS, Si XL, Xu YF, Lyu SH, Huang JQ*, Li Y*, Genome-wide identification of KCS gene family in Carya illinoinensis and their roles under abiotic stress conditions. Scientia Horticulturae, 2023, 321,112343. 3. Wang YG#, Ye HY#, Wang KT, Huang CY, Si XL, Wang JH, Xu YF, Huang YJ, Huang JQ*, Li Y*. CcMYB12 positively regulates flavonoid accumulation during fruit development in Carya cathayensis and has a role in abiotic stress responses. Int J Mol Sci. 2022, 23(24):15618. 4. Li Y#, Wang JH#, Wang KT#*, Lyu SH, Ren, LY, Huang CY, Pei D, Xing YL, Wang YG, Xu YF, Li PP, Xi JW, Si XL, Ye HY, Huang JQ*Comparison analysis of widely-targeted metabolomics revealed the variation of potential astringent ingredients and their dynamic accumulation in the seed coats of both Carya cathayensis and Carya illinoinensis. Food Chemistry, 2022, 131688. 5. Huang CY#, Li Y#*, Wang KT#, Xi JW, Xu YF, Si XL, Pei D, Lyu SH, Xia GH, Wang JH, Li PP, Ye HY, Xing YL, Wang YG, Huang JQ*. Analysis of lipidomics profile of Carya cathayensis nuts and lipid dynamic changes during embryonic development [J]. Food Chemistry, 2021, 130975. 6. Huang CY#, Li Y#*, Wang KT#, Xi JW, Xu YF, Hong JY, Si XL, Ye HY, Lyu SH, Xia GH, Wang JH, Li PP, Xing YL, Wang YG, Huang JQ*. Integrated transcriptome and proteome analysis of developing embryo revealed the mechanisms underlying the high levels of oil accumulation in Carya cathayensis Sarg[J]. Tree Physiology, 2021, 42, 684–702 7. Wang JH#, Wang KT#*, Lyu SH, Huang JQ, Huang CY, Xing YL, Wang YG, Xu YF, Li PP, Hong JY, Xi JW, Si XL, Ye HY, Li Y*. Genome-Wide Identification of Tannase Genes and Their Function of Wound Response and Astringent Substances Accumulation in Juglandaceae[J]. Front Plant Sci, 2021, 17;12:664470. 8. Xing YL#, Wang KT*#, Huang CY, Huang JQ, Zhao YZ, Si XL and Li Y*. Global Transcriptome Analysis Revealed the Molecular Regulation Mechanism of Pigment and Reactive Oxygen Species Metabolism During the Stigma Development of Carya cathayensis. Frontiers in Plant Science. 2022, 13:881394 9. Li PP#, Xu YF#, Wang KT#*, Guo WL, Gu YJ, Lyu SH, Huang JQ, Lin HP, Huang CY, Xu Z and Yan Li Y*. Genome-wide identification of TLP gene family and their roles in Carya cathayensis Sarg in response to Botryosphaeria dothidea.[J]. Frontiers in Plant Science. 2022, 13:849043 10. 赵艺蕊, 黄春颖, 王克涛, 徐一帆, 王建华, 邢语琳, 陶瞫宸, 黄坚钦, 李岩*. 山核桃实时荧光定量 PCR分析中内参基因的筛选与验证, 果树学报, 2022, 39(1): 10-21 11. 洪俊彦, 黄仁, 黄春颖, 王建华, 徐一帆, 李佩佩, 胡渊渊, 黄坚钦, 李岩*. 植物花粉直感的研究进展及展望, 植物生理学报, 2020, 56(2): 151-162. 12. Li Y, Xu SS, Wang ZW, He LC, Xu K, and Wang GX* (2018). Glucose triggers stomatal closure mediated by basal signaling through HXK1 and PYR/RCAR receptors in Arabidopsis. Journal of Experimental Botany 69: 1471-1484. |