
李昆仑 博士
邮箱:cflikunlun25@163.com
地址:生科院西202
工作经历:
2025.03-至今 南京师范大学生命科学学院,教授,博士生导师
2023.11-2025.02 美国加州大学伯克利分校植物和微生物系 Assistant Project Scientist (导师:栾升 教授)
2018.02月-2023.11美国加州大学伯克利分校植物和微生物系 博士后 (导师:栾升 教授)
2017.11-2018.02 美国贝勒医学院分子与细胞生物学系 博士后 (导师: Atul Chopra教授)
教育经历:
2012-2017 北京大学 植物学专业 理学博士(导师:邓兴旺院士、范六民教授)
2008-2011 东北农业大学 植物学专业 理学硕士
2004-2008 东北农业大学 生物技术专业 理学学士
代表性获得奖项:
2017年北京大学优秀毕业生
拟开展研究方向: 植物营养与逆境分子机制
· 逆境胁迫下拟南芥CBL-CIPK家族蛋白的翻译后调控机制
· 植物钾营养信号感知与转导的分子机制及其与环境因子的互作调控
发表文章:
• Li, KL., Xue H, Tang, RJ., and Luan S. (2025) A calcium sensor kinase pathway interacts with TORC to regulate transitions between growth and salt tolerance. Plant Cell (Accepted).
• Li, KL., Xue H, Tang, RJ., and Luan S. (2023). TORC pathway intersects with a calcium sensor kinase network to regulate potassium sensing in Arabidopsis. PNAS 120, e2316011120.
• Li, K.L., Tang, R.J., Wang, C., and Luan, S. (2023). Potassium nutrient status drives posttranslational regulation of a low-K response network in Arabidopsis. Nat Commun 14, 360.
• Tang R-J, Wang C, Li K, Luan S. (2020). The CBL-CIPK calcium signaling network: unified paradigm from 20 years of discoveries. Trends Plant Sci. 25(6):604–17.
• Tang R. J., Zhao F. G., Yang Y., Wang C., Li K., Kleist T. J., et al. (2020). A calcium signalling network activates vacuolar K+ remobilization to enable plant adaptation to low-K environments. Nat. Plants 6, 384–393.
• Chen J, Yu R, Li N, Deng Z, Zhang X, Zhao Y, Qu C, Yuan Y, Pan Z, Zhou Y, Li K, Wang J, Chen Z, Wang X, Wang X, He SN, Dong J, Deng XW, Chen H. (2023). Amyloplast sedimentation repolarizes LAZYs to achieve gravity sensing in plants. Cell. Oct 26;186(22):4788-4802.
• Li, K., Yu, R., Fan, L.M., Wei, N., Chen, H. and Deng, X.W. (2016). DELLA-mediated PIF degradation contributes to coordination of light and gibberellin signalling in Arabidopsis. Nat Commun 7:11868.
• Li, K., Gao, Z., He, H., Terzaghi, W., Fan, L.M., Deng, X.W., and Chen, H. (2015). Arabidopsis DET1 Represses Photomorphogenesis in Part by Negatively Regulating DELLA Protein Abundance in Darkness. Mol Plant 8, 622-630.
• Dong, J., Tang, D., Gao, Z., Yu, R., Li, K., He, H., Terzaghi, W., Deng, X.W. and Chen, H. (2014). Arabidopsis DE-ETIOLATED1 Represses Photomorphogenesis by Positively Regulating Phytochrome-Interacting Factors in the Dark. Plant Cell 26: 3630-3645.