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黎家

个人简历

科研成果

教学情况

研究方向

荣誉奖励

论文专著

其他信息

个人简历

基本信息

职称:教授

办公室地址:生物二号楼608

办公室电话:0931-8912561

联系电话:0931-8915662

邮箱:lijia@lzu.edu.cn

学习经历

1995 美国弗吉尼亚理工大学 博士 (Ph.D. Virginia Tech, 1995)
1989 中国科学院植物研究所 硕士 (M.S. Institute of Botany, CAS, 1989)
1984 6163银河.net163.am生物系 学士 (B.S. Lanzhou University, 1984 )

工作经历

1984-1986年在湖南师范大学生物系教师。1990-1991年在中科院植物研究所任助理研究员。1997-2002年在美国密苏里大学哥伦比亚分校从事博士后研究。2002年8月起在美国俄克拉荷马大学植物与微生物系任助理教授,2008年5月晋升为副教授,获终身教职(tenured)。通过全球竞聘获任6163银河.net163.am院长,于2009年3月全职回国工作。长江学者特聘教授。获2013-2014年度美国弗吉尼亚理工大学农学与6163银河.net163.am杰出校友奖。

社会工作

中国植物生理学会常务理事, 植物激素专业委员会主任;中国植物学会细胞生物学专业委员会副主任;中国细胞生物学会理事; Food and Energy Security 创刊副主编;JIPB、JGG、Plant Signaling and Behavior、遗传、植物学报、植物生理学报编委;“细胞活动与逆境适应”教育部重点实验室首任主任;“植物细胞信号转导”111引智基地负责人;6163银河.net163.am校学术委员会委员,学风委员会委员,自然科学委员会副主任;植物基因组学国家重点实验室学术委员会委员;6163银河.net163.am院长等

科研成果

获外部资助的主要科研项目:

1)国家基金委重大研究计划重点项目“TCP类转录因子在调控油菜素内酯生物合成及信号转导中的作用机理”, 90917019,2010.1.1到2013.12.31, 课题负责人:黎家

2)国家基金委重大研究计划集成项目“油菜素内酯生物合成调控的分子机理”,91117008, 2012.1.1到2013.12.31,课题负责人: 黎家

3)科技部国家基础研究发展计划“高等植物蛋白质修饰与降解调控的分子机理研究”项目(项目负责人:谢旗)中的课题之一“植物蛋白的修饰的重要过程与调控机理”,2011CB915401,2011.1.1到2015.12.31, 课题负责人:黎家

4)国家基金委重大研究计划集成项目“BAK1调控油菜素内酯信号转导及器官发育的分子机制”,91317311,2014.1.1到2015.12.31,课题负责人: 黎家

5)国家基金委面上项目“两组类受体激酶调控拟南芥根生长发育的分子机理“, 31470380,2015.1.1到2018.12.31

6)国家基金委重点项目 “植物类受体激酶调控根向水性反应的分子机理“,31530005,2016.1.1到2020.12.31,课题负责人:黎家

7)重点国际合作项目“受体激酶RLK68及RLK165调控拟南芥侧根发生的分子机制”,31720103902, 2017.1.1到2021.12.31, 课题负责人:黎家

8) 国家基金委重点项目 “细胞分离素调控植物向水性生长的分子机制”, 32030005,2021.1.1-2025.12.31,课题负责人:黎家

教学情况

给研究生讲授“Plant Hormones”(英文), 给本科生讲授生命科学导读、部分植物生理学课程; 目前指导3名博士后,15名博士研究生、12名硕士研究生。

本课题组每年都有一定名额对外公开招收植物学细胞生物学方向硕士及博士研究生,欢迎广大优秀学子积极与我联系(lijia@lzu.edu.cn)并报考或保送做我的学生。也热忱欢迎各位有志于植物细胞信号转导研究的年轻学者作为博士后加盟本团队。

研究方向

本实验主要关注类受体激酶(Receptor-like Protein Kinases)介导的植物细胞信号转导途径,正在进行的有以下三个方面的工作,这些工作大都与类受体激酶相关,是类受体激酶工作的延伸与拓展:

1 )油菜素内酯的信号传递、合成、及代谢途径的分子调控机制 (Brassinosteroid Signal Transduction and Homeostasis): 菜素内酯是一类重要的植物激素,参与调控植物生长的各个阶段,阻断油菜素内酯的生物合成或信号转导都会使植物变得极其矮小,并表现出雄性不育、推迟衰老、在黑暗培养时呈现出去黄化等的异常表型。油菜素内酯的受体是一个跨膜的亮氨酸富集型受体激酶,它的胞外特定结构域能特意与油菜素内酯相互作用从而启动胞内一系列磷酸化、脱磷酸化反应,把信号一步步传到细胞核中,最终改变基因的表达。在过去的近二十年中,本研究小组利用激活标签遗传学手段成功地分离到多个关键蛋白 ( 比如: BRS1 , BAK1 , AtSERK1 , BRL1 , BRL3 , BEN1 等 ) ,研究表明它们在油菜素内酯的信号转导、合成、及代谢调控中起重要作用。利用经典遗传学及生物化学手段,本实验室证明了BAK1在油菜素内酯信号早期阶段起必不可少的作用。现阶段的工作集中在利用遗传、生化、蛋白组学等方法继续发现参与油菜素内酯信号转导、合成、及代谢调控的新蛋白,并对以往实验室已发现蛋白所参与的具体作用机制作深入细致的探索。在工作中我们也难免会涉及到其他植物激素在调控植物的生长发育及逆境适应方面的功能,如生长素、细胞分裂素及多肽激素等。
2 )拟南芥类受体蛋白激酶的生物学功能 (Functional Analyses of LRR-RLKs): 胞与细胞,细胞与环境之间的信号转导是高等植物生长发育的细胞生物学基础,位于细胞表面的受体激酶在信号转导过程中起至关重要的作用,它们通常作为信号转导的原初受体,接受位于细胞间隙的小分子化合物(即所谓的信号分子),信号分子可以来自于周围的植物细胞或环境中的微生物等。过去的近二十年时间里本实验室做了大量的前期工作,克隆了拟南芥基因组中全部223个编码亮氨酸富集型受体蛋白激酶的大多数全长 cDNA(Gou et al., 2010, BMC Genomics),克隆并建立了全部223个LRR-RLK的promoter-GUS转基因植株 (Wu et al., 2016, Molecular Plant),对它们在不同发育阶段的组织水平的转录表达进行了详细的研究,对进一步了解它们真正的生物学功能奠定了良好的基础。目前本实验室正在利用各种遗传学、分子生物学及组学手段对223个LRR-RLKs中尚未揭示功能的分子开展生物学功能研究,已有多个尚未研究过的LRR-RLKs的功能被鉴定到。
3 )根生物学 (Root Biology): 对223个LRR-RLKs表达图谱的分析发现大多数LRR-RLKs在根中表达,表达模式也不尽相同,说明它们在调控根的发育及环境适应中起重要作用。近年来,实验室围绕LRR-RLKs如何调控植物根的发育及环境介导的可塑性生长方面做了一些工作,有了一些意想不到的发现。比如,发现一组LRR-RLKs, RGIs,能作为RGF1的受体参与根尖stem cell niche的维持;另外,发现两个受体激酶MUS及MUL在调控侧根发育的早期起重要作用;发现有一个受体激酶参与根的向水性生长,并由此发现根尖细胞分裂素的不对称分布是根向水性生长的决定因素。更多的工作还在进行中。

荣誉奖项

6163银河.net163.am第二届研究生“十佳导学团队”(2020);甘肃省优秀专家(2015);Virginia Tech农学与6163银河.net163.am杰出校友奖(2013-2014年度); 6163银河.net163.am“师德标兵”(2013);国家特聘专家(2012);科学中国人(2011年)年度人物奖; 甘肃省领军人才(2010年,2014年,2018年);  6163银河.net163.am“萃英”特聘教授(2009);长江学者特聘教授(2008);Oklahoma 大学青年教师奖(2003)。

论文专著

Publications (* Corresponding author):


  1. Chang, J., Li, X., Shen, J., Hu, J., Wu, L., Zhang, X., and Li, J.*(2024). Defects in the cell wall and its deposition caused by loss-of-function of three RLKs alter root hydrotropism in Arabidopsis thaliana. Nature Communications 15(1), 2648.
  2. Wei, Z., Zhang, H., Fang, M., Lin, S., Zhu, M., Li, Y., Jiang, L., Cui, T., Cui, Y., Kui, H., Peng, L., Gou, X.,and Li, J.* (2023) The Dof transcription factor COG1 is a key regulator of plant biomass by promoting photosynthesis and starch accumulation. Molecular Plant 16(11), 1759–1772..
  3. Zhang, J., Chen, W., Li, X., Shi, H., Lv, M., He, L., Bai, W., Cheng, S., Chu, J., He, J., Gou, X., and Li, J.* (2023) Jasmonates regulate apical hook development by repressing brassinosteroid biosynthesis and signaling. Plant Physiology 193(2), 1561–1579.
  4. Chen, C., He, G., Li, J., Perez-Hormaeche, J., Becker, T., Luo, M., Wallrad, L., Gao, J., Li, J., Pardo, J.M., Kudla, J.*, and Guo Y.* (2023) A salt stress-activated GSO1-SOS2-SOS1 module protects the Arabidopsis root stem cell niche by enhancing sodium ion extrusion. EMBO Journal 42(13), e113004.
  5. Liu, B., Feng, C., Fang, X., Ma, Z., Xiao, C., Zhang, S., Liu, Z., Sun, D., Shi, H., Ding, X., Qiu, C., Li, J., Luan, S., Li, L., and He, K.* (2023) The anion Channel SLAH3 interacts with potassium channels to regulate nitrogen-potassium homeostasis and membrane potential in Arabidopsis. Plant Cell 35(4), 1259-1280.
  6. Wang, J., Wang, G., Liu, W., Yang, H., Wang, C., Chen, W., Zhang, X., Tian, J., Yu, Y., Li, J., Xue, Y., Kong, Z.* (2023) Brassinosteroid signals cooperate with katanin-mediated microtubule severing to control stamen filament elongation. EMBO Journal 42(4), e111883.
  7. Li, M., Lv, M., Wang, X., Cai, Z., Yao, H., Zhang, D., Li, H., Zhu, M., Du, W., Wang, R., Wang, Z., Kui, H., Hou, S., Li, J., Yi, J., Gou, X.* (2023) The EPFL-Erf-SERK signaling controls integument development in Arabidopsis. New Phytologist 238(1), 186-201.
  8. Zhu, M., Tao, L., Zhang, J., Liu, R., Tian, H., Hu, C., Zhu, Y., Li, M., Wei, Z., Yi, J., Li, J., Gou, X.* (2022) The type-B response regulators ARR10, ARR12, and ARR18 specify the central cell in Arabidopsis. Plant Cell 34(12), 4714-4737.
  9. Shi, H., Li, X., Lv, M., Li, J.* (2022) BES1/BZR1 family transcription factors regulate plan development via brassinosteroid dependent and independent pathways. International Journal of Molecular Sciences 23(17), 10149.
  10. Li, X., Zhang, J., Shi, H., Li, B., and Li, J.* (2022) Rapid responses: Receptor-like kinases directly regulate the functions of membrane transport proteins in plants. Journal of Integrative Plant Biology 64(7), 1303-1309.
  11. Li, M., Liu, C., Hepworth, S.R., Ma, C., Li, H., Li, J., Wang, S-M, and Yin, H.* (2022) SAUR15 interaction with BRI1 activates plasma membrane H+-ATPase to promote organ development of Arabidopsis. Plant Physiology 189(4), 2454-2466.
  12. Wang, Y., Chen, W., Ou, Y., Zhu, Y., and Li, J.* (2022) Arabidopsis ROOT ELONGATION RECEPTOR KINASE negatively regulate root growth putatively via altering cell wall remodeling gene expression. Journal of Integrative Plant Biology 64(8), 1502-1513.
  13. Cao, J., Liang, Y., Yan, T., Wang, X., Zhou, H., Chen, C., Zhang, Y., Zhang, B., Zhang, S., Liao, J., Cheng, S., Chu, J., Huang, X., Xu, D., Li, J., Deng, X.W., Lin, F.* (2022) The photomorphogenic repressors BBX28 and BBX29 integrate light and brassinosteroid signaling to inhibit seedling development in Arabidopsis. Plant Cell 34(6), 2266-2285.
  14. Ou, Y., Tao, B., Wu, Y., Cai, Z., Li, H., Li, M., He, K., Gou, X., Li, J.* (2022) Essential roles of SERKs in the ROOT MERISTEM GROWTH FACTOR-mediated signaling pathway. Plant Physiology 189(1), 165-177.
  15. Wang, W., Hu, C., Li, X., Zhu, Y., Tao, L., Cui, Y., Deng, D., Fan, X., Zhang, H., Li, J., Gou, X.*, Yi, J.* (2022) Receptor-like cytoplasmic kinases PBL34/35/36 are required for CLE peptide-mediated signaling to maintain SAM and RAM homeostasis in Arabidopsis. Plant Cell 34(4), 1289-1307.
  16. Fang, Y., Chang, J., Shi, T., Luo, W., Ou, Y., Wan, D.*, Li, J.* (2021) Evolution of RGF/GLV/CLEL peptide hormones and their roles in land plant growth and regulation. International Journal of Molecular Sciences 22(24), 13372.
  17. Hu, C., Zhu, Y., Cui, Y., Zeng, L., Li, S., Meng, F., Huang, S., Wang, W., Kui, H., Yi, J., Li, J., Wan, D., Gou, X.* (2021) A CLE-BAM-CIK signaling module controls root protophloem differentiation in Arabidopsis. New Phytologist 233(1), 228-296.
  18. Zhang, H., Li, X., Wang, W., Li, H., Cui, Y., Zhu, Y., Kui, H., Yi, J., Li, J., Gou, X.* (2021) SERKs regulate embryoic cuticle integrity through the TWS-GSO1/2 singlaing pathway in Arabidopsis. New Phytologist 233(1), 313-328.
  19. Chang, J., Li, J.* (2022) Methods to Quantify Cell Division and Hormone Gradients During Root Tropisms. In: Blancaflor E.B. (eds) Plant Gravitropism. Methods in Molecular Biology, vol 2368. Humana, New York, NY. https://doi.org/10.1007/978-1-0716-1677-2_5
  20. Feng, Z., Shi, H., Lv, M., Ma, Y., Li, J.* (2021) Protein farnesylation negatively regulates brassinosteroid signaling via reducing BES1 stability in Arabidopsis thaliana. Journal of Integrative Plant Biology 63 (7), 1353-1366.
  21. Sun, D., Fang, X., Xiao, C., Ma, Z., Huang, X., Su, J., Li, J., Wang, J., Wang, S., Luan, S., He, K.* (2021) Kinase SnRK1.1 regulates nitrate channel SLAH3 engaged in nitrate-dependent alleviation of ammonium toxicity. Plant Physiology 186 (1), 731-749.
  22. Fang, X., Liu, B., Shao, Q., Huang, X., Li, J., Lun, S.*, and He, K.* (2021) AtPiezo plays an important role in root cap mechanotrasdiction. International Journal of Molecular Sciences 22(1), 467.
  23. Ou, Y., Kui, H., Li, J.* (2021) Receptor-like kinases in root development: current progress and future directions. Molecular Plant 14(1), 166-185.
  24. Chen, L., Zhao, M., Wu, Z., Chen, S., Rojo, E., Luo, J., Li, P., Zhao, L., Chen, Y., Deng, J., Cheng, B., He, K., Gou, X., Li, J., Hou, S.* (2020) RNA polymerase II associated proteins regulate stomatal development through directly interacting with the stomatal transcription factors in Arabidopsis thaliana. New Phytologist 230(1), 171-189.
  25. Wu, Y., Gao, Y., Zhan, Y., Kui, H., Liu, H., Yan, L., Kemmerling, B., Zhou, J-M., He, K.*, Li, J.* (2020) Loss of the common immune coreceptor BAK1 leads to NLR-dependent cell death. Proc. Natl. Acad. Sci. USA 117(43), 27044-27053.
  26. Wei, Z. and Li, J.* (2020) Regulation of Brassinosteroid homeostasis in higher plants. Frontiers in Plant Science 11, 583622.
  27. Lu, X., Shi, H., Ou, Y., Cui, Y., Chang, J., Peng, L., Gou, X., He, K., Li, J.* (2020) RGF1-RGI1, a peptide-receptor complex, regulates Arabidopsis root meristem development via a MPAK signaling cascade. Molecular Plant 13(11), 1594-1607.
  28. Yin, H., Li, M., Lv, M., Hepworth, S.R., Li, D., Ma, C., Li, J.*, Wang, S.* (2020) SAUR15 promotes lateral and adventitious roo development via activating H+-ATPase and auxin biosynthesis. Plant Physiology 184(2), 837-851.
  29. Liu, J., Li, J., Shan, L.* (2020) SERKs. Current Biology 30(7), R293-R294.
  30. Lv, M. and Li, J.* (2020) Molecular Mechanisms of Brassinosteroid-Mediated Responses to Changing Environments in Arabidopsis. International Journal of Molecular Sciences 21(8), 2737.
  31. Xun, Q., Wu, Y., Li, H., Chang, J., Ou, Y., He, K., Gou, X., Tax, F. E., Li, J.* (2020) Two receptor-like protein kinases, MUSTACHES and MUSTACHES-LIKE, regulate lateral root development in Arabidopsis thaliana, New Phytologist 227(4), 1157-1173.
  32. Gou, X. and Li, J.* (2020) Paired receptor and coreceptor kinases perceive extracellular signals to control plant development. Plant Physiology 182(4), 1667-1681.
  33. Chang, J., Li, X., Fu, W., Wang, J., Yong, Y., Shi, H., Ding, Z., Kui, H., Gou, X., He, K., Li, J.* (2019) Asymmetric distribution of cytokinins determines root hydrotropism in Arabidopsis thaliana. Cell Research 29(12), 984-993.
  34. Chen, W., Lv, M., Wang, Y., Wang, P., Cui, Y., Li., M., Wang, R., Gou, X., Li., J.* (2019) BES1 is activated by EMS1-TPD1-SERK1/2-mediated signaling pathway to control tapetum development in Arabidopsis thaliana. Nature Communications 10(1), 4164.
  35. Zhou, Y., Xun, Q., Zhang, D., Lv, M., Ou, Y., and Li, J.* (2019) TCP transcription factors associate with PHYTOCHROME INTERACTING FACTOR 4 and CRYPTOCHROME 1 to regulate thermomorphogenesis in Arabidopsis thaliana. iScience 15, 600-610.
  36. Li, J., Li, C. (2019) Seventy-year major research progress in plant hormones by Chinese scholars (in Chinese). Sci Sin Vitae 49, 1227-1281.
  37. Li, H., Cai, Z., Wang, X., Li, M., Cui, Y., Cui, N., Yang, F., Zhu, M., Zhao, J., Du, W., He, K., Yi, J., Tax, F.E., Hou, S., Li, J., Gou, X.* (2019) SERK receptor-like kinases control division patterns of vascular precursors and ground tissue stem cells during embryo development in Arabidopsis. Molecular Plant 12(7), 984-1002.
  38. Wu, Z.L., Chen, L., Yu, Q., Zhou, W.Q., Gou, X.P., Li, J., Hou, S.W.* (2019) Multiple transcriptional factors control stomata development in rice. New Phytologist 223(1), 220-232.
  39. Lv, M., Li, M., Chen, W., Wang, Y., Sun, C., Yin, H., He, K., and Li, J.* (2018) Thermal-enhanced bri1-301 instability reveals a plasma membrane protein quality control system in plants. Frontiers in Plant Science 9, 1620.
  40. Cui, Y., Hu, C., Zhu, Y., Cheng, K., Li, X., Wei, Z., Xue, L., Lin, F., Shi, H., Yi, J., Hou, S., He, K., Li, J., Gou, X.* (2018) CIK Receptor kinases determine cell fate specification during early anther development in Arabidopsis. Plant Cell 30(10), 2383-2401.
  41. Li, J. * (2018) Cell Signaling leads the way. Journal of Integrative Plant Biology 60(9), 743-744.
  42. Wei, Z. and Li, J.* (2018) Receptor-like protein kinases: key regulators controlling root hair development in Arabidopsis thaliana. Journal of Integrative Plant Biology 60(9), 841-850.
  43. Hu, C., Zhu, Y., Cui, Y., Cheng, K., Liang, W., Wei, Z., Zhu, M., Yin, H., Zeng, Li, Xiao, Y., Lv, M., Yi, J., Hou, S., He, K., Li, J., Gou, X.* (2018)  A group of receptor kinases are essential for CLAVATA signaling to maintain stem cell homeostasis. Nature Plants 4(4), 205-211.
  44. An, Z., Liu, Y., Ou, Y., Li, J., Zhang, B., Sun, D., Sun, Y., Tang, W.* (2018) Regulation of the stability of RGF1 receptor by the ubiquitin-specific proteases UBP12/UBP13 is critical for root meristem maintenance. Proc. Natl. Acad. Sci. USA 115(5), 1123-1128.
  45. Zhou, Y., Zhang, D., An, J., Yin, H., Fang, S., Chu, J., Zhao, Y., and Li, J.* (2018) TCP transcription factors regulate shade avoidance syndrome via directly mediating the expression of both PHYTOCHROME INTERACTING FACTORs and auxin biosynthetic genes. Plant Physiology 176(2), 1850-1861.
  46. Cheng, X., Gou X., Yin, H., Mysore, K.S., Li, J.*, and Wen, J.* (2017) Functional characterization of brassinosteroid receptor MtBRI1 in Medicago truncatula. Scientific Reports 7(1), 9327.
  47. Ou, Y., and Li, J.* (2017) Three divergent approaches identified the same RGF1 receptors in Arabidopsis thaliana. Sci China Life Sci 60, 1040-1043.
  48. Sun, C., Yan, K., Han, J-T., Tao, L., Lv, M-H., Shi, T., He, Y-X., Wierzba, M., Tax, F.E., Li, J.* (2017) Scanning for new BRI1 receptor mutations via TILLING analysis. Plant Physiology 174(3), 1881-1896.
  49. Wei, Z., Yuan,T., Tarkowská,D., Kim,J., Nam,H.G.,Novák,O., He, K., Gou, X. and Li, J.* (2017) Brassinosteroid biosynthesis is modulated via a transcription factor cascade of COG1, PIF4 and PIF5. Plant Physiology 174(2), 1260-1273.
  50. Gao, Y., Wu, Y., Du, J., Zhan, Y., Sun, D., Zhao, J., Zhang, S., Li, J. and He, K.* (2017) Both light-induced SA accumulation and ETI mediators contribute to the cell death regulated by BAK1 and BKK1. Frontiers in Plant Science 8, 622.
  51. Chang, J.K., Li, J.* (2017) Plants use an atypical strategy to perceive strigolactones. Chin Bull Bot 52, 123−127.
  52. Sun, C., Li, J.* (2017) Biosynthesis, catabolism, and signal transduction of brassinosteroids. Plant Physiology Journal 53, 291-307.
  53. Wang, H., Wei, Z., Li, J., Wang, X. (2017) Brassinosteroids. In: Li, J., Li., C., and Smith, S.M. (eds) Hormone Metabolism and Signaling in Plants. Woodhead Publishing, Elsevier
  54. Wei, Z., Gou, X., Li, J.* (2016) Brassinosteroids. In: eLS. John Wiley & Sons, Ltd: Chichester.DOI:10.1002/9780470015902.a0020092.pub2
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其他信息

联系地址 (CONTACT INFORMATION):

Dr. Jia Li, School of Life Sciences, Lanzhou University, 222 South Tianshui Road, Lanzhou 730000, People's Republic of China. Email: lijia@lzu.edu.cn; Office phone: 0931-8915662

最新更新时间: 2022-11-22