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    首页 > 研究队伍
    姓  名: 左建儒
    职  称: 研究员
    电话/传真: 86-10-64806585
    电子邮件: jrzuo@genetics.ac.cn
    实验室主页: http://zuolab.genetics.ac.cn/
    研究方向: 植物一氧化氮信号转导与作物氮营养的调控机理

    简历介绍:

    左建儒,研究员,博士生导师,课题组长

      1984年7月毕业于西南师范学院生物系,获学士学位。1988年7月获中国科学院遗传所硕士学位。1994年12月获美国迈阿密大学博士学位,1995年进入美国洛克菲勒大学进行博士后研究。2001年国家杰出青年科学基金获得者。以通讯作者身份在Molecular Cell、Developmental Cell、Nature Communications、Plant Cell、Plant Physiology、Molecular Plant等国际主流学术期刊发表研究论文50余篇。担任Journal of Genetics & Genomics主编,《植物学报》副主编。

    研究领域:

        研究组的主要研究方向是植物一氧化氮信号转导与作物氮营养的调控机理。

        1.一氧化氮信号通路调控植物生长发育与胁迫反应的分子机理
        一氧化氮(nitric oxide, NO)是在有机体中广泛存在的一类信号分子,调控了众多生物学过程。作为信号分子,NO的生理作用主要通过取代蛋白质中特异半胱氨酸残基中巯基基团的氢离子,形成共价键相连的亚硝基硫醇(S-NO),从而调控蛋白质的生物学活性而实现。这一过程被称为S-亚硝基化(S-nitrosylation),是一种基于氧化还原、可逆的蛋白质翻译后修饰机制,参与调控几乎所有信号通路。目前对S-亚硝基化的生化和遗传调控机制了解甚少。我们将通过遗传学、生物化学、蛋白组学、细胞生物学等手段系统研究NO调控植物生长发育与胁迫反应的分子机理。

        2.调控作物氮营养的分子机理
        氮元素是所有生物的必需营养元素,而植物是动物氮元素的唯一来源。非豆科植物主要通过吸收土壤中的无机氮,转化为氨基酸等形式的有机氮(即氮元素的同化过程),而被植物利用。氮营养是作物产量形成的核心因素。提高氮利用效率不仅是作物高产的重要手段,也是农业高效、环境保护的重要因素。虽然氮营养代谢的主要生化通路已经被阐明,但其调控机理知之甚少。我们将通过遗传学、生物化学、植物生理学、组学等手段研究水稻等作物氮代谢调控的遗传基础和分子机理。

    代表论著:

    回国后发表的主要论文:
    1. Wang, D.*, Guo, H.*, Gong, X., Chen, L., Lin, H., Wang, S., Feng, T., Yi, Y., Wang, W., Yang, S., Le j., Zhang, L., Zuo, J. (2025). Nitric oxide controls stomatal development and stress responses by inhibiting MPK6 phosphorylation viaS-nitrosylation inArabidopsis. Dev Cell, DOI:10.1016/j.devcel.2025.04.001 (* These authors contributed equally)
     
    2. Sun, S.*, Jia, P.-F.*, Wang, W., Chen, L., Gong, X., Lin, H., Wu, R., Yang, W.-C., Li, H.-J., Zuo, J., Guo, H. (2025).S-Sulfenylation-mediated inhibition of the GSNOR1 activity regulates ovule development in Arabidopsis. J Genet Genomics, DOI: 10.1016/j.jgg.2025.01.007 (*These authors contributed equally)
     
    3. Ma, X., Nian, J., Yu, H., Zhang, F., Feng, T., Kou, L., Zhang, J., Wang, D., Li, H., Chen, L., Dong, G., Xie, X., Wang, G., Qian, Q., Li, J., and Zuo, J. (2023). Link glucose signaling to nitrogen utilization by the OsHXK7-ARE4 complex in rice. Dev Cell, 58: 1489-1501. 
     
    4. Jing., H., Yang, X., Emenecker, R.J., Feng, J., Zhang, J., Figueiredo, M.R.A., Chaisupa, P., Wright, R.C., Holehouse, A.S., Strader, L.C., and Zuo, J. (2023). Nitric oxide-mediatedS-nitrosylation of IAA17 protein in intrinsically disordered region represses auxin signaling. J Genet Genomics, 50: 473-485.
     
    5.  Chen, L., Sun, S., Song, C.-P., Zhou, J.-M., Li, J., and Zuo, J. (2022). Nitric oxide negatively regulates gibberellin signaling to coordinate growth and salt tolerance in Arabidopsis. J Genet Genomics, 49: 756-765.
     
    6.  Li, H., Nian, J., Fang, S., Guo, M., Huang, X., Zhang, F., Wang, Q., Zhang, J., Bai, J., Dong, G., Xin, P., Xie, X., Chen, F., Wang, G., Wang, Y., Qian, Q., Zuo,, J., Chu, J., and Ma, X. (2022). Regulation of nitrogen starvation responses by the alarmone (p)ppGpp in rice. J Genet Genomics, 49: 469-480.
     
    7.  Guo, M., Wang, Q., Zong, Y., Nian, J., Li, H., Li, J., Wang, T., Gao, C., and Zuo, J. (2021). Genetic manipulations ofTaARE1boost nitrogen utilization and grain yield in wheat. J Genet Genomics, 48: 950-953.
     
    8.  Wang, Q., Su, Q., Nian, J., Zhang, J., Guo, M., Dong, G., Hu, J., Wang, R., Wei, C., Li, G., Wang, W., Guo, H.-S., Lin, S., Qian, W., Xie, X., Qian, Q., Chen, F., Zuo, J. (2021) The Ghd7 transcription factor represses theARE1expression to enhance nitrogen utilization and grain yield in rice. Mol Plant, 14: 1012-1023.
     
    9.  Chen, L., Wu, R., Feng, J., Feng, T., Wang, C., Hu, J.,Zhan, N., Li, Y., Ma, X.,Ren, B., Zhang, J., Song, C,-P., Li, J., Zhou, J.-M., and Zuo, J. (2020). Transnitrosylation mediated by the non-canonical catalase ROG1 regulates nitric oxide signaling in plants. Dev Cell, 53: 444-457.
     
    10.  Feng, J., Chen, L., and Zuo, J. (2019). ProteinS-nitrosylation in plants: Current progresses and challenges. J Integr Plant Biol 61: 1206-1223.
     
    11.  Zhan, N.*, Wang, C.*, Chen, L., Yang, H., Feng, J., Gong, X., Ren, B., Wu, R., Mu, J., Li, Y., et al. (2018).S-Nitrosylation targets GSNO reductase for selective autophagy during hypoxia responses in plants. Mol Cell 71, 71: 142-154. (* These authors contributed equally)
     
    12.  Wang, Q.*, Nian, J.*, Xie, X.*, Yu, H., Zhang, J., Bai, J., Dong, G., Hu, J., Bai, B., Chen, L., Xie, Q., Feng, J., Yang, X., Peng, J., Chen, F., Qian, Q., Li, J., Zuo, J. (2018). Genetic variations inARE1mediate grain yield by modulating nitrogen utilization in rice. Nat Commun 9: 735. (* These authors contributed equally)
     
    13.  Hu, J.*, Yang, H.*, Mu, J., Lu, T., Peng, J., Deng, X., Kong, Z., Bao, S., Cao, X., Zuo, J. (2017). Nitric oxide regulates protein methylation during stress responses in plants. Mol Cell, 67: 702-710. (* These authors contributed equally)
     
    14.  Yang, X.*, Nian, J.*, Xie, Q., Feng, J., Zhang, F., Jing, H., Zhang, J., Dong, G., Liang, Y., Peng, J., Wang, G., Qian, Q., Zuo, J. (2016). Rice ferredoxin-dependent glutamate synthase regulates nitrogen-carbon metabolomes and is genetically differentiated betweenjaponicaandindicasubspecies. Mol Plant, 9: 1520-1534. (* These authors contributed equally)
     
    15.  Xie, Q.*, Liang, Y.*, Zhang, J., Zheng, H., Dong, G., Qian, Q., Zuo, J. (2016). Involvement of a putative bipartite transit peptide in targeting rice pheophorbide aoxygenase into chloroplasts for chlorophyll degradation during leaf senescence. J Genet Genomics, 43: 145-154. (* These authors contributed equally)
     
    16.  Bai, J.*, Zhu, X.*, Wang, Q.*, Zhang, J., Chen, H., Dong, G., Zhu, L., Zheng, H., Xie, Q., Nian, J., Chen, F., Fu, Y., Qian, Q., Zuo, J. (2015). Rice TUTOU1encodes a suppressor of cAMP receptor-like protein that is important for actin organization and panicle development. Plant Physiol, 169: 1179-1191. (* These authors contributed equally)
     
    17.  Jing, H.*, Yang, X.*, Zhang, J., Liu, X., Zheng, H., Dong, G., Nian, J., Feng, F., Xia, B., Qian, Q., Li, J., and Zuo, J. (2015). Peptidyl-prolyl isomerization targets rice Aux/IAAs for degradation during auxin signaling. Nat Commun, 6: 7395. (* These authors contributed equally)
     
    18.  Yang, H.*, Mu, J.*, Chen, L., Feng, J. Hu, J., Li, L.,Zhou, J.-M., and Zuo, J (2015).S-nitrosylation positively regulates ascorbate peroxidase activity during plant stress responses. Plant Physiol, 167: 1604-1615. (* These authors contributed equally)
     
    19.  Hu, J., Huang, X., Chen, L., Sun, X., Lu, C., Zhang, L., Wang, Y., and Zuo, J. (2015). Site-specific nitrosoproteomic identification of endogenouslyS-nitrosylated proteins in Arabidopsis. Plant Physiol, 167: 1731-1746.
     
    20.  Zuo, J., and Li, J. (2014). Molecular genetic dissection of quantitative trait loci regulating rice grain size. Annu Rev Genet, 48: 99-118.
     
    21.  Guan, C., Wang, X., Feng, J., Hong, S., Liang, Y., Ren, B., and Zuo, J. (2014). Cytokinin antagonizes abscisic acid-mediated inhibition of cotyledon greening by promoting the degradation of ABI5 protein in Arabidopsis. Plant Physiol, 164: 1515-1526.
     
    22.  Zuo, J., and Li, J. (2014). Molecular dissection of complex agronomic traits of rice: a team effort by Chinese scientists in recent years. Nat Sci Rev, 1: 253-276.
     
    23.  Ren, B.*, Chen, Q.*, Hong, S., Zhao, W., Feng, J., Feng, H., and Zuo, J. (2013). TheArabidopsiseukaryotic translation initiation factor eIF5A-2 regulates root protoxylem development by modulating cytokinin signaling. Plant Cell. 25: 3841-3857. (* These authors contributed equally)
     
    24.  Li, Y., Chen, L., Mu, J. and Zuo, J. (2013). LESION SIMULATING DISEASE1 interacts with catalases to regulate hypersensitive cell death in Arabidopsis. Plant Physiol. 163: 1059-1070.
     
    25.  Zheng, H., Li, S., Ren, B., Zhang, J., Ichii, M., Taketa, S., Tao, Y., Zuo, J., and Wang, H. (2013). LATERAL ROOTLESS2, a cyclophilin protein, regulates lateral root initiation and auxin signaling pathway in rice. Mol Plant. 6: 1719-1721.
     
    26.  Li, J.*, Mu, J.*, Bai, J.*, Fu, F., Zou, T., An, F., Zhang, J., Jing, H., Wang, Q., Li, Z., Yang, S., and Zuo, J. (2013). PARAQUAT RESISTANT 1, a Golgi-localized putative transporter protein, is involved in intracellular transport of paraquat. Plant Physiol. 162: 470-483. (* These authors contributed equally)
     
    27.  Feng, J., Wang, C., Chen, Q., Chen, H., Ren, B., Li, X., and Zuo, J. (2013).S-nitrosylation of phosphotransfer proteins represses cytokinin signaling. NatCommun. 4: 1529.
     
    28.  Mu, J., Tan, H., Hong, S., Liang, Y., and Zuo, J. (2013).Arabidopsistranscription factor genesNF-YA1,5,6and9play redundant roles in male gametogenesis, embryogenesis and seed development. Mol Plant. 6: 188-201.
     
    29.  Tan, H., Yang, X., Zhang, F., Zheng, X., Qu, C., Mu, J., Fu, F., Li, J., Guan, R., Zhang, H., Wang, G., and Zuo, J. (2011). Enhanced seed oil production in canola by conditional expression ofBrassica napus LEAFY COTYLEDON1andLEC1-LIKEin developing seeds. Plant Physiol. 156: 1577-1588.
     
    30.  Deng, Y.*, Dong, H.*, Mu, J., Ren, B., Zheng, B., Ji, Z., Yang, W.-C., Liang, Y., Zuo, J. (2010).Arabidopsishistidine kinase CKI1 acts upstream of HISTIDINE PHOSPHOTRANSFER PROTEINS to regulate female gametophyte development and vegetative growth. Plant Cell. 22: 1232–1248. (* These authors contributed equally)
     
    31.  Wang, X., Xue, L., Sun, J., Zuo. J. (2010). TheArabidopsisBE1gene, encoding a putative glycoside hydrolase localized in plastids, plays crucial roles during embryogenesis and carbohydrate metabolism. J Integr Plant Biol. 52: 273–288.
     
    32.  Chen, R., Sun, S., Wang, C., Li, Y., Liang, Y., An, F., Li, C., Dong, H., Yang, X., Zhang, J., and Zuo, J. (2009). TheArabidopsisPARAQUAT RESISTANT2gene encodes anS-nitrosoglutathione reductase that is a key regulator of cell death. CellRes. 19: 1377-1387.
     
    33.  Ren, B., Liang, Y., Deng, Y., Chen, Q., Zhang, J., Yang, X., and Zuo, J. (2009). Genome-wide comparative analysis of type-AArabidopsisresponse regulator genes by overexpression studies reveals their diverse roles and regulatory mechanisms in cytokinin signaling. Cell Res. 19: 1178-1190.
     
    34.  Wang, X.*, Niu, Q-W.*, Teng, C., Li, C., Mu, J., Chua, N.-H., and Zuo, J. (2009). Overexpression ofPGA37/MYB118andMYB115promotes vegetative-to-embryonic transition inArabidopsis. Cell Res. 19: 224-235. (* These authors contributed equally)
     
    35.  Teng, C.*, Dong, H.*, Shi, L.*, Deng, Y., Mu, J., Zhang, J., Yang, X., and Zuo, J. (2008). Serine palmitoyltransferase, a key enzyme fordenovosynthesis of sphingolipids, is essential for male gametophyte development in Arabidopsis. PlantPhysiol. 146: 1322-1332. (* These authors contributed equally)
     
    36. Mu, J., Tan, H., Zheng, Q., Fu, F., Liang, Y., Zhang, J., Yang, X., Wang, T., Chong, K., Wang, X., and Zuo, J. (2008). LEAFY COTYLEDON1 is a key regulator of fatty acid biosynthesis inArabidopsis thaliana. PlantPhysiol. 148: 1042-1054.
     
    37.  Shi, L.*, Bielawski, J.*, Mu, J.* , Dong, H., Teng, C., Zhang, J., Yang, X., Tomishige, N., Hanada, K., Hannun, Y.A., and Zuo, J. et al. (2007). Involvement of sphingoid bases in mediating reactive oxygen intermediate production and programmed cell death inArabidopsis. Cell Res. 17: 1030-1040. (* These authors contributed equally)
     
    38.  Feng, H., Chen, Q., Feng, J., Zhang, J, Yang, X., and Zuo, J (2007). Functional characterization of theArabidopsiseukaryotic translation initiation factor 5A-2 (eIF-5A-2) that plays a crucial role in plant growth and development by regulating cell division, cell growth and cell death. Plant Physiol. 144: 1531-1545.
     
    39.  Dong, H.*, Deng, Y.*, Mu, J., Lu, Q., Wang, Y., Xu, Y., Chu, C., Chong, K., Lu, C., and Zuo, J. (2007). TheArabidopsis Spontaneous Cell Death1gene, encoding a z-carotene desaturase essential for carotenoid biosynthesis, is involved in chloroplast development, photoprotection and retrograde signaling. Cell Res. 17: 458-470.(* These authors contributed equally)
     
    40.  Zheng, B.*, Deng, Y.*, Mu, J., Ji, Z., Xiang, T., Niu, Q.-W., Chua, N.-H., Zuo, J. (2006). Cytokinin affects circadian-clock oscillation in a phytochrome B- andArabidopsis Response Regulator4-dependent manner. Physiol Plant. 127: 277–292. (* These authors contributed equally)
     
    41.  Sun, J., Hirose, N., Wang, X., Wen, P., Xue, L., Sakakibara, H., and Zuo, J. (2005). TheArabidopsis SOI33/AtENT8gene encodes a putative equilibrative nucleoside transporter that is involved in cytokinin transportin planta. J Integrat Plant Biol. 47: 588-603.
     
    42.  Sun, J.*, Niu, Q.-W.*, Tarkowski, P., Zheng, B., Tarkowska, D., Sandberg, G., Chua, N.-H., and Zuo, J. (2003). TheArabidopsis AtIPT8/PGA22gene encodes an isopentenyl transferase that is involved inde novocytokinin biosynthesis. PlantPhysiol. 131:167-176. (* These authors contributed equally)
     
    43.  Zuo, J., Niu, Q., Ikeda, Y., and Chua, N.-H. (2002). Marker-free transformation: Increasing transformation frequency by the use of regeneration-promoting genes. Curr Opin Biotechnol. 13: 173-180.
     
    44.  Zuo, J., Hare, P.D., and Chua, N.H. (2006). Applications of chemical-inducible expression systems in functional genomics and biotechnology.In“Methods in Molecular Biology-ArabidopsisProtocols”, eds. Salinas, J., and Sanchez-Serrano, J.J., pp 329-342. Humana Press, NJ.
     
    45.  龚心如 詹妮 胡济梁 左建儒 陈立超 (2022) 植物一氧化氮合成代谢与信号转导研究进展与展望。中国科学: 生命科学53: 322 -333.
     
    46.  陈立超* 詹妮* 李彦莎 冯健 左建儒. (2019) 植物蛋白质S-亚硝基化修饰的检测与分析. 植物学报 54: 497-502. (* 同等贡献)
     
    47.  任勃* 王兴春* 冯健* 杨淑华 左建儒 (2012) 细胞分裂素 (pp. 40-64,许智宏 薛红卫主编 《植物激素作用的分子机理》),上海科学出版社. (* 同等贡献)
     
    48.  邓岩* 王兴春* 杨淑华 左建儒(2006)细胞分裂素: 代谢、信号转导、交叉反应与农艺性状改良. 植物学通报, 23: 478-498. (* 同等贡献)
     
    49.  张健* 徐金相* 孔英珍* 纪振动* 王兴春* 安丰英* 李超* 孙加强 张素芝 杨晓辉 牟金叶 刘新仿 李家洋 薛勇彪 左建儒 (2005) 化学诱导激活型拟南芥突变体库的构建及分析. 遗传学报 32: 1082-1088. (* 同等贡献)
     
    50.  郑丙莲 张素芝 孙加强 邓岩 左建儒(2003)细胞分裂素信号转导:已知的简单性与未知的复杂性. 科学通报 48: 885-891.
     
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