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华南农业大学生命科学学院导师教师师资介绍简介-彭新湘

本站小编 Free考研考试/2021-05-21

博士、研究员/博士生导师,1962年9月生 
所属单位:生物化学系


通讯地址:广州市华南农业大学生命科学学院


邮编:510642
Email:xpeng@scau.edu.cn




学 历

1987.3-1989.12:华南农业大学植物生理学学习攻取理学博士学位
1983.9-1986.7:华南农业大学植物生理学专业学习攻取理学硕士学位
1979.9-1983.7:湖南农学院茶学专业学习攻取农学学士学位

工作经历
1989.12—现在:华南农业大学生命科学学院工作,分别于1990、1993、1997年晋升为助研、副研、研究员;曾任生命科学学院院长,华南农业大学研究生院常务副院长,华南农业大学发展规划处处长,现任华南农业大学农学院执行院长。
1983.8-1987.3:湖南师范大学生物系助教
期间国外研究经历:
2007.8-2008.2:美国康奈尔大学高访
2001.11-2002.2:美国旧金山州立大学高访
1995.9-1996.9:菲律宾国际水稻研究所博士后
1991.9-1993.12:菲律宾国际水稻研究所博士后

研究领域:植物高光效与抗逆性机理
1.植物高光效机理及其利用:采用多基因转化技术分流光呼吸乙醇酸代谢,构建C3植物光合CO2浓缩机制,旨在提高作物光合效率、产量及其抗逆性。
2.植物活性氧信号发生与抗逆性:植物体内H2O2总量的70%来源于光呼吸代谢,当植物处于干旱、高温等逆境时这一比例会更高。我们的研究表明,光呼吸关键酶GLO与CAT的互作/解离可作为产生H2O2波的调控开关,是一种新的H2O2信号发生机制。将致力于深入解析这种新开关机制的调控分子机理及其生物学功能。
3.植物草酸代谢调控机理:草酸在植物抗重金属毒害、耐低磷、提高N素利用效率等过程中起重要作用,但过量存在于食品中却对人体有害,因此阐明植物草酸代谢及其调控机理是合理有效利用草酸功能的关键。本课题组在该领域已有三十多年的研究积累,目前正致力于草酸合成的亚细胞定位及其代谢关键基因克隆与功能分析。
上述研究旨在最终获得高光效及高抗(如抗旱,抗高温高光、抗重金属)作物新材料,为作物分子改良育种提供指导。

近年主持课题
1. 国家重点研发计划子课题子项目“植物高光效回路的设计与系统优化—新型高效固碳回路的设计与优化” (2020YFA**,2020.11-2025.10,190万元)
2. 广东省基础与应用基础研究重大项目(子任务) “水稻高产优质关键性状的分子机理解析及种质创新” (2019B,2020.01-2024.12,358万元)
3. 国家基金“光呼吸GLO与CAT互作/解离调控机理及其与植物抗逆性的关系研究” (**,2018.01-2021.12,60万元)
4. 广州市科技计划重点项目“植物光呼吸调控机理及其与抗逆性的关系研究”(6,2016.5-2019.5,165万元)
5. 国家基金“水稻光合CO2浓缩机制的创建及其对光合效率的影响研究” (**,2015.01-2018.12,85万元)
6. 国家-广东联合基金“水稻抗光氧化胁迫基因的挖掘及分子机理研究”(U**,2013.1-2016.12,80万元)
7. 国家基金“OsNOA1调控叶绿素和Rubisco形成及其温度依赖性的机理研究” (**,2012.1-2015.12,60万元)
8. 省基金重点项目“多基因转化改造光呼吸代谢途径提高水稻耐热抗旱性研究”(000005, 2011.1-2013.12,20万元)
9. 国家基金“水稻草酸合成与调控的分子机理”(**,2010.1-2012.12,27万元)
10. 国家基金“GLO调控水稻光合作用的机理”(**,2009.1-2011.12,38万元)

近年发表论文(*表示通讯作者)
(1)Cui LL, Zhang CL, Li ZC, Xian T, Wang LM, Zhang ZS, Zhu GH*, Peng XX*. Two chloroplastic PLGG1 isoforms function together to transport photorespiratory glycolate and glycerate in rice. J Exp Bot. 2021; erab020. (IF2019 5.908)
(2)Wang LM, Shen BR, Li BD, Zhang CL, Lin M, Tong PP, Cui LL, Zhang ZS, Peng XX*. A Synthetic Photorespiratory Shortcut Enhances Photosynthesis to Boost Biomass and Grain Yield in Rice. Molecular Plant, 2020, 13:1802-1815. (IF2019 12.084)
(3)Zhang ZS, Liang XY, Lu L, Xu Z, Huang JY, He H, Peng XX*. Two glyoxylate reductase isoforms are functionally redundant but required under high photorespiration conditions in rice. BMC Plant Biology, 2020, 20:357. (IF2019 3.497)
(4)Shen BR, Wang LM, Lin XL, Yao Z, Xu HW, Zhu CH, Teng HY, Cui LL, Liu EE, Zhang JJ, He ZH*, Peng XX*. Engineering a new chloroplastic photorespiratory bypass to increase photosynthetic efficiency and productivity in rice. Molecular Plant, 2019, 12: 199-214. (IF2019 12.084)
(5)Liu J, Cui LL, Xie ZW, Zhang ZZ, Liu EE, Peng XX*. Two NCA1 isoforms interact with catalase in a mutually exclusive manner to redundantly regulate its activity in rice. BMC Plant Biology, 2019, 19:105. (IF2019 3.497)
(6)Teng HY, Shen BR, Peng XX*. Responsiveness comparison of three stress inducible promoters in transgenic rice. Acta Physiol Plant, 2018, 40: 179 (IF2017 1.439)
(7)He H, Yang QS, Shen BR, Zhang S, Peng XX*. OsNOA1 functions in a threshold-dependent manner to regulate chloroplast proteins in rice at lower temperatures. BMC Plant Biology, 2018, 18:44. (IF2017 3.930)
(8)Zhang ZS, Li XY, Cui LL, Meng S, Ye NH and Peng XX*. Catalytic and functional aspects of different isozymes of glycolate oxidase in rice. BMC Plant Biology, 2017, 17: 135 (IF2017 3.930)
(9)Shen BR, Zhu CH, Yao Z, Cui LL, Zhang JJ, Yang CW, He ZH, Peng XX*. An optimized transit peptide for effective targeting of diverse foreign proteins into chloroplasts in rice. Scientific Report, 2017, 7: 46231 (IF2016 4.259)
(10)Peng C, Liang X, Liu EE, Zhang JJ, Peng XX*. The oxalyl-CoA synthetase-regulated oxalate and its distinct effects on resistance to bacterial blight and aluminium toxicity in rice. Plant Biology, 2017, 19(3): 345-353 (IF2016 2.106)
(11)张智胜和彭新湘*. 光呼吸的功能及其平衡调控. 植物生理学报, 2016, 52(11): 1692-1702
(12)Cui LL, Lu YS, Li Y, Yang CW and Peng XX*. Overexpression of Glycolate oxidase confers improved photosynthesis under high light and high temperature in rice. Front Plant Sci, 2016, 7: 1165. (IF2016 4.298)
(13)Zhang ZS, Xu YY, Xie ZW, Li XY, He ZH, Peng XX*. Association-dissociation of glycolate oxidase with catalase in rice: a potential switch to modulate H2O2. Molecular Plant, 2016, 9: 737-748 (IF2016 8.827)
(14)Zhang ZS, Mao XX, Ou JY, Ye NH, Zhang JH, Peng XX*. Distinct photorespiratory reactions are preferentially catalyzed by glutamate:glyoxylate and serine:glyoxylate aminotransferases in rice. J Photochem Photobiol B, 2015: 142: 110-7 (IF2015 3.035)
(15)Ye NH, Yang GZ, Chen Y, Zhang C, Zhang JH, Peng XX*. Two hydroxypyruvate reductases encoded by OsHPR1 and OsHPR2 are involved in photorespiratory metabolism in rice. J Integr. Plant Biol, 2014, 52(2): 170-180 (IF2014 3.335)
(16)Lu YS, Li Y, Yang QS, Zhang ZS, Chen Y, Zhang S and Peng XX*. Suppression of glycolate oxidase causes glyoxylate accumulation that inhibits photosynthesis through deactivating Rubisco in rice. Physiol Plant, 2014, 150 ( 3 ):463 - 476 (IF2014 3.133)
(17)Zhang ZS, Lu YS, Zhai LG, Deng RS, Jiang JJ, Li Y, He ZH, Peng XX*. Glycolate oxidase isozymes are coordinately controlled by GLO1 and GLO4 in rice. PLoS ONE, 2012, 7(6): e39658 (IF2012 3.702)
(18)Yang QS, He H, Li H, Tian H, Zhang JJ, Zhai LG, Chen J, Wu H, Yi GJ, He ZH, Peng XX*. NOA1 functions in a temperature-dependent manner to regulate chlorophyll biosynthesis and Rubisco formation in rice. PLoS ONE, 2011; 6(5): e20015 (IF2011 4.441)
(19)Zhang JJ, Yin YY, Wang YQ, Peng XX*. Identification of rice Al-responsive genes by semi-quantitative polymerase chain reaction using sulfite reductase as a novel endogenous control. J Integr Plant Biol, 2010, 52: 505-514(IF2010 1.603)
(20)胥华伟,姜敬哲,彭新湘*. 光呼吸突变体研究进展. 植物学报. 2010, 45: 393-403
(21)Yu L, Jiang J, Zhang C, Jiang LR, Ye NH, Lu YS, Yang GZ, Liu EE, Peng CL, He ZH , Peng XX*. 2010. Glyoxylate rather than ascorbate is an efficient precursor for oxalate biosynthesis in rice. J Exp Bot, 2010, 61: 1625-1634 (IF2010 4.818)
(22)Xu HW, Zhang JJ, Zeng J, Jiang LR, Liu EE, Peng CL, He ZH, Peng XX*. Inducible antisense suppression of glycolate oxidase reveals its strong regulation over photosynthesis in rice. J Exp Bot, 2009, 60: 1799-1809 (IF2009 4.274)



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