Acta Agron Sin ›› 2013, Vol. 39 ›› Issue (12): 2135-2144.doi: 10.3724/SP.J.1006.2013.02135
• CROP GENETICS & BREEDING · GERMPLASM RESOURCES · MOLECULAR GENETICS • Previous Articles Next Articles
MIN Dong-Hong1,**,XUE Fei-Yang1,2,**,MA Ya-Nan1,2,CHEN Ming2,*,XU Zhao-Shi2,LI Lian-Cheng2,DIAO Xian-Min2,JIA Guan-Qing2,MA You-Zhi2
| [1]Stern A, Privman E, Rasis M, Lavi S, Pupko T. Evolution of the metazoan protein phosphatase 2C superfamily. J Mol Evol, 2007, 64: 61–70[2]Cohen P. The structure and regijlation of protein phosphatases. Ann Rev Biochem, 1989, 58: 453–508[3]Schweighofer A, Hirt H, Meskiene I. Plant PP2C phosphatases: emerging functions in stress signaling. Trends Plant Sci, 2004, 9: 236–243[4]Meskiene I, Baudouin E, Schweighofer A, Liwosz A, Jonak C, Rodriguez P L, Jelinek H, Hirt H. Stress-induced protein phosphatase 2C is a negative regulator of a mitogen-activated protein kinase. J Biol Chem, 2003, 278: 18945–18952[5]Shi Y G. Serine/threonine phosphatases: mechanism through structure. Cell, 2009, 139: 468–484[6]Sheen J. Mutational analysis of protein phosphatase 2C involved in abscisic acid signal transduction in higher plants. Proc Natl Acad Sci USA, 1998, 95: 975–980[7]Schweighofer A, Kazanaviciute V, Scheikl E, Teige M, Doczi R, Hirt H, Schwanninger M, Kant M, Schuurink R, Mauch F, Buchala A, Cardinale F, Meskiene I. The PP2C-type phosphatase AP2C1, which negatively regulates MPK4 and MPK6, modulates innate immunity, jasmonic acid, and ethylene levels in Arabidopsis. Plant Cell, 2007, 19: 2213–2224[8]Nishimura N, Okamoto M, Narusaka M, Yasuda M, Nakashita H, Shinozaki K, Narusaka Y, Hirayama T. ABA hypersensitive germination2-1 causes the activation of both abscisic acid and salicylic acid responses in Arabidopsis. Plant Cell Physiol, 2009, 50: 2112–2122[9]Hirayama T, Shinozaki K. Perception and transduction of abscisic acid signals: keys to the function of the versatile plant hormone ABA. Trends Plant Sci, 2007, 12: 343–351[10]Meyer K, Leube M P, Grill E. A protein phosphatase 2C involved in ABA signal transduction in Arabidopsis thaliana. Science, 1994, 264: 1452–1455[11]Jeffrey Leung S M, and Jérôme Giraudat. The Arabidopsis ABSCISIC ACID-INSENSlTIVE2 (AB12) and ABI1 genes encode homologous protein phosphatases 2C involved in abscisic acid signal transduction. Plant Cell, 1997, 9: 759–771[12]Angela Saez N A, Miguel Gonzalez Guzman, Mary Paz Gonzalez-Garcia, Carlos Nicolas, Oscar Lorenzo, Pedro L Rodriguez. Gain-of-function and loss-of-function phenotypes of the protein phosphatase 2C HAB1 reveal its role as a negative regulator of abscisic acid signalling. Plant J, 2004, 37: 354–369[13]Yoshida T, Nishimura N, Kitahata N, Kuromori T, Ito T, Asami T, Shinozaki K, Hirayama T. ABA-hypersensitive germination3 encodes a protein phosphatase 2C (AtPP2CA) that strongly regulates abscisic acid signaling during germination among Arabidopsis protein phosphatase 2Cs. Plant Physiol, 2006, 140: 115–126[14]Nishimura N, Yoshida T, Kitahata N, Asami T, Shinozaki K, Hirayama T. ABA-Hypersensitive Germination1 encodes a protein phosphatase 2C, an essential component of abscisic acid signaling in Arabidopsis seed. Plant J, 2007, 50: 935–949[15]Reyes D, Rodriguez D, Gonzalez-Garcia M P, Lorenzo O, Nicolas G, Garcia-Martinez J L, Nicolas C. Overexpression of a protein phosphatase 2C from beech seeds in Arabidopsis shows phenotypes related to abscisic acid responses and gibberellin biosynthesis. Plant Physiol, 2006, 141: 1414–1424[16]Saavedra X, Modrego A, Rodriguez D, Gonzalez-Garcia M P, Sanz L, Nicolas G, Lorenzo O. The nuclear interactor PYL8/RCAR3 of Fagus sylvatica FsPP2C1 is a positive regulator of abscisic acid signaling in seeds and stress. Plant Physiol, 2010, 152: 133–150[17]Liu L, Hu X, Song J, Zong X, Li D, Li D. Over-expression of a Zea mays L. protein phosphatase 2C gene (ZmPP2C) in Arabidopsis thaliana decreases tolerance to salt and drought. J Plant Physiol, 2009, 166: 531–542[18]Liu X, Zhu Y, Zhai H, Cai H, Ji W, Luo X, Li J, Bai X. AtPP2CG1, a protein phosphatase 2C, positively regulates salt tolerance of Arabidopsis in abscisic acid-dependent manner. Biochem Biophys Res Commun, 2012, 422: 710–715[19]Jia H F, Lu D, Sun J H, Li C L, Xing Y, Qin L, Shen Y Y. Type 2C protein phosphatase ABI1 is a negative regulator of strawberry fruit ripening. J Exp Bot, 2013 (DOI:10.1093/jxb/ert1028)[20]Xue T T, Wang D, Zhang S Z, Ehlting J, Ni F, Jakab S, Zheng C C, Zhong Y. Genome-wide and expression analysis of protein phosphatase 2C in rice and Arabidopsis. BMC Genom, 2008, 9: 550[21]Bhaskara G B, Nguyen T T, Verslues P E. Unique drought resistance functions of the highly ABA-induced clade A protein phosphatase 2Cs. Plant Physiol, 2012, 160: 379–395[22]Wang Z M, Devos K M, Liu C J, Wang R Q, Gale M D. Construction of RFLP-based maps of foxtail millet, Setaria italica (L.) P. Beauv. Theor Appl Genet, 1998, 96: 31–36[23]Doust A N, Kellogg E A, Devos K M, Bennetzen J L. Foxtail millet: a sequence-driven grass model system. Plant Physiol, 2009, 149: 137–141[24]Bennetzen J L, Schmutz J, Wang H, Percifield R, Hawkins J, Pontaroli A C, Estep M, Feng L, Vaughn J N, Grimwood J, Jenkins J, Barry K, Lindquist E, Hellsten U, Deshpande S, Wang X W, Wu X M, Mitros T, Triplett J, Yang X H, Ye C Y, Mauro-Herrera M, Wang L, Li P, Sharma M, Sharma R, Ronald P C, Panaud O, Kellogg E A, Brutnell T P, Doust A N, Tuskan G A, Rokhsar D, Devos K M. Reference genome sequence of the model plant Setaria. Nat Biotechnol, 2012, 30: 555–561[25]Zhang G Y, Liu X, Quan Z W, Cheng S F, Xu X, Pan S K, Xie M, Zeng P, Yue Z, Wang W L, Tao Y, Bian C, Han C L, Xia Q J, Peng X H, Cao R, Yang X H, Zhan D L, Hu J C, Zhang Y X, Li H N, Li H, Li N, Wang J Y, Wang C C, Wang R Y, Guo T, Cai Y J, Liu C Z, Xiang H T, Shi Q X, Huang P, Chen Q C, Li Y R, Wang J, Zhao Z H, Wang J. Genome sequence of foxtail millet (Setaria italica) provides insights into grass evolution and biofuel potential. Nat Biotechnol, 2012, 30: 549–554[26]Yoo S D, Cho Y H, Sheen J. Arabidopsis mesophyll protoplasts: a versatile cell system for transient gene expression analysis. Nat Prot, 2007, 2: 1565–1572[27]Loppes R, Radoux M. Abscisic acid biosynthesis and catabolism. Ann Rev Plant Biol, 2005, 56: 165–185[28]Lim C W, Kim J H, Baek W, Kim B S, Lee S C. Functional roles of the protein phosphatase 2C, AtAIP1, in abscisic acid signaling and sugar tolerance in Arabidopsis. Plant Sci, 2012, 187: 83–88[29]Ma Y, Szostkiewicz I, Korte A, Moes D, Yang Y, Christmann A, Grill E. Regulators of PP2C phosphatase activity function as abscisic acid sensors. Science, 2009, 324: 1064–1068 |
| [1] | Ma Xiao-Qian, Qin Na, Dai Shu-Tao, Qin Jia-Fan, Li Xiao-Yan, Wang Shu-Ting, Liu Zhong-Ling, Li Jun-Xia. Phenotypic variation analysis of 175 foxtail millet (Setaria italica) germplasm accessions under two environments [J]. Acta Agronomica Sinica, 2026, 52(6): 1757-1773. |
| [2] | Zuo Tong-Hong, Zhang He-Cui, Zeng Jing, Zhu Li-Quan. Molecular cloning and expression analysis of BoPUB3L associated with self-incompatibility in Brasscia oleracea [J]. Acta Agronomica Sinica, 2026, 52(6): 1698-1710. |
| [3] | Hu Zhao, Qian Run, Xie Feng-Pu, Ying Su-Ping. Genome-wide identification and expression analysis of the SPX gene family in rice under phosphorus treatment [J]. Acta Agronomica Sinica, 2026, 52(6): 1902-1912. |
| [4] | Tian Li-Tao, Ding Ning, Wang Shu-Lin, Qi En-Fang, Zhang Rong, Wang Rui-Rui, Ma Li-Wen, Li Jian-Wu, Yang Jiang-Wei. Genome-wide identification of the Argonaute gene family and its induction by late blight in potato (Solanum tuberosum L.) [J]. Acta Agronomica Sinica, 2026, 52(4): 1116-1126. |
| [5] | Yang Zong-Tao, Yang Ting, Wang Yu-Tong, Ai Jing, Li Yan-Ye, Liu Jia-Yong, Deng Jun, Zhao Yong, Zhang Yue-Bin. Identification and expression analysis of the CLC gene family in sugarcane [J]. Acta Agronomica Sinica, 2026, 52(3): 722-734. |
| [6] | Meng Cheng, Wang Zhe. Genome-wide identification and expression analysis of the ZmPFK gene family under biotic and abiotic stresses in maize [J]. Acta Agronomica Sinica, 2026, 52(3): 764-779. |
| [7] | Yang Biao, Du Shuai-Kang, Zhang Ji-Wang, Shi Ying, Zhang Li-Li. Genome-wide identification of class III POD gene family in potato and its expression profile analysis [J]. Acta Agronomica Sinica, 2026, 52(2): 405-420. |
| [8] | Zhang Li-Lan, Yang Jun, Wang Rang-Jian. Identification of candidate genes related to glycoside aroma precursor content in tea plant using WGCNA [J]. Acta Agronomica Sinica, 2026, 52(2): 494-513. |
| [9] | Jing Xiu-Qing, Cai Yong-Duo, Deng Ning, Zhao Xiao-Dong, Zhai Fei-Hong, Zeng Qun. Identification and expression pattern analysis of RopGEF family genes in Chenopodium quinoa [J]. Acta Agronomica Sinica, 2026, 52(1): 28-43. |
| [10] | WANG Bin, MENG Jiang-Yu, QIU Hao-Liang, HE Ya-Jun, QIAN Wei. Identification and expression pattern analysis of the BnaDUF579 gene family in Brassica napus [J]. Acta Agronomica Sinica, 2025, 51(8): 2100-2110. |
| [11] | YAN Zhi-Lan, ZHAO Qin, CHANG Tian-Da, WANG Yi-Ming, WANG Bi-Hui, WANG Peng, HUANG Chun-Guo, ZHANG Hui, WANG Li-Xiang, HAO Xiao-Peng, ZHAO Bo. Genome-wide identification and characterization of Alternative oxidase (AOX) genes in leguminous crops and their expression patterns in response to abiotic stresses in common bean [J]. Acta Agronomica Sinica, 2025, 51(7): 1769-1783. |
| [12] | SHEN Ao, LIU Min, NI Di-An, LIU Wei. Promoter characterization and expression pattern analysis of the m6A methyltransferase gene SiMTA1 in foxtail millet [J]. Acta Agronomica Sinica, 2025, 51(7): 1969-1978. |
| [13] | WANG Ruo-Nan, ZHANG Ying-Xing, YU Xiao-Han, LIU Shao-Xiong, WANG Yue, XUE Ya-Peng, XIN Xu-Xia, ZHANG Li, LIU Min-Xuan. Near-infrared spectroscopic evaluation of starch diversity and model construction in foxtail millet [J]. Acta Agronomica Sinica, 2025, 51(7): 1757-1768. |
| [14] | GUO Teng-Da, CUI Meng-Jie, CHEN Lin-Jie, HAN Suo-Yi, GUO Jing-Kun, WU Chen-Di, FU Liu-Yang, HUANG Bing-Yan, DONG Wen-Zhao, ZHANG Xin-You. Cloning and expression analysis of the phosphatidylinositol transfer protein AhSFH gene in peanuts responsive to Aspergillus flavus infection [J]. Acta Agronomica Sinica, 2025, 51(6): 1489-1500. |
| [15] | LIANG Hong-Kai, ZHAO Su-Meng, LU Qiong, ZHOU Peng, ZHI Hui, DIAO Xian-Min, HE Qiang. A mini-core collection of foxtail millet [J]. Acta Agronomica Sinica, 2025, 51(6): 1435-1444. |
|
||