[1]张沿政,陈龙,李永光,等.大豆RING/U-box蛋白Glyma.13G115900的克隆及其对非生物胁迫的应答[J].大豆科学,2017,36(06):851-856.[doi:10.11861/j.issn.1000-9841.2017.06.0851]
 ZHANG Yan-zheng,CHEN Long,LI Yong-guang,et al.Cloning and Expression Analysis of A RING/U-box Protein of Glyma.13G115900 from Soybean under Abiotic Stress[J].Soybean Science,2017,36(06):851-856.[doi:10.11861/j.issn.1000-9841.2017.06.0851]
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大豆RING/U-box蛋白Glyma.13G115900的克隆及其对非生物胁迫的应答

参考文献/References:

[1]Xiong L, Schumaker K S, Zhu J K. Cell Signaling during cold, drought, and salt stress[J]. Plant Cell, 2002, 14(S): 165-183.

[2]Zhu J K. Salt and drought stress signal transduction in plants[J]. Annual Review of Plant Biology, 2002, 53(53): 247-273.
[3]Callis J, Vierstra R D. Protein degradation in signaling[J]. Current Opinion in Plant Biology, 2000, 3(5): 381-386.
[4]Hellmann H, Estelle M. Plant development: Regulation by protein degradation[J]. Science, 2002, 297(5582): 793.
[5]Zhang S, Qi Y, Liu M, et al. SUMO E3 ligase AtMMS21 regulates drought tolerance in Arabidopsis thaliana[J]. Journal of Integrative Plant Biology, 2013, 55(1):83-95.
[6]Stone S L, Hauksdóttir H, Troy A, et al. Functional analysis of the ring-type ubiquitin ligase family of Arabidopsis[J]. Plant Physiology, 2005, 137(1):13-30.
[7]Vierstra R D The ubiquitin-26S proteasome system at the nexus of plant biology[J]. Nature Reviews Molecular Cell Biology, 2009, 10(6):385-397.
[8]Stone S L, Hauksdóttir H, Troy A, et al. Functional Analysis of the ring-type ubiquitin ligase family of Arabidopsis[J]. Plant Physiology, 2005, 137(1):13-30.
[9]Duplan V, Rivas S. E3 ubiquitin-ligases and their target proteins during the regulation of plant innate immunity[J]. Frontiers in Plant Science, 2014, 5(3):42.
[10]Ohi M D, Vander Kooi C W, Rosenberg J A, et al. Structural insights into the U-box, a domain associated with multi-ubiquitination[J]. Nature Structural Biology, 2003, 10(4): 250-255.
[11]Azevedo C, Santos-Rosa M J, Shirasu K. The U-box protein family in plants[J]. Trends in Plant Science, 2001, 6(8): 354.
[12]Wiborg J, O′Shea C, Skriver K. Biochemical function of typical and variant Arabidopsis thaliana U-box E3 ubiquitin-protein ligases[J]. Biochemical Journal, 2008, 413(3): 447-457.
[13]Mazzucotelli E, Belloni S, Marone D, et al. The E3 ubiquitin ligase gene family in plants: Regulation by degradation[J]. Current Genomics, 2006, 7(8): 509-522.
[14]李媛媛, 南海洋, 刘宝辉, 等.大豆GmFDL06基因抗干旱及耐盐性研究[J]. 大豆科学, 2017, 36(3):351-359. (Li Y Y, Nan H Y, Liu B H, et al. Study on drought resistance and salt tolerance of soybean GmFDL06gene[J]. Soybean Science, 2017, 36 (3): 351-359.)
[15]Wang C, Duan W, Riquicho A R, et al. Genome-wide survey and expression analysis of the PUB family in Chinese cabbage (Brassica rapa ssp pekinesis)[J]. Molecular Genetics & Genomics, 2015, 290(6): 2241-2260.
[16]Wang N, Liu Y, Cong Y, et al. Genome-wide identification of soybean U-Box E3 ubiquitin ligases and roles of GmPUB8 in negative regulation of drought stress, response in Arabidopsis[J]. Plant & Cell Physiology, 2016, 57(6):1189.
[17]Yang C W, González-Lamothe R, Ewan R A, et al. The E3 ubiquitin ligase activity of Arabidopsis PLANT U-BOX17 and its functional tobacco homolog ACRE276 are required for cell death and defense[J]. Plant Cell, 2006, 18(4): 1084-1098.
[18]Seo D H, Ryu M Y, Jammes F, et al. Roles of four Arabidopsis U-box E3 ubiquitin ligases in negative regulation of abscisic acid-mediated drought stress responses[J]. Plant Physiology, 2012, 160(1): 556-568.
[19]Yao W, Wang L, Wang J, et al. VpPUB24, a novel gene from Chinese grapevine, vitis pseudoreticulata, targets VpICE1 to enhance cold tolerance[J]. Journal of Experimental Botany, 2017, 68(11): 2933-2949.

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备注/Memo

基金项目:转基因生物新品种培育重大专项(2016ZX08004-002)。

第一作者简介:张沿政(1992-),男,硕士,主要从事大豆遗传育种研究。E-mail:903395331@qq.com。
通讯作者:李文滨(1958-),男,教授,博导,主要从事大豆遗传育种研究。E-mail:wenbinli@neau.edu.cn。

更新日期/Last Update: 2018-01-24