Acta Agron Sin ›› 2012, Vol. 38 ›› Issue (09): 1716-1722.doi: 10.3724/SP.J.1006.2012.01716
• RESEARCH NOTES • Previous Articles Next Articles
WANG Zhi-Jun,MA Shou-Cai*,BI Xiao-Jing,SHI Xiu-Xiu,LI Qing-Feng,HAN Fang,QI Jia-Jia,WANG Shu-Ping,ZHANG Gai-Sheng,NIU Na
[1]Chen J-S(陈济世), Zhang L-H(张岭华), Wu B-L(吴秉礼). The preliminary report on the discovery and selection of “Three wheat”. Acta Agron Sin (作物学报), 1983, 9(1): 69-72 (in Chinese with English abstract)[2]Ma S-C(马守才), Zhang G-S(张改生), Liu H-W(刘宏伟), Wang J-W(王军卫). Studies on the application of multi-ovary character to hybrid wheat. Acta Bot Boreali-Occident Sin (西北植物学报), 2002, 22(6): 1295-1299 (in Chinese with English abstract)[3]Wang Y-Z(王耀芝), Ding H-B(丁惠宾), Jin Z-L(金芝兰). Initiation and development of flowers in a multi-pistil wheat. Acta Bot Boreali-Occident Sin (西北植物学报), 1989, 9(3): 131-135 (in Chinese with English abstract)[4]Chen W(陈炜), Liu W-Y(刘维营), Lei Q(雷清), Ding H-B(丁惠宾), Wang L-S(王仑山). Comparative study of peroxidase isozyme and proteins of trigrainand and common wheat in seedlings. Acta Agron Sin (作物学报), 1999, 25(5): 650-653 (in Chinese with English abstract)[5]Wang J-W(王军卫), Zhang G-S(张改生), Liu H-W(刘宏伟), Song Y-Z(宋亚珍), Niu N(牛娜). Detection of A RAPD marker linked to dominant multi-ovary gene in wheat (Triticum aestivum). J Agric Biotechnol (农业生物技术学报), 2005, 13(5): 553-556 (in Chinese with English abstract)[6]Zhang G-H(张国慧), Zhang G-S(张改生), Ge F-H(葛峰辉), Niu N(牛娜), Ma S-C(马守才), Pan D-L(潘栋梁), Wang K(汪奎). Study on factors influencing penetrance of multi-ovary in wheat. J Plant Genet Resour (植物遗传资源学报), 2008, 9(4): 528-530 (in Chinese with English abstract)[7]Shen G-H(沈光华), Tong Y-Z(童一中), Shen G-Z(沈革志). Localization of the gene multi-ovary on chromosome and chromosome-arm of common wheat using monosomic and ditelosomic analysis. Acta Genet Sin (遗传学报), 1992, 19(6): 513-516 (in Chinese with English abstract)[8]Wu J(武军), Li B-Q(李邦琴), Zhao J-X(赵继新). Genetic analysis of multi-ovary character of trigrain wheat. J Northwest Agric Univ (西北农业大学学报), 2000, 28(6): 58-60 (in Chinese with English abstract)[9]Ma S-C(马守才), Zhang G-S(张改生), Niu N(牛娜). Breeding of near-isogeniclines of multi-ovary character in wheat and their genetic background evaluation. J Nucl Agric Sci (核农学报), 2007, 21(6): 585-588 (in Chinese with English abstract)[10]Li X F, Ma S C, Zhang G S, Niu N, Wei F, Rebonoang T, Zhao H. Identification and expression analysis of genes related to multi-ovary in wheat (Triticum aestivum L.). Seed Sci Technol, 2011, 20: 54-73[11]Xu Y-P(徐幼平), Xu Q-F(徐秋芳), Cai X-Z(蔡新忠). Optimization of total protein extraction from tomato leaves for two-D gel electrophoresis analysis. Acta Agric Zhejiangensis (浙江农业学报), 2007, 19(2): 71-74 (in Chinese with English abstract)[12]Chen R-H(陈蕊红), Ye J-X(叶景秀), Zhang G-S(张改生), Wang J-S(王俊生), Niu N(牛娜), Ma S-C(马守才), Zhao J-X(赵继新), Zhu J-C(朱建楚). Differential proteomic analysis of anther proteins between cytoplasmic-nuclear male sterility line and its maintainer in wheat (Triticum aestivum L.). Prog Biochem Biophys (生物化学与生物物理进展), 2009, 36(4): 431-440 (in Chinese with English abstract)[13]Bradford M M. A rapid and sensitive method for the quantitation of microgram quantities utilizing the principle of protein dye binding. Anal Biochem, 1976, 72: 248-254[14]Ye J-X(叶景秀), Chen R-H(陈蕊红) Zhang G-S(张改生), Wang J-S(王俊生), Wang S-P(王书平), Li L(李莉), Niu N(牛娜), Ma S-C(马守才), Li H-X(李红霞), Zhu J-C(朱建楚). Analysis on anther proteins of wheat male sterile line induced by chemical hybridizing agent SQ-1. J Agric Biotechnol (农业生物技术学报), 2009, 17(5): 858-864 (in Chinese with English abstract)[15]Wang J(汪静), Yuan L(袁琳), Chen X-M(陈晓明). An Improved technique for protein staining with CBB G250. J Med Mol Biol (医学分子生物学杂志), 2006, 3(6): 423-425 (in Chinese with English abstract)[16]Ma S-C(马守才), Zhang G-S(张改生), Niu N(牛娜). Breeding of near-isogenic lines of multi-ovary character in wheat and their genetic background evaluation. J Nucl Agric Sci (核农学报), 2007, 21(6): 585-588 (in Chinese with English abstract)[17]Kim J Y, Kim W Y, Kwak K J, Oh S H, Han Y S, Kang H S. Glycine-rich RNA-binding proteins are functionally conserved in Arabidopsis thaliana and Oryza sativa during cold adaptation process. J Exp Bot, 2010, 61: 2317-2325[18]Nomata T, Kabeya Y, Sato N. Cloning and characterization of glycine-rich RNA-binding protein cDNAs in the moss Physcomitrella patens. Plant Cell Physiol, 2004, 45: 48-56[19]Lu X-P(卢秀萍), Chen X-J(陈学军), Liu Y(刘勇), Tang Q-H(唐启慧), Chen Y-B(陈禹保), Li W-Z(李文正). Expression of the glycine-rich RNA-binding protein of tobacco in E. coli . China Biotechnol (中国生物工程杂志), 2010, 30(8): 29-30 (in Chinese with English abstract)[20]Azevedo C, Sadanandom A, Kitagawa K, Freialdenhoven A, Shirasu K, Schulze-Lefert P. The RAR1 interactor SGT1, an essential component of R gene-triggered disease resistance. Science, 2002, 295: 2073-2076[21]Holt III B F, Belkhadir Y, Dangl J L. Antagonistic control of disease resistance protein stability in the plant immune system. Science, 2005, 309: 929-932[22]Zheng H-J(郑宏江), He S-J(何锶洁), Dai S-H(戴顺洪). Some improvements of the biolistic transformation system for Oryza. Chin J Biotechnol (生物工程学报), 1994, 12(suppl): 111-115 (in Chinese with English abstract) [23]Wang K(王凯), Du L-P(杜丽璞), Zhang Z-Y(张增艳), Liao Y(廖勇), Xu H-J(徐惠君), Yao W-L(姚乌兰), Yang K(杨昆), Shao Y-J(绍艳军), Xin Z-Y(辛志勇). Isolation and preliminarily functional analysis of SGT1 gene of Thinopyrum intermedium. Acta Agron Sin (作物学报), 2008, 34(3): 520-525 (in Chinese with English abstract)[24]Baxevanis A D, Landsmanb D. The AMG-1 box protein family: classification and functional relationships .Nucl Acids Res, 1995, 23: 1604-1613[25]Riccardo S, Salvina Z, Alessandra L S, Elisa M, Laura A, Silvia P, Vincenzo G, Guidalberto M. HMGA molecular network: from transcriptional regulation to chromatin remodeling. Biochim Biophys Acta, 2010, 1799: 37-47[26]Martinez H J, Fedele M, Battista S. Identification of the genes up-and down-regulated by the high mobility group A1 (HMGA1) proteins: tissue specificity of the HMGA1-dependent gene regulation. Cancer Res, 2004, 64: 28-35[27]Cai Q-F(蔡群芳). The research of glutathione S-transferase. J Hainan Med Univ (海南医学院学报), 2011, 17(12): 1735-1737 (in Chinese with English abstract)[28]Zettl R, Schell J, Palme K. Photoaffinity labeling of arabidopsis thaliana plasma membrane vesicles by 5-azido-[7-3H] indole-3-acetic acid: identification of a glutathione S-transferase. Proc Natl Acad Sci USA, 1994, 91: 689-693[29]Edwards R, Dixon D P, Walbot V. Plant glutathione S-transferases: enzymes with multiple functions in sickness and in health. Trends Plant Sci, 2000, 5: 193-198[30]Mitrovic S M, Pflugmacher S, James K J. Anatoxina elicits an increase in peroxidase and glutathione S-transferase activity in aquatic plants. Aquat Toxicol, 2004, 68: 185-192[31]Roxas V P, Smith R K, Allen E R, Allen R D. Over expression of glutathione S-transferase/glutathione peroxidase enhances the growth of transgenic tobacco seedlings during stress. Nat Biotechnol, 1997, 15: 988-991[32]Moons A. Regulatory and functional interactions of plant growth regulators and plant glutathione S-transferases (GSTs). Vitam Horm, 2005, 72: 155-202[33]Penh O, Rajkumar T, Rutter W J. Multiple forms of fructose diphosphate aldolase in mammalian tissues. Proc Natl Acad Sci USA, 1966, 56: 1275-1282[34]Wei F, Zhili Z, Yan L Z. Cloning and molecular characterization of fructose-1,6-bisphosphate aldolase gene regulated by high-salinity and drought in Sesuvium portulacastrum. Physiol Biochem, 2009, 28: 975-984 |
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