[1] Musgrave W B, Yi H, Kline D, et al. Probing the origins of glutathione biosynthesis through biochemical analysis of glutamate-cysteine ligase and glutathione synthetase from a model photosynthetic prokaryote[J]. The Biochemical Journal,2013,450(1):63-72 [2] 胡文琴,王恬,孟庆利.抗氧化活性肽的研究进展[J].中国油脂,2004,29(5):42-45 [3] 金春英,崔京兰,崔胜云.氧化型谷胱甘肽对还原型谷胱甘肽清除自由基的协同作用[J].分析化学,2009,37(9):1349-1353 [4] 韩阳,吴斌,李珍珍.谷胱甘肽对老化小麦种子影响的研究[J].辽宁大学学报:自然科学版,2001,29(3):275-277 [5] 魏雪芹.谷胱甘肽的生产及应用研究[J].现代面粉工业,2009(2):52-54 [6] Kuzniak E, Kazmierczak A,Wielanek M, et al. Involvement of salicylic acid, glutathione and protein S-thiolation in plant cell death-mediated defense response of Mesembryanthemum crystallinum against Botrytis cinerea[J]. Plant Physiology and Biochemistry,2013,63(1):30-38 [7] 刘亚丽,李会侠,王红新.酶解玉米渣生产玉米蛋白肽的研究[J].粮食科技与经济,2005(2):46-47 [8] 朱为民,丁海东,齐乃敏,等. Cd2+胁迫对番茄幼苗抗坏血酸-谷胱甘肽循环代谢的影响[J].华北农学报,2005,20(3):50-53 [9] 吴锦程,梁杰,陈建琴,等. GSH对低温胁迫下枇杷幼果叶绿体AsA-GSH循环代谢的影响[J].林业科学,2009,45(11):15-19 [10] Yuan L Y, Du J, Yuan Y H, et al. Effects of 24-epibrassinolide on ascorbate-glutathione cycle and polyamine levels in cucumber roots under Ca(NO3)2 stress[J]. Acta Physiologiae Plantarum,2013,35(1):253-262 [11] Wang P, Yin L H, Liang D, et al. Delayed senescence of apple leaves by exogenous melatonin treatment: Toward regulating the ascorbate-glutathione cycle[J]. Journal of Pineal Research,2012,53(1):11-20 [12] 方学智,朱祝军,孙光闻.不同浓度Cd2+对小白菜生长及抗氧化系统的影响[J].农业环境科学学报,2004,23(5):877-880 [13] 杨培惠,齐剑英,冯德雄,等.谷胱甘肽的应用及其检测方法[J].中国生化药物杂志,2002,23(1):52-54 [14] 麦维军,王颖,梁承邺,等.谷胱甘肽在植物抗逆中的作用[J].广西植物,2005,25(6):571 [15] Chen J H, Jiang H W, Hsieh E J, et al. Drought and salt stress tolerance of an Arabidopsis glutathione S-transferase U17 knockout mutant are attributed to the combined effect of glutathione and abscisic acid[J]. Plant Physiology,2012,158(1):340-351 [16] Jha B, Sharma A, Mishra A. Expression of SbGSTU (tau class glutathione S-transferase) gene isolated from Salicornia brachiata in tobacco for salt tolerance[J]. Molecular Biology Reports,2011,38(7):4823-4832 [17] Diao G P, Wang Y C, Wang C, et al. Cloning and functional characterization of a novel glutathione S-transferase gene from Limonium bicolor[J]. Plant Molecular Biology Reporter,2011,29(1):77-87 [18] Csiszar J, Vary Z, Horvath E, et al. Role of glutathione transferases in the improved acclimation to salt stress in salicylic acid-hardened tomato[J]. Acta Biological Szegediensis,2011,55(1):67-68 [19] Ji W, Zhu Y M, Li Y, et al. Over-expression of a glutathione S-transferase gene, GsGST, from wild soybean (Glycine soja) enhances drought and salt tolerance in transgenic tobacco[J]. Biotechnology Letters,2010,32(8):1173-1179 [20] Hu M L, Long W H, Gao J Q, et al. Glutathione peroxidase gene BnGPX1 cloning from rapeseed and expression under abiotic stress[J]. Chinese Journal of Oil Crop Sciences,2011,33(4):331-337 [21] 宋增廷,姜宁,张爱忠,等.谷胱甘肽的生物学功能的研究进展[J].饲料研究,2008(9):25-27 [22] 苗雨晨,白玲,苗琛,等.植物谷胱甘肽过氧化物酶研究进展[J].植物学通报,2005,22(3):350-356 [23] 梁颖,王三根. Ca2+对低温下水稻幼苗膜的保护作用[J].作物学报,2001,27(1):59-63 [24] 王以柔,曾韶西,刘鸿先.冷锻炼对水稻和黄瓜幼苗SOD、GR活性及GSH、AsA含量的影响[J].植物学报,1995,37(10):776-780 [25] Ding S H, Lei M, Lu Q T, et al. Enhanced sensitivity and characterization of photosystem Ⅱ in transgenic tobacco plants with decreased chloroplast glutathione reductase under chilling stress[J]. Biochimica et Biophysica Acta-Bioenergetics,2012,1817(11):1979-1991 [26] Kocsy G, Von Ballmoos P Suter M, et al. Inhibition of glutathione synthesis reduces chilling tolerance in maize[J]. Planta,2000,211(4):528-536 [27] 吴锦,陈伟健,谭莉,等.谷光甘肽对冷藏枇杷果实木质化相关生理指标的影响[J].云南农业大学学报,2008,23(5):652-657 [28] 孙艳,徐伟君.高温胁迫对不同黄瓜品种幼苗中抗坏血酸代谢的影响[J].西北农业学报,2007,16(6):164-169 [29] 张宗申,利容千,王建波.草酸处理对热胁迫下辣椒叶片膜透性和钙分布的影响[J].植物生理学报,2001,27(2):109-113 [30] 陈大清,王健.高温胁迫下谷胱甘肽对离体玉米叶片的保护效应[J].湖北农学院学报,1997,17(4):254-256 [31] Kusvuran S. Influence of drought stress on growth, ion accumulation and antioxidative enzymes in Okra genotypes[J]. International Journal of Agriculture and Biology,2012,14(3):401-406 [32] 高吉霞,龚春梅,刘西平.水分胁迫对刺槐叶和根谷胱甘肽抗氧化系统的影响[J].西北植物学报,2010,30(7):1409-1414 [33] 韩刚,党青,赵忠.柠条抗氧化保护系统对干旱胁迫的响应[J].草地学报,2010,18(4):528-532 [34] 韩刚,党青,赵忠.干旱胁迫下沙生灌木花棒的抗氧化保护响应研究[J].西北植物学报,2008,28(5):1007-1013 [35] 王泽杰,陈永军,谢崇华.不同干旱程度及复水对水稻B优827开花期的生理影响[J].河南农业科学,2008(9):34-38 [36] 马玉华,马锋旺,马小卫,等.干旱胁迫对苹果叶片抗坏血酸含量及其代谢相关酶活性的影响[J].西北农林科技大学学报:自然科学版,2008,36(3):150-154 [37] 邱睿,王兆,王保莉,等.干旱胁迫下硫对小麦叶片GSH含量及GSH-Px活性的影响[J].干旱地区农业研究,2009,27(2):148-151 [38] 马成仓,洪法水.汞对小麦种子萌发和幼苗生长作用机制初探[J].植物生态学报,1998,22(4):373-378 [39] 王春涛,施国新,徐勤松,等.外源钕减轻了重金属镉对菹草的毒害作用[J].中国稀土学报,2004,22(6):821-824 [40] 丁海东,齐乃敏,朱为民,等.镉、锌胁迫对番茄幼苗生长及其脯氨酸与谷胱甘肽含量的影响[J].中国生态农业学报,2006,14(2):53-55 [41] 刘传平,郑爱珍,田娜,等.外源GSH对青菜和大白菜镉毒害的缓解作用[J].南京农业大学学报,2004,27(4):26-30 [42] Singh V P, Srivastava P K, Prasad S M. Differential effect of UV-B radiation on growth, oxidative stress and ascorbate-glutathione cycle in two cyanobacteria under copper toxicity[J]. Plant Physiology and Biochemistry,2012,61(1):61-70 [43] 赵娟,施国新,徐勤松,等.外源谷胱甘肽(GSH)对水鳖Zn2+毒害的缓解作用[J].热带亚热带植物学报,2006,14(3):213-217 [44] 汤春芳,刘云国,曾光明,等.镉胁迫对萝卜幼苗活性氧产生、脂质过氧化和抗氧化酶活性的影响[J].植物生理与分子生物学报,2004,30(4):469-474 [45] 曾凡荣,牛素贞,裘波音,等.外源还原型谷胱甘肽(GSH)、水杨酸(SA)以及NO供体(SNP)对水稻铬毒害的缓解效应[C].2009年中国作物学会学术年会,2009:72 [46] 马彦霞,张国斌,颉建明,等.自毒作用下外源谷胱甘肽(GSH)对辣椒幼苗生理生化特性的影响[J].西北植物学报,2009,29(7):1380-1386 [47] 钱猛,朱昌华.外源GSH对海州香薷铜毒害的缓解作用[J].植物生理学通讯,2010,46(12):1243-1246 [48] Zeng F R, Qiu B Y, Wu X J, et al. Glutathione-mediated alleviation of Chromium toxicity in rice plants[J]. Biological Trace Element Research,2012,148(2):255-263 [49] 陈玉胜.外源谷胱甘肽对水稻种子萌发过程中铜毒害的缓解效应[J].南京晓庄学院学报,2007(6):66-68 [50] 陈玉胜.外源谷胱甘肽对大豆种子萌发过程中铜毒害的缓解效应[J].大豆科学,2012,31(2):247-252 [51] Liu J X, Wang R J, Wang X, et al. Effect of La(NO3)3 on seedling growth and physiological characteristics of ryegrass under NaCl stress[J]. Chinese Journal of Eco-Agriculture,2011,19(2):353-357 [52] Shu S, Yuan L Y, Guo S R, et al. Effects of exogenous spermine on chlorophyll fluorescence, antioxidant system and ultrastructure of chloroplasts in Cucumis sativus L. under salt stress[J]. Plant Physiology and Biochemistry,2013,63(2):209-216 [53] Ozturk L, Demir Y, Unlukara A, et al. Effects of long-term salt stress on antioxidant system, chlorophyll and proline contents in pea leaves[J]. Romanian Biotechnological Letters,2012,17(3):7227-7236 [54] Sabra A, Daayf F, Renault S. Differential physiological and biochemical responses of three Echinacea species to salinity stress[J]. Scientia Horticulturae,2012,135(1):23-31 [55] Sergio L, De Paola A, Cantore V, et al. Effect of salt stress on growth parameters, enzymatic antioxidant system, and lipid peroxidation in wild chicory (Cichorium intybus L.)[J]. Aata Physiologiae Plantarum,2012,34(6):2349-2358 [56] 鲁丽丽,刘耕,李君,等.外源GSH对NaCl胁迫下二色补血草盐害缓冲机理的研究[J].山东师范大学学报:自然科学版,2006,21(2):108-111 [57] Sabir F, Sangwan R S, Kumar R, et al. Salt stress-induced responses in growth and metabolism in callus cultures and differentiating in vitro shoots of Indian Ginseng (Withania somnifera Dunal )[J]. Journal of Plant Growth Regulation,2012,31(4):537-548 [58] Wang F F, Ding M Q, Deng S R, et al. Cloning of glutathione peroxidase gene PeGPX from Populus euphratica and the salt tolerance of the transformed plants[J]. Genomics and Applied Biology,2012,31(3):231-239 [59] Upadhyaya C P, Venkatesh J, Gururani M A, et al. Transgenic potato overproducing L-ascorbic acid resisted an increase in methylglyoxal under salinity stress via maintaining higher reduced glutathione level and glyoxalase enzyme activity[J]. Biotechnology Letters,2011,33(11):2297-2307 |