[1] Ashraf M, Shahbaz M, Mcneilly T. PhyIogenetic relationship of salt tolerance in early Green Revolution ClMMYT wheats[J]. Enviromental and Experimental Botany,2005,53(2):173-184
[2] Ashraf M, Foolad M R. Roles of glycine betaine and proline in improving plant abiotic stress resistance[J]. Environmental and Experimental Botany,2007,59(2):207-216
[3] 江香梅,黄敏仁,王明庥. 植物甜菜碱合成途径及基因工程研究进展[J]. 中国生物工程杂志, 2002,2(4):49-56
[4] 徐保红,杨洁.甘氨酸甜菜碱与植物抗胁迫能力[J]. 新疆大学学报(自然科学版),2008,25(3):349-352
[5] 孟风,郁松林,郑强卿,等. 甜菜碱与植物抗逆性关系之研究进展[J]. 中国农学通报,2008,24(4):225-228
[6] 景蕊莲,昌小平,胡荣海. 外源甜菜碱对小麦幼苗抗旱性的影响[J]. 干旱地区农业研究,1998,16(2):1-4
[7] 梁峥,骆爱玲. 甜菜碱与甜菜碱合成酶[J]. 植物生理学报,1995,31(1):1-8
[8] Rhodes D, Hanson A D. Quaternary ammonium and tertiary sulfonium compounds in higher plants[J]. Annual Review Plant Physiology Plant Molecular Biology,1993,44:357-384
[9] 卢军,殷红,张平. 甜菜碱的研究进展及其在烟草中应用前景分析[J]. 中国农学通报,2012,28(19):85-89
[10] Sakamoto A, Murata N. The role of glycine betaine in the protection of plants from stress:clues from transgenic plants[J]. Plant Cell and Environment,2002,25:163-171
[11] Hason A D, May A M. Beaine synthesis in chenopods:localition in chlorplasts[J]. Proceedings of the National Academy of Sciences of the United States of America,1985,82(1):3678-3695
[12] Sakarnoto A, Murata N. Genetic engineering of glycinebemine synthesis in plants:current status and implications for enhancement of stress tolerance[J]. Journal of Expcrimcntal Botany,2000,51:81-88
[13] 侯彩霞,汤章城. 细胞相容性物质的生理功能及其作用机制[J]. 植物生理学通讯,1999,35(1):1-7
[14] McNeil S D, Nuccio M L, Hanson A D. Betaines and related osmoprotectants. Targets for metabolic engineering of stress resistance[J]. Journal Plant Physiology,1999,120:945-949
[15] Wyn Jones R G. Storey & Physiology and biochemistry of drought resistance in plants[M]. NewYork:AcademicPress,1981:171-204
[16] Weimberg R, Lerner H R, Poljakoff-Mayber A. Changes in growth and water soluble solute concentrations in Sorghum bicolor stressed with sodium and potassium[J]. Physiology Plant,1984,62:472-480
[17] Fallon K M, Phillips R. Responses to water stress in adapted carrot cell suspension cultures[J]. Journal of Experimental Botany,1989,40:681-687
[18] Rhodes D, Hanson A D. Quaternary ammonium and tertiary sulfonium compounds in higher-plants[J]. Annual Review Plant Physiology Plant Molecular Biology,1993,44:357-384
[19] McCue R F, Hanson A D. Drought and salt tolerance:towards understanding and application[J]. Trends in Biotechnology,1990,8:358-362.
[20] Yang W J, Rich P J, Axtell J D, et a1. Genotypic variation for glycine betaine in sorghum[J]. Crop Science,2003,43:162-169
[21] Kamta T, Uemura M. Solute accumulation in wheat seeding during cold accumulation:Contribution to increased freezing tolerance[J]. Cryoletters,2004,25(5):311-322
[22] Reddy A K, Chaltanya K V, Jutur P P, et a1. Differential antioxidative responses to water stress among five mulberry(Morus alba L.) cuhivars[J]. Envimmental and Experimental Botany,2004,52(1):33-42
[23] 郭世军,牛宇,宋志辉,等. 自然状态下小叶锦鸡儿、梨、枣、桃芽、叶、枝中甜菜碱含量的比较[J]. 山西农业科学,2008,36(1):66-67
[24] 张立新,李生秀. 甜菜碱与植物抗旱/盐性研究进展[J]. 西北植物学报,2004,24(9):1765-1771
[25] Varshney K A, Gangwar L P, Goel N. Choline and betaine accumulation in Trifolium alexandrinum L. during salt stress[J]. Egypt Journal of Botany,1988,31:81-86
[26] Piqueras A, Hernander J A, Olmos E, et a1. Changes in antioxidant enzymes and organic solutes associated with adaptation of citrus cells to salt stress[J]. Plant Cell, Tissue and Organ Culture,1996,45(1):53-60
[27] Carillo P, Parisi D, Woodrow P. Salt-induced accumulation of glycine betaine is inhibited by high light in durum wheat[J]. Functional Plant Biology,2011,38(2):139-150
[28] Sakamoto A, Valverde R, Alia, et a1. Transformation of Arabidopsis with the codA gene for choline oxidase enhances freezing tolerance of plants[J]. The Plant journal:for cell and molecular biology,2000,22(5):449-453
[29] Reda E A Moghaieb, Tanaka N, et a1. Expression of betaine aldehyde dehydrogenase gene in transgenic tomato hairy roots leads to the accumulation of glycine betaine and contributes to the maintenance of the osmotic potential under salt stress[J]. Soil Science and Plant Nutrition,2000,46:873-883
[30] 张宁,司怀军,栗亮,等. 转甜菜碱醛脱氢酶基因马铃薯的抗旱耐盐性[J]. 作物学报,2009,35(6):1146-1150
[31] Ratihnasabapthi B, Mccuke K F, Gage D A, et a1. Metabolic engineering of glycine betaine synthesis:plant betaine aldhyde dehydrogenases lacking typical peptides are targeted to tobacco chloroplasts where they confer betaine aldehyde resistance[J]. Plant Journal,1983,2:155-162
[32] Kishitani S, Takanami T, Suzuki M, et al. Compatibility of glycincbctaine in rice plants:evaluation using transgenic rice plants with a gene for peroxisomal betalne aldehyde dehydrogenase from balley[J]. Plant Cell Environment,2000,23:107-114
[33] Chen J, Jiang Y S, Tao X, et al. Cloning and expression profile of betaine aldehyne dehydrogense gene of ipomoea in response to salt stress[J]. Russian Journal of Plant Physiology, 2014,61(4):509-516
[34] 燕丽萍,夏阳,梁慧敏,等. 转BADH基因苜蓿T1代遗传稳定性和抗盐性研究[J]. 草业学报,2009,18(6):65-71
[35] 王贵平. 甜菜碱提高小麦干旱高温耐性的生理机制研究[D]. 泰安:山东农业大学,2009:1-4
[36] 曲同宝,李鹏,王欢,等. 甜菜碱合成酶基因转化羊草的研究[J]. 中国草地学报,2011,33(3):35-38
[37] 刘君,韩烈保,陈其军,等. CMO与BADH双基因表达载体构建及在烟草中的表达[J].中国生物工程杂志,2006,26(8):5-9
[38] 李树芬. 甜菜碱提高转基因番茄耐热性研究[D]. 泰安:山东农业大学, 2010:1-3
[39] Nuccio M L, Russell B L, Nolte K D, et al. The endogenous choline supply limits glycine betaine synthesis in transgenic tobacco expressing choline monooxygenase[J]. The Plant Journal,1998,16(4):487-496
[40] Huang J, Hirji R, Adam L, et al. Genetic engineering of glycine betaine production toward enhancing stress tolerance in plants:metabolic limitations[J]. Plant physiology,2000,122(3):747-756
[41] McNeil S D, Rhodes D, Russell B L, et al, Metabolic model identifies key constraints on an engineered glycine betaine synthetic pathway in tobacco[J]. Plant physiology,2000,124:153-162
[42] Subbarao G V, Wheeler R M, Levine L H, et al, Glycine betaine accumulation, ionic and water relations of red-beetat contrasting levels of sodium supply[J]. Journal Plant Physiology,2001,158:767-776
[43] Agboma M, Jones M G K, Peltonen-Sainio P, et al, Exogenous glycine betaine enhances grain yield of maize, sorghum and wheat grown under two supplementary watering regimes[J]. Journal of Agronomy and Crop Science,1997,178:29-37
[44] Agboma P, Peltonen-Sainio P, Hinkkanen R, et al, Effect of foliar application of glycine betaine on yield components of drought stressed tobacco plants[J]. Experimental Agriculture,1997,33:345-352
[45] Agboma P, Sinclair T, Jokinen K, et al. An evaluation of the effect of exogenous glycine betaine on the growth and yield of soybean[J]. Field Crops Research,1997,54:51-64
[46] Makela P, Jokinen K, Kontturi M, et al. Foliar application of glycine betaine-a novel product from sugarbeet-as an approach to increase tomato yield[J]. Ind. Industrial Crops and Products,1998,7:139-148
[47] 李茂富,韦建学,符良峰,等. 外源甜菜碱对低温胁迫下香蕉内源甜菜碱合成的影响[J]. 西北植物学报,2011,31(7):1400-1404
[48] 姜秀梅,秦勇,郭光照,等. 4外源物质处理对辣椒幼苗抗冷性的影响[J]. 中国农学通报,2013,29(25):87-92
[49] 黄英运,朱丹华,李虹章,等. 外源甜菜碱对NaCl胁迫下大豆苗期生理指标的影响[J]. 浙江农业学报,2012,24(1):12-16
[50] 杨洪兵. 甜菜碱对盐胁迫下荞麦幼苗生理特性的影响[J]. 贵州农业科学,2013,41(8):51-53
[51] 谷文英,祈新梅,李兴正,等. 甜菜碱缓解盐胁迫菊苣种子萌发和芽苗生长的作用[J]. 中国农学通报,2012,28(29):10-14
[52] 许锁链,李忠光,龚明,等. 外源甜菜碱对PEG胁迫下小桐子种子萌发和幼苗生长的保护作用[J]. 种子,2011,30(09):29-33
[53] 邱念伟,杜斐,郝爽,等. 叶面喷施甜菜碱在烟草叶片保水和耐脱水中的作用[J]. 中国农业科学,2008,41(10):3363-3370
[54] Cansev A, Gulen H, Ipek M, et al. Application of Choline and Glycine Betaine Alters Levels of Total Phosholipids in Olea europaea L. Related to Cold Hardiness[J]. The FASEB Journal,2013,27:581-589
[55] Yang X H, Lu C M. Photosynthesis is improved by exogenous glycine betaine in salt-stressed maize plants[J]. Physiologia plantarum,2005,124(3):343-352
[56] Iqbal N, Ashraf Y, Ashraf M. Modulation of endogenous levels of some key organic metabolites by exogenous application of glycine betaine in drought stressed plants of sunflower (Helianthus annuus L.)[J]. Plant Growth Regulation,2011,63(1):7-12
[57] Wang Y X, Liu S C, Zhang H L. Glycine betaine application in grain filling wheat plants alleviates heat and high light-induced photoinhibition by enhancing the psbA transcription and stomatal conductance[J]. Acta Physiologiae Plantarum,2014,36(8):2195-2202
[58] Karabudak T, Bor M, Ozdemir F. Glycine betaine protects tomato (Solanum lycopersicum) plants at low temperature by inducing fatty acid desaturase7 and lipoxygenase gene expression[J]. Molecular Biology Reports,2014,41(3):1401-1410
[59] Li M F, Guo S J, Xu Y. Glycine betaine-mediated potentiation of HSP gene expression involves calcium signaling pathways in tobacco exposed to NaCl stress[J]. Physiologia Plantarum,2014,150(1):63-75
[60] Alshammary S F, Hussain G, Qian Y L. Response of four warm-season grasses to saline irrigation water under arid climate[J]. Asian Journal of Plant Sciences,2008,7(7):2253-2261
[61] Fu J, Dernoeden P H. Carbohydrate level, photosynthesis, and respiration in creeping bentgrass as influenced by spring and summer coring[J]. Journal of the American Society for Horticultural Science,2009,134(1):41-47
[62] 何影. 引入甘氨酸甲基化合成甜菜碱途径提高黑麦草抗旱性研究[D]. 泰安:山东农业大学, 2010:1-5
[63] 信金娜,韩烈保,刘君,等. 基因枪转化法获得草地早熟禾(Poa pratensis L.)转基因植株[J]. 中国生物工程杂志,2006,26(8):10-14
[64] 王怡杰. 转基因草地早熟禾(Poa pratensis L.)抗性研究[D]. 北京:北京林业大学, 2011:32-37
[65] Hu L X, Hu T. Exogenous Glycine Betaine Ameliorates the Adverse Effect of Salt Stress on Perennial Ryegrass[J]. Journal of the American Society for Horticultural Science,2011,137(1):38-46 |