[1] 孔祥军,梁正伟. 羊草分子生物学研究进展[J]. 生命科学研究,2007,11(4):290-294
[2] Jin H, Kim H R, Plaha P, et al. Expression profiling of the genes induced by Na2CO3 and NaCl stresses in leaves and roots of Leynmus chinensis [J]. Plant Science,2008,175(6):784-792
[3] 解莉楠,聂玉哲,张晓磊,等. 盐碱胁迫下羊草消减文库的构建及分析[J]. 分子植物育种,2007,5(3):361-366
[4] Li X, Hou S, Gao Q, et al. LcSAIN1, a novel salt-induced gene from sheepgrass, confers salt stress tolerance in transgenic Arabidopsis and rice [J]. Plant and Cell Physiology,2013,54(7):1172-1185
[5] Sun Y L, Hong S K. Sensitivity of translation initiation factor eIF1 as a molecular target of salt toxicity to sodic-alkaline stress in the halophytic grass Leymus chinensis [J]. Biochemical Genetics,2013,51(1/2):101-118
[6] Ma P, Liu J. Isolation and characterization of a novel plasma membrane intrinsic protein gene, LcPIP1, in Leymus chinensis that enhances salt stress tolerance in Saccharomyces cerevisiae [J]. Applied Biochemistry and Biotechnology,2012,166(2):479-485
[7] Peng X J, Ma X Y, Fan W H, et al. Improved drought and salt tolerance of Arabidopsis thaliana by transgenic expression of a novel DREB gene from Leymus chinensis [J]. Plant Cell Reports,2011,30(8):1493-1502
[8] Cheng L, Li X, Huang X, et al. Overexpression of sheepgrass R1-MYB transcription factor LcMYB1 confers salt tolerance in transgenic Arabidopsis [J]. Plant Physiology and Biochemistry,2013,70:252-260
[9] 于利刚,解莉楠,王江,等. 以PMI为选择标记的露地菊转Lc-14-3-3基因体系的建立及功能鉴定[J]. 园艺学报,2011,38(6):1139-1146
[10] Chen S, Huang X, Yan X, et al. Transcriptome analysis in sheepgrass (Leymus chinensis): a dominant perennial grass of the Eurasian Steppe [J]. PLoS One,2013,8(7):e67974
[11] 孙业鹏. 盐碱胁迫下羊草转录组测序及分析[D]. 长春:吉林农业大学,2012:31-35
[12] 解莉楠,聂玉哲,张晓磊,等. 二维液相色谱技术在分离星星草、羊草总蛋白中的应用[J]. 植物生理与分子生物学学报,2007,33(3):258-266
[13] 2-D Clean-Up Kit 使用说明书.GE Healthcare公司
[14] 2-D Fluorescence Difference Gel Electrophoresis 使用指南.GE Healthcare公司
[15] Shailesh K L, Chwenfang L, Martin M. Differerntial regulation of enolase during anaerbiosis in Maize [J]. Plant Physiology,1998,118:1285-1293
[16] Joakim N, Anders B. Metabolic and regulatory changes associated with growth of Saccharomyces cerevisiae in 1.4mol/LNaCl [J]. Journal of Biological Chemistry,1997,272(9): 5544-5554
[17] Hancock J T, Henson D, Nyirenda M, et al. Proteomic identification of glyceraldehyde 3-phosp-hate dehydrogenase as an inhibitoiy target of hydrogen peroxide in Arabidopsis [J]. Plant Physiology and Biochemistry,2005,3(9):828-835.
[18] Plaxton W C. The organization and regulation of plant glycolysis [J]. Annual Review of Plant Physiology and Plant Molecular Biology,1996,47(1):185-214
[19] 郑磊,刘关君,杨传平,等. 盐胁迫下西伯利亚蓼蛋白质双向电泳分析及质谱鉴定[J]. 哈尔滨师范大学自然科学学报,2007,23(2):101-105
[20] 都浩. 水稻中激素和肌醇磷酸代谢相关基因的抗逆功能研究[D]. 武汉:华中农业大学,2013:9-11
[21] 解莉楠. 盐碱胁迫下羊草相关基因及蛋白质的表达谱研究[D]. 哈尔滨:东北林业大学,2007:73-75
[22] Hintzea K J, Theila E C. Cellular regulation and molecular interactions of the ferritins [J]. Cellular and Molecular Life Sciences,2006,63(5):591-600
[23] 奚丽. 铁蛋白基因在翠冠梨和转基因嘎拉苹果微嫁接植株中的表达特性研究[D]. 南京:南京农业大学,2008:2-5
[24] Pradet A, Raymond P. Adenine-nucleotide ratios and adenylate energy-charge in energy metabolism [J]. Plant Molecular Biology,1983,34(5):199-224
[25] Tezara W, MitehelI V J, Driseoll S D, et al. Water stress inhibits plant photosynthesis by decreasing coupling fator and ATP [J]. Nature,1999,401(2):914-917
[26] 樊金萍,柏锡,李勇,等. 野生大豆S-腺苷甲硫氨酸合成酶基因的克隆及功能分析[J]. 作物学报,2008,34(9):1581-1587
[27] Wuiroga M, Guerrero G, Botella M A, et al. A tomato peroxidase involved in the synthesis of lignin and suberin [J]. Plant Physiology,2000,122(2):1119-1127
[28] 田国忠,李怀方,裘维蕃. 植物过氧化物酶研究进展[J]. 武汉植物学研究,2001,19(4):332-344
[29] Peng M, Kuc J. Peroxidase-generated hydrogen peroxide as a source of antifungal-activity in vitro and on tobacco leaf disks [J]. Phytopathology,1992,82:696-699
[30] 蒋选利,李振岐,康振生. 过氧化物酶与植物抗病性研究进展[J]. 西北农林科技大学学报:自然科学版,2001,29(6):124-129
[31] 宋保华. 星星草(Puccinellia tenuiflora)叶片应答短期Na2CO3胁迫的蛋白质组学研究[D]. 哈尔滨:东北林业大学,2013:32-33 |