作物学报 ›› 2014, Vol. 40 ›› Issue (01): 45-53.doi: 10.3724/SP.J.1006.2014.00045
李飞1,2,徐建飞1,刘杰1,段绍光1,卞春松1,Jiwan P. PALTA3,金黎平1,*
LI Fei1,2,XU Jian-Fei1,LIU Jie1,DUAN Shao-Guang1,BIAN Chun-Song1,Jiwan P. PALTA3,JIN Li-Ping1,*
摘要:
[1]Estrada R N. Breeding frost-resistant potatoes for the tropical highlands. In: Li P H, Sakai A, eds. Plant cold hardiness and freezing stress. New York: Academic Press, 1978. pp 333–341[2]Li P H. Palta J P. Frost hardening and freezing stress in tuber bearing Solanum species. In: Li P H, Sakai A, eds. Recent advances in plant cold hardiness and freezing stress: Mechanism and crop implications. New York: Academic Press, 1978. pp 49–71[3]李飞. 野生马铃薯植株耐冻性鉴定及耐冻机理研究. 中国农业科学院研究生院硕士学位论文, 2008.Li F. Assessment and mechanism study for freezing tolerance in Solanum acaule seedling. MS Theses of the Graduate School of Chinese Academy of Agriculture Sciences, 2008 (in Chinese with English abstract)[4]Steponkus P L. Role of plasma membrane in freezing injury and cold acclimation. Annu Rev Plant Physiol, 1984, 35: 543–584[5]Riken A, Dill J W, Bergman D K. Correlation between the circadian rhythm of resistance to extreme temperatures and changes in fatty acid composition in cotton seedlings. Plant Physiol, 1993, 101: 31–36[6]Steponkus P L, Uemura M, Webb M S. A contrast of the cryostability of the plasma membrane of winter rye and spring oat. In: Steponkus P L ed. Advances in Low-Temperature Biology. London: JAI Press, 1993. pp 211–312[7]Upchurch RG. Fatty acid unsaturation, mobilization, and regulation the response of plants to stress. Biotechnol Lett, 2008, 30: 967–977[8]Teixeira M C, Coelho N, Olsson M E, Brodelius P E, Carvalho I S, Brodelius M. Molecular cloning and expression analysis of three omega-6 desaturase genes from purslane (Portulaca oleracea L.). Biotechnol Lett, 2009, 31:1089–1101[9]Kargiotidou A, Deli D, Galanopoulou D, Tsaftaris A, Farmaki T. Low temperature and light regulate delta 12 fatty acid desaturases (FAD2) at a transcriptional level in cotton (Gossypium hirsutum). J Exp Bot, 2008, 59: 2043–2056[10]Niu B, Guo L, Zhao M, Luo T, Zhang R, Zhang F, Hou P, Zhang Y, Xu Y, Wang S, Chen F. Molecular cloning, characterization, and expression of an omega-3 fatty acid desaturase gene from Sapium sebiferum. J Biosci Bioeng, 2008, 106: 375–380[11]Murata N, Sato N, Takahashi N, Hamazaki Y. Composition and positional distributions of fatty acids in phospholipids from leaves of chilling-sensitive and chilling-resistant plants. Plant Cell Physiol, 1982, 23: 1071–1079[12]Lemieux B, Miquel M, Somerville C, Browse J. Mutants of Arabidopsis with alterations in seed lipid fatty acid compositon. Theor Appl Genet, 1990, 80: 234–240[13]Vega S E, Del Rio A H, Bamberg J B, Palta J P. Evidence for the up-regulation of stearoyl-ACP (Δ9) desaturase gene expression during cold accliamtion. Am J Potato Res, 2004, 81: 125–135[14]Yin D M, Deng S Z, Zhan K H, Cui D Q. High-oleic peanut oils produced by HpRNA-mediated gene silencing of oleate desaturase. Plant Mol Biol Rep, 2007, 25: 154–163[15]Georgios B, Anastassios M, Nikos N, Polydefkis H. Spatial and temporal expressions of two distinct oleate desaturase from olive (Olea europaea L.). Plant Sci, 2005, 168: 547–555[16]Rolletschek H, Borisjuk L, Sanchez-Garcra A, Gotor C, Romero LC, Martinez-Rivas J M, Mancha M. Temperature dependent endogenous oxygen concentration regulates microsomal oleate desaturase in developing sunflower seeds. J Exp Bot, 2007, 58: 3171–3181[17]Li LY, Wang X L, Gai J Y, Yu D Y. Molecular cloning and characterization of a novel microsomal oleate desaturase gene from soybean. J Plant Physiol, 2007, 164: 1516–1526[18]Mietkiewska E, Brost J M., Giblin E M, Francis T, Wang S, Reed D, Truksa M, Taylor D C. A Tropaeolum majus FAD2 cDNA complements the fad2 mutation in transgenic Arabidopsis plants. Plant Sci, 2006, 171:187–193[19]崔红. 冬小麦东农冬麦1号抗寒生理特性及抗寒基因的克隆. 东北农业大学硕士学位论文, 2010Cui H. Analysis in cold-resistant physiological characteristics and cloning genes of winter wheat dongnongdongmai1. MS Theses of Northeast Agricultural University, 2010 (in Chinese with English abstract)[20]Van Berkel J, Salamini F, Gebhardt C. Transcripts accumulating during cold storage of potato (Solanum tuberosum) tubers are sequence related to stress-responsive genes. Plant Physiol, 1994, 104: 445–452[21]Rorat T, Grygorowicz W J, Bcrbczy P, Irzykowski W. Isolation and expression of cold specific genes in potato (Solanum sogarandinum). Plant Sci, 1998, 133: 57–67[22]Stone J M, Palta J P, Bamberg J B, Weiss L S, Harbage J F. Inheritance of freezing resistance in tuber-bearing Solanum species : Evidence for independent genetic control of nonacclimated freezing tolerance and cold acclimation capacity. Genetics, 1993, 90: 7869–7873[23]Vega S E, Del Rio A H, Jung G, Bamberg J B, Palta J P. Marker-assisted genetic analysis of non-acclimated freezing tolerance and cold acclimation capacity in a backcross Solanum population. Am J Potato Res, 2003, 80: 359–3691[24]李飞, 徐建飞, 刘杰, 段绍光, 雷尊国, Palta J P, 金黎平. 冷驯化前后野生马铃薯S. acaule内参基因的筛选. 西南农业学报, 2012, 25: 1592–1595Li F, Xu J F, Liu J, Duan S G, Lei Z G, Palta J P, Jin L P. Selection of reference genes from wild potato Solanum acaule before and after cold acclimation. Southwest China J Agric Sci, 2012, 25: 1592–1595 (in Chinese with English abstract)[25]Kargiotidou A, Deli D, Galanopoulou D, Tsaftaris A, Farmaki T. Low temperature and light regulate delta 12 fatty acid desaturases (FAD2) at a transcriptional level in cotton (Gossypium hirsutum). J Exp Bot, 2008, 59: 2043–2056[26]Hernandez M L, Padilla M N, Sicardo M D, Mancha M, Martinez-Rivas J M. Effect of different environmental stresses on the expression of oleate desaturase genes and fatty acid composition in olive fruit. Phytochemistry, 2011, 72: 178–187[27]Matteucci M, Dangeli S, Errico S, Lamanna R, Perrotta G, Altamura M M. Cold affects the transcription of fatty acid desaturases and oil quality in the fruit of Olea europaea L. genotypes with different cold hardiness. J Exp Bot, 2011, 62: 3403–3420[28]Zhang Y M, Wang C C, Hu H H, Yang L. Cloning and expression of three fatty acid desaturase genes from cold-sensitive lima bean (Phaseolus lunatus L.). Biotechnol Lett, 2011, 33: 395–401[29]Yang L, Ye J, Guo W D, Wang C C, Hu H T. Differences in cold tolerance and expression of two fatty acid desaturase genes in the leaves between fingered citron and its dwarf mutant. Trees, 2012, 26: 1193–1201[30]Shi J L, Cao Y P, Fan X R, Li M, Wang Y F, Ming F. A rice microsomal delta-12 fatty acid desaturase can enhance resistance to cold stress in yeast and Oryza sativa. Mol Breed, 2012, 29:743–757[31]周洲. 转脂肪酸去饱和酶基因PtFAD2和PtFAD3银腺杨84K的抗寒性研究. 中国林业科学研究院博士学位论文, 2007Zhou Z. The cold tolerance of transgenic Populus alba × Populus glandulossa 84K with fatty acid desaturase genes PtFAD2 and PtFAD3 .PhD Dissertation Chinese of Academy of Forestry, 2007 (in Chinese with English abstract)[32]Honjoh K, Machida T, Hagisako T, Suga K, Yonekura M, Shimizu H, Ohashi N, Miyamoto T, Hatano S, Lio M. Molecular Cloning and characterization of a cDNA for low-temperature indueible cytosolic glueose 6-PhosPhate dehydrogenase gene from Chlorella vulgaris and expression of the gene in Saceharomyces cerevisiae. Plant Sei, 2007, 172: 649–658[33]Rodriguez-Vargas S, Sanchez-Garcia A, Martinez-Rivas J M, Prieto J A, Randez-Gil F. Fluidization of membrane lipids enhances the tolerance of Saccharomyces cerevisiae to freezing and salt stress. Appl Environ Microbiol, 2007, 73: 110–116 |
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