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外源NO对低温胁迫下小麦幼苗果聚糖合成及FBEs表达的影响 被引量:1

Effects of Exogenous Nitric Oxide on Fructan Anabolism and FBEs Expression in Wheat under Chilling Stress
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摘要 采用水培的方法,研究4℃低温胁迫0,24,48,96 h后,外源NO供体硝普钠(SNP)对小麦幼苗生长、可溶性总糖含量、可溶性糖各组分含量及果聚糖合成酶(FBEs)等的影响,并采用qRT-PCR方法测定小麦幼叶中FBEs基因mRNA水平的变化。结果表明,外源NO促进小麦幼苗生长,提高低温胁迫下小麦幼叶果糖、葡萄糖、低聚果糖(DP3)、可溶性总糖等含量和果聚糖:果聚糖-1-果糖基转移酶(FFT)活性,并且在mRNA水平上调节FBEs基因表达。外源NO能够通过调控FBEs基因表达,进而影响果聚糖合成酶活性,促进果聚糖积累,提高小麦抵抗低温的能力。 The effects of exogenous NO on wheat(Triticum aestivum L.) growth,solubility sugar,fructan biosynthesis metabolism etc.under 4 ℃ chilling stress were investigated in seedlings,subjected to different concentrations of sodium nitroprussiate(SNP,as nitric oxide donor) for 0,24,48,96 h.The results showed that,under chilling stress,exogenous NO could induce wheat weight,fructose,glucose,low DP fructan,total soluble sugar content and fructan:fructan 1-fructosyltransferase(FFT) activity.Moreover,NO could regulate the gene expression at this level in following ways:sucrose:sucrose 1-fructosyltransferase(1-SST) and sucrose:fructan 6-fructosyltransferase(6-SFT) gene expression were inhibited by high concentration of SNP while 1-FFT was induced.Our report owing that exogenous NO alleviated the negative effects of non-freezing low temperatures by regulating FEBs and accumulating fructans.
出处 《华北农学报》 CSCD 北大核心 2013年第2期6-11,共6页 Acta Agriculturae Boreali-Sinica
基金 国家"十二五"科技支撑粮丰工程项目(2012BAD04B07) 河南省科技攻关计划项目(122102310311) 河南省教育厅科技研究重点项目(12B180012)
关键词 NO 低温 小麦 果聚糖 FBEs表达 NO Chilling stress Wheat Fructan FBEs expression
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  • 1蔡剑,姜东.气候变化对中国冬小麦生产的影响[J].农业环境科学学报,2011,30(9):1726-1733. 被引量:78
  • 2杨晓红,陈晓阳.果聚糖对植物抗逆性的影响及相应基因工程研究进展[J].华北农学报,2006,21(B10):6-11. 被引量:18
  • 3Valluru R, Van den Ende W. Plant fructans in stress envi-ronments: emerging concepts and future prospects[J] .Journal of Experimental Botany, 2008 ,59 : 2905 - 2916.
  • 4Li HJ, Yang A F, Zhang XC, et al, Improving freezing tolerance of transgenic tobacco expressing sucrose: sucrose I-fructosyltransferase gene from Lactuca sativa[J] . Plant Cell Tissue and Organ Culture,2007 ,89:37 -48.
  • 5Ritsema T, Smeekens S. Engineering fructan metabolism in plants[J].Journal of Plant Physiology, 2003 , 160: 811 - 820.
  • 6EdelmanJ, Iefford T G. The mechanism of fructosan me-tabolism in higher plants as exemplified in Helianthus tu-berosus[J] . New Phytologist, 1968 ,67 : 517 - 531.
  • 7Van den Ende W , Van Laere A. De-novo synthesis of fruc-tans from sucrose in vitro by a combination of two purified enzymes ( sucrose: sucrose I-fructosyltransferase and fruc-tan: fructan I-fructosyltransferase) from chicory roots ( Ci-chorium intybus 1.)[lJ.Planta,1996,200:335 -342.
  • 8Kawakami A, Yoshida M. Fructan , fructan I-fructosyl-transferase, a key enzyme for biosynthesis of graminan 01- igomers in hardened wheat[J]. Planta, 2005 ,223 : 90 - 104.
  • 9Vijn I, Smeekens S. Fructan , more than a reserve carbohy-drate?[J]. Plant Physiology, 1999,120 :351 - 359.
  • 10高翔,佘茂云,殷桂香,于洋,别晓敏,杜丽璞,徐惠君,叶兴国.小麦果聚糖合成酶基因6-SFT克隆和功能验证[J].科技导报,2009,27(23):70-75. 被引量:12

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