期刊文献+

代谢基因工程提高作物产量的分子靶标

Molecular Targets for Increasing Crop Yields by Metabolic Gene Engineering
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摘要 应用基因工程技术对植物细胞内的代谢途径进行遗传修饰,已成功地使细胞代谢发生改变或合成新的化合物。光合作用,淀粉合成,氮素同化和水分利用等是形成作物产量的基础代谢。对这些代谢途径中的关键步骤和靶分子进行基因修饰以提高作物产量的研究已取得长足的进展,并正在发展成为提高作物产量的新途径。本文着重论述应用代谢基因工程提高作物产量的技术策略,研究现状,存在的问题,所面临的挑战和应用前景。 The genetic modification of plant metabolic pathway has successfully enabled plant cell to alter its metabolism and/or synthesize new compounds. Photosynthesis, starch synthesis, nitrogen assimilation, water up-take and use are the basic metabolism which forms the grain yield of crops. The key steps and target molecules in those metabolic pathways are modified through transgenesis so as to enhance crop grain yields. Great progress has been achieved in this hot-spot research field. This kind of metabolic engineering is being developed to he a new way for increasing crop grain yields. In this review, strategies and highlights of genetic modification of these metabolisms are summarized. Furthermore, the major challenges faced with respect to enhancing yield through metabolic engineering and the perspectives of this approach are discussed.
出处 《生物技术通报》 CAS CSCD 2005年第5期1-6,共6页 Biotechnology Bulletin
基金 国家教育部科技重点项目(NO.2002-03) 留学回国人员科研基金资助(NO.2001-11)
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参考文献33

  • 1闫新甫主编..转基因植物[M].北京:科学出版社,2003:661.
  • 2Sharma HC, Crouch JH, Sharma KK. Plant Science, 2002, 163:381~395. 被引量:1
  • 3Smidansky ED, Martin JM, Hannah CL. Planta, 2003, 216:656~664. 被引量:1
  • 4Sonnewald U, Hajirezaei MR, Kossmann J, et al. Nat Biotechnol, 1997, 15: 794~797. 被引量:1
  • 5Roessner U, Luedemann A, Brust D, et al. Plant Cell, 2001,13: 11~29. 被引量:1
  • 6Stitt M. Bot. Acta, 1998, 111: 167~175. 被引量:1
  • 7Zrenner R, Willmitzer L, Sonnewald U. Planta, 1993, 190:247~252. 被引量:1
  • 8Matzker MA, Matzker AJM, Trends Genet, 1995, 11:13. 被引量:1
  • 9Paul M, Pellny T, Goddijn O. Trends Plant Sci, 2001, 6:197~200. 被引量:1
  • 10Rosche E, Blackmore D, Tegeder M, et al. Plant J, 2002, 30:165~175. 被引量:1

二级参考文献72

  • 1Knutzon DS,Thompson GA,Radke SE et al.Modification of Brassica seed oil by antisense expression of a stearoyl-acyl carrier protein desaturase gene.Proc Natl Acad Sci USA,1992,89:2624-2628 被引量:2
  • 2Kinney AJ.Development of genetically engineered soybean oils for food applications.J Food Lipids,1996,3:273-292 被引量:2
  • 3Liu Q,Singh S,Green A.High-oleic and high-stearic cottonseed oils.J Am Coll Nutr,2002,21:205s-211s 被引量:2
  • 4Stoutjesdijk PA,Hurlestone C,Singh SP et al.High-oleic acid Australian Brassica napus and B.juncea varieties produced by co-suppression of endogenous delta-12 desaturases.Biochem Soc Trans,2000,28:938-940 被引量:2
  • 5Drexler H,Spiekermann P,Meyer A et al.Metabolic engineering of fatty acids for breeding of new oilseed crops:strategies,problems and first results.J Plant Physiol,2003,160:779-802 被引量:2
  • 6Heppard EP,Kinney AJ,Stecca KL et al.Developmental and growth temperature regulation of two different microsomal omega-6 desaturase genes in soybeans.Plant Physiol,1996,110:311-319 被引量:2
  • 7Alonso DL,Maroto FG.Plants as ‘chemical factories' for the production of polyunsaturated fatty acids.Biotechnol Adv,2000,18:481-497 被引量:2
  • 8Sayanova O,Smith MA,Lapinskas P et al.Expression of a borage desaturase cDNA containing an N-terminal cytochrome b5 domain results in the accumulation of high levels of D6-desaturated fatty acids in transgenic tobacco.Proc Natl Acad Sci USA,1997,94:4211-4 被引量:2
  • 9Cook D,Grierson D,Jones C et al.Modification of fatty acid composition in tomato (Lycopersicon esculentum) by expression of a borage D6-desaturase.Mol Biotechnol,2002,21:123-128 被引量:2
  • 10Hong H,Datla N,Reed DW et al.High-level production of γ-linolenic acid in Brassica juncea using a Δ6 desaturase from Pythium irregulare.Plant Physiol,2002,129:354-362 被引量:2

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