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谷氨酸调节根系形态建成的研究进展 被引量:11

Research Progress on Formation of Regulative Root System Morphology by Glutamate
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摘要 根系的主要生理学功能是在土壤中探寻并获取所需要的物质,以维持植物的正常生长与发育。根系形态的建成通常能够随着土壤环境的变化而做出适应性调整,以利于其竞争土壤中的养分、水分等。阐述了L-谷氨酸(L-Glu)在高等植物氮代谢过程中的核心作用位置、在植物体内外环境中浓度变化状况,以及其作为生物信号分子有着远古的进化起源等。综述了近期所发现的关于外源L-Glu调控根系生长发育的生物学特征,并讨论了L-Glu调控根系生长与形态结构的可能性分子遗传学机理,这对认识植物有效竞争土壤中的有机(氮源)营养具有重要的生态学和农学意义。 The main physiological function of root system is to explore soils and acquire substances needed for plant optimal growth and development.In order to competitively capture soil nutrients and water,the root system could adjust its architecture formation to adapt to the soil environmental changes.This paper expounds the centre role of L-glutamate(L-Glu or Glu) in plant nitrogen metabolism,the concentration changes in plant external and internal environments and the ancient evolutionary origin of Glu-signaling.The biological characteristics of root growth and development regulated by Glu are summarized,and the possible molecular genetics mechanisms of L-Glu regulation on root growth and formulation are discussed.This has important ecological and agricultural significance for understanding how the plant competitively captures organic nutrients from the soil effectively.
出处 《中国农业科技导报》 CAS CSCD 2011年第1期34-43,共10页 Journal of Agricultural Science and Technology
基金 国家自然科学基金项目(30771288) 国家863计划项目(2006AA10Z166) 中国农业大学基本科研业务费研究生科研创新专项(KYCX09066)资助
关键词 根系形态建成 L-谷氨酸 信号分子 谷氨酸受体基因 formation of root morphology L-Glu signal molecule Glu receptor gene
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参考文献50

  • 1Osmont K S, Sibout R, Hardtke C S. Hidden branches: developments in root system architecture [ J ]. Ann. Rev. Plant Physiol., 2007,55:93- 113.
  • 2Zhang H M, Rong H L, Pilbeam D. Signalling mechanisms underlying the morphological responses of the root system to nitrogen in Arabidopsis thaliana[JJ. J. Exp. Bot. , 2007,58 (9) :2329 -2338.
  • 3Walch-Liu P, Liu L H, Remans T, et al.. Evidence that L-Glutamate can act as an exogenous signal to modulate root growth and branching in Arabidopsis thaliana [ J ]. Plant Cell Physiol. , 2006, 47 ( 8 ) : 1045 - 1057.
  • 4Forde B G, Peter J L. Glutmate in plants:metabolism,regulation, and signaling[J]. J. Exp. Bot. , 2007,58 (9) : 2339 - 2358.
  • 5Yaronskaya E, Vershilovskaya I, Poers Y, et al.. Cytokinin effects on tetrapyrrole biosynthesis and photosynthetic activity in barley seedlings[J]. Planta, 2006, 224:700 -709.
  • 6Bowsher C G, Lacey A E, Hanke G T, et al.. The effect of Glc6P uptake and its subsequent oxidation within pea root plastids on nitrite reduction and glutamate synthesis [ J ]. J. Exp. Bot., 2007,58:1109-1118.
  • 7Lea P J, Sodek L, Parry M A J, et al.. Asparagine in plants [J]. Ann. Appl. Biol. ,2007,150:1-26.
  • 8Masclaux-Daubresse C, Reisdorf-Cren M, Pageau K, et al..Glutamine synthetase glutamate synthase pathway and glutamate dehydrogenase play distinct roles in the sink source nitrogen cycle in tobacco[ J3. Plant Physiol. , 2006, 140 :444 - d56.
  • 9Fontaine J X, Saladino F, Agrimonti C, et al.. Control of the synthesis and subcellular targeting of the two GDH gene products in leaves and stems of Nicotiana plumbaginifolia and Arabidopsis thaliana[J]. Plant Cell Physiol. , 2006,47:410 - 418.
  • 10Slocum R D. Genes, enzymes and regulation of arginine biosynthesis in plants ~ J ]. Plant Physiol. Biochem. , 2005, 43:729 -745.

二级参考文献33

  • 1周才平,欧阳华,宋明华.中国森林生态系统氮循环特征与生产力间的相互关系[J].应用生态学报,2005,16(2):203-206. 被引量:17
  • 2聂磊,蒋俊树.GB/T 19630-2005《有机产品》标准解析[J].中国标准化,2006(10):49-51. 被引量:2
  • 3Yu Z, Zhang Q, Kraus TEC, et al. Contribution of amino compounds to dissolved organic nitrogen in forest soils. Biogeochemistry, 2002, 61:173-198.
  • 4Bhogal A, Murphy DV. Distribution of nitrogen pools in the soil profile of undisturbed and reseeded grasslands. Biology and Fertility of Soils, 2000, 30 : 356-362.
  • 5Jones DL, Hodge A. Biodegradation kinetics and sorption reactions of three differently charged amino acids in soil and their effects on plant organic nitrogen availability. Soil Biology & Biochemistry, 1999, 31 : 1331-1342.
  • 6Jones DL. Amino acid biodegradation and its potential effects on organic nitrogen capture by plants. Soil Biology & Biochemistry, 1999, 31:613-622.
  • 7Vinolas LC, Healey JR, Jones DL. Kinetics of soil microbial uptake of free amino acids. Biology and Fertility of Soils, 2001, 33:67-74.
  • 8Jones DL, Kemmitt SJ, Wright D, et al. Rapid intrinsic rates of amino acid biodegradation in soils are unaffected by agricultural management strategy. Soil Biology & Biochemistry, 2005, 37:1267-1275.
  • 9Jones DL, Healey JR, Willett VB, et al. Dissolved organic nitrogen uptake by plants -An important N uptake pathway? Soil Biology & Biochemistry, 2005, 37: 413- 423.
  • 10Kielland K. Landscape patterns of free amino acids in arctic tundra soils. Biogeochemistry, 1995, 31 : 85-98.

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