Differential mRNA translation contributes to gene regulation under non-stress and dehydration stress conditions in Arabidopsis thaliana

被引:250
作者
Kawaguchi, R [1 ]
Girke, T [1 ]
Bray, EA [1 ]
Bailey-Serres, J [1 ]
机构
[1] Univ Calif Riverside, Ctr Plant Cell Biol, Dept Bot & Plant Sci, Riverside, CA 92521 USA
关键词
polysomes; ribosome loading; water-deficit stress; dehydration stress; microarray; translational control;
D O I
10.1111/j.1365-313X.2004.02090.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Translational regulation was evaluated for over 2000 genes by measurement of the proportion of individual mRNA species in polysomal (PS) complexes in leaves of non-stressed and moderately dehydration-stressed Arabidopsis. The amount of each mRNA in polysomes ranged from 23 to 97% in non-stressed leaves and was significantly reduced for a large portion of the genes (71%) in response to dehydration. The effect of dehydration on translational status varied extensively between mRNA species. Sixty per cent of the dehydration-inducible mRNAs with twofold or greater increase in abundance maintained PS levels in response to water-deficit stress, while 40% showed impaired ribosome loading (RL). PS association declined significantly for 92% of the mRNAs that displayed a strong decrease in abundance, indicating a relationship between translation and decreased gene transcription and/or mRNA stability. Interestingly, many mRNAs that encode proteins of similar biological function displayed coordinate translational regulation. Thus, the abundance of PS mRNA may provide a more accurate estimate of gene expression than total cellular mRNA because of extensive differential translational regulation.
引用
收藏
页码:823 / 839
页数:17
相关论文
共 56 条
  • [31] Transcriptome changes for Arabidopsis in response to salt, osmotic, and cold stress
    Kreps, JA
    Wu, YJ
    Chang, HS
    Zhu, T
    Wang, X
    Harper, JF
    [J]. PLANT PHYSIOLOGY, 2002, 130 (04) : 2129 - 2141
  • [32] Global and specific translational regulation in the genomic response of Saccharomyces cerevisiae to a rapid transfer from a fermentable to a nonfermentable carbon source
    Kuhn, KM
    DeRisi, JL
    Brown, PO
    Sarnow, P
    [J]. MOLECULAR AND CELLULAR BIOLOGY, 2001, 21 (03) : 916 - 927
  • [33] Li BJ, 1999, MOL CELL BIOL, V19, P5393
  • [34] Modulation of an RNA-binding protein by abscisic-acid-activated protein kinase
    Li, JX
    Kinoshita, T
    Pandey, S
    Ng, CKY
    Gygi, SP
    Shimazaki, K
    Assmann, SM
    [J]. NATURE, 2002, 418 (6899) : 793 - 797
  • [35] Heat shock protein HSP101 binds to the Fed-1 internal light regulatory element and mediates its high translational activity
    Ling, J
    Wells, DR
    Tanguay, RL
    Dickey, LF
    Thompson, WF
    Gallie, DR
    [J]. PLANT CELL, 2000, 12 (07) : 1213 - 1227
  • [36] A mutation in the arabidopsis HYL1 gene encoding a dsRNA binding protein affects responses to abscisic acid, auxin, and cytokinin
    Lu, C
    Fedoroff, N
    [J]. PLANT CELL, 2000, 12 (12) : 2351 - 2365
  • [37] POLYSOMES, MESSENGER-RNA, AND GROWTH IN SOYBEAN STEMS DURING DEVELOPMENT AND WATER DEFICIT
    MASON, HS
    MULLET, JE
    BOYER, JS
    [J]. PLANT PHYSIOLOGY, 1988, 86 (03) : 725 - 733
  • [38] Mathews MB, 2000, COLD SPRING HARBOR M, V39, P1
  • [39] Translational control by CPEB: A means to the end
    Mendez, R
    Richter, JD
    [J]. NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2001, 2 (07) : 521 - 529
  • [40] Synthesis of the translational apparatus is regulated at the translational level
    Meyuhas, O
    [J]. EUROPEAN JOURNAL OF BIOCHEMISTRY, 2000, 267 (21): : 6321 - 6330