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FIT interacts with AtbHLH38 and AtbHLH39 in regulating iron uptake gene expression for iron homeostasis in Arabidopsis 被引量:60

FIT interacts with AtbHLH38 and AtbHLH39 in regulating iron uptake gene expression for iron homeostasis in Arabidopsis
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摘要 Iron is an essential element for plant growth and development. Iron homeostasis in plants is tightly regulated at both transcriptional and posttranscriptional level. Several bHLH transcription factors involved in iron homeostasis have been identified recently. However, their regulatory mechanisms remain unknown. In this work, we demonstrate that the transcription factor FIT interacted with AtbHLH38 and AtbHLH39 and directly conferred the expression regulation of iron uptake genes for iron homeostasis in Arabidopsis. Yeast two-hybrid analysis and transient expression in Arabidopsis protoplasts showed that AtbHLH38 or AtbHLH39 interacted with FIT, a central transcription factor involved in iron homeostasis in Arabidopsis. Expression of FIT/AtbHLH38 or FIT/AtbHLH39 in yeast cells activated GUS expression driven by ferric chelate reductase (FRO2) and ferrous transporter (IRT1) promoters. Overexpression of FITwith either AtbHLH38 or AtbHLH39 in plants converted the expression of the iron uptake genes FRO2 and IRT1 from induced to constitutive. Further analysis revealed that FRO2 and IRT1 were not regulated at the posttranscriptional level in these plants because IRT1 protein accumulation and high ferric chelate reductase activity were detected in the overexpression plants under both iron deficiency and iron sufficiency. The double overexpression plants accumulated more iron in their shoots than wild type or the plants overexpressing either AtbHLH38, AtbHLH39 or FIT. Our data support that ferric-chelate reductase FRO2 and ferrous-transporter IRT1 are the targets of the three transcription factors and the transcription of FRO2 and IRT1 is directly regulated by a complex of FIT/AtbHLH38 or FIT/AtbHLH39.
出处 《Cell Research》 SCIE CAS CSCD 2008年第3期385-397,共13页 细胞研究(英文版)
基金 The authors thank ProfMary Lou Guerinot (Department of Biological Sciences, Dartmouth College, Hanover, New Hampshire) for providing IRT1 peptide antibody and for the critical reading of the manuscript. We are also grateful to Drs Zhentao Lin and Yongfu Fu (Institute of Crop Sciences, Chinese Academy of Agricultural Sciences, Beijing) for providing the BiFC assay system and technical supporting. This work was supported by the National Natural Science Foundation of China (Grant nos, 30530460 and 30521001) and the Ministry of Science and Technology of China (Grant nos, 2005cb20904 and 2006AA 10A 105) and Chinese Academy of Sciences (Grant no. KSCX2-YW-N- 001) as well as by the Harvest Plus-China Program.
关键词 activation of iron uptake genes Arabidipsis thaliana bHLH transcription factor iron homeostasis protein-proteininteraction 细胞活化 基因转染 转录因子 体内平衡
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  • 1Askwith C, de Silva D, Kaplan J (1996). Molecular biology of iron acquisition in Saccharomyces cerevisiae. Mol Microbiol 20, 27-34.
  • 2Baulcombe D (2004). RNA silencing in plants. Nature 431,356- 363.
  • 3Bent AF, Kunkel BN, Dahlbeck D et al. (1994). RPS2 of Arabidopsis thaliana'. A leucine-rich repeat class of plant disease resistance genes. Science 265, 1856-1860.
  • 4Bereczky Z, Wang HY, Schubert V, Ganal M, Bauer P (2003). Differential regulation of nramp and irt metal transporter genes in wild type and iron uptake mutants of tomato. J Biol Chem 278, 24697-24704.
  • 5Bughio N, Yamaguchi H, Nishizawa NK, Nakanishi H, Mori S (2002). Cloning an iron-regulated metal transporter from rice. J Exp Bot53, 1677-1682.
  • 6Cohen CK, Fox TC, Garvin DF, Kochlan LV (1998). The role of iron-deficiency stress responses in stimulating heavy-metal transport in plants. Plant Physiol 116, 1063-1072.
  • 7Colengelo EP, Guerinot ML (2004). The essential basic helixloop-helix protein FIT1 is required for the iron deficiency response. Plant Cell 16, 3400-3412.
  • 8Connolly EL, Fett JP, Guerinot ML (2002). Expression of the IRT1 metal transporter is controlled by metals at the levels of transcript and protein accumulation. Plant Cell 14, 1347-1357.
  • 9Connolly EL, Campbell NH, Grotz N, Prichard CL, Guerinot ML (2003). Overexpression of the FRO2 ferric chelate reductase confers tolerance to growth on low iron and uncovers posttranscriptional control. Plant Physiol 133, 1102-1110.
  • 10Curie C, Briat JF (2003). Iron transport and signaling in plants. Annu Rev Plant Biol 54, 183-206.

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