New insights into ferritin synthesis and function highlight a link between iron homeostasis and oxidative stress in plants

被引:226
作者
Briat, Jean-Francois [1 ]
Ravet, Karl [1 ]
Arnaud, Nicolas [1 ]
Duc, Celine [1 ]
Boucherez, Jossia [1 ]
Touraine, Brigitte [1 ]
Cellier, Francoise [1 ]
Gaymard, Frederic [1 ]
机构
[1] Univ Montpellier 2, Inst Natl Rech Agron, CNRS, Biochim & Physiol Mol Plantes, SupAgro Bat 7,2 Pl Viala, F-34060 Montpellier 1, France
关键词
Iron; bacterioferritins; ferritins; oxidative stress; iron storage; seeds; pathogens; nutrition; ESCHERICHIA-COLI BACTERIOFERRITIN; MESSENGER-RNA; DIFFERENTIAL EXPRESSION; PISUM-SATIVUM; DETOXIFICATION PROPERTIES; REGULATORY PROTEIN-1; BINDING PROTEIN; FUR MUTANTS; N-TERMINUS; GENE;
D O I
10.1093/aob/mcp128
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Background Iron is an essential element for both plant productivity and nutritional quality. Improving plant iron content was attempted through genetic engineering of plants overexpressing ferritins. However, both the roles of these proteins in plant physiology, and the mechanisms involved in the regulation of their expression are largely unknown. Although the structure of ferritins is highly conserved between plants and animals, their cellular localization differs. Furthermore, regulation of ferritin gene expression in response to iron excess occurs at the transcriptional level in plants, in contrast to animals which regulate ferritin expression at the translational level. Scope In this review, an overview of our knowledge of bacterial and mammalian ferritin synthesis and functions is presented. Then the following will be reviewed: (a) the specific features of plant ferritins; (b) the regulation of their synthesis during development and in response to various environmental cues; and (c) their function in plant physiology, with special emphasis on the role that both bacterial and plant ferritins play during plant-bacteria interactions. Arabidopsis ferritins are encoded by a small nuclear gene family of four members which are differentially expressed. Recent results obtained by using this model plant enabled progress to be made in our understanding of the regulation of the synthesis and the in planta function of these various ferritins. Conclusions Studies on plant ferritin functions and regulation of their synthesis revealed strong links between these proteins and protection against oxidative stress. In contrast, their putative iron-storage function to furnish iron during various development processes is unlikely to be essential. Ferritins, by buffering iron, exert a fine tuning of the quantity of metal required for metabolic purposes, and help plants to cope with adverse situations, the deleterious effects of which would be amplified if no system had evolved to take care of free reactive iron.
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收藏
页码:811 / 822
页数:12
相关论文
共 124 条
  • [31] Plants ectopically expressing the iron-binding protein, ferritin, are tolerant to oxidative damage and pathogens
    Deák, M
    Horváth, GV
    Davletova, S
    Török, K
    Sass, L
    Vass, I
    Barna, B
    Király, Z
    Dudits, D
    [J]. NATURE BIOTECHNOLOGY, 1999, 17 (02) : 192 - 196
  • [32] Siderophore-mediated upregulation of Arabidopsis ferritin expression in response to Erwinia chrysanthemi infection
    Dellagi, A
    Rigault, M
    Segond, D
    Roux, C
    Kraepiel, Y
    Cellier, F
    Briat, JF
    Gaymard, F
    Expert, D
    [J]. PLANT JOURNAL, 2005, 43 (02) : 262 - 272
  • [33] A novel ferritin gene, SferH-5, reveals heterogeneity of the 26.5-kDa subunit of soybean (Glycine max) seed ferritin
    Dong, Xiangbai
    Sun, Qiming
    Wei, Dongping
    Li, Jiahuang
    Li, Jie
    Tang, Bo
    Jia, Qi
    Hu, Wenjun
    Zhao, Yongjuan
    Hua, Zi-Chun
    [J]. FEBS LETTERS, 2007, 581 (30): : 5796 - 5802
  • [34] Siderophore-controlled Iron Assimilation in the Enterobacterium Erwinia chrysanthemi EVIDENCE FOR THE INVOLVEMENT OF BACTERIOFERRITIN AND THE Suf IRON-SULFUR CLUSTER ASSEMBLY MACHINERY
    Expert, Dominique
    Boughammoura, Aida
    Franza, Thierry
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2008, 283 (52) : 36564 - 36572
  • [35] Expert D, 2006, IRON NUTRITION IN PLANTS AND RHIZOSPHERIC MICROORGANISMS, P215, DOI 10.1007/1-4020-4743-6_10
  • [36] A phosphomimetic mutation at Ser-138 renders iron regulatory protein 1 sensitive to iron-dependent degradation
    Fillebeen, C
    Chahine, D
    Caltagirone, A
    Segal, P
    Pantopoulos, K
    [J]. MOLECULAR AND CELLULAR BIOLOGY, 2003, 23 (19) : 6973 - 6981
  • [37] STRUCTURE AND DIFFERENTIAL EXPRESSION OF 2 MAIZE FERRITIN GENES IN RESPONSE TO IRON AND ABSCISIC-ACID
    FOBISLOISY, I
    LORIDON, K
    LOBREAUX, S
    LEBRUN, M
    BRIAT, JF
    [J]. EUROPEAN JOURNAL OF BIOCHEMISTRY, 1995, 231 (03): : 609 - 619
  • [38] Coupling of iron assimilation and pectinolysis in Erwinia chrysanthemi 3937
    Franza, T
    Michaud-Soret, I
    Piquerel, P
    Expert, D
    [J]. MOLECULAR PLANT-MICROBE INTERACTIONS, 2002, 15 (11) : 1181 - 1191
  • [39] Altered body iron distribution and rmicrocytosis in mice deficient in iron regulatory protein 2 (IRP2)
    Galy, B
    Ferring, D
    Minana, B
    Bell, O
    Janser, HG
    Muckenthaler, M
    Schümann, K
    Hentze, MW
    [J]. BLOOD, 2005, 106 (07) : 2580 - 2589
  • [40] Characterization of a ferritin mRNA from Arabidopsis thaliana accumulated in response to iron through an oxidative pathway independent of abscisic acid
    Gaymard, F
    Boucherez, J
    Briat, JF
    [J]. BIOCHEMICAL JOURNAL, 1996, 318 : 67 - 73