A specific transporter for iron(III)-phytosiderophore in barley roots

被引:196
作者
Murata, Y
Ma, JF
Yamaji, N
Ueno, D
Nomoto, K
Iwashita, T
机构
[1] Suntory Inst Bioorgan Res, Shimamoto, Osaka 6188503, Japan
[2] Okayama Univ, Bioresources Res Inst, Kurashiki, Okayama 7100046, Japan
[3] Toyo Univ, Fac Life Sci, Gunma 3740113, Japan
关键词
mugineic acid; iron(III)-phytosiderophore transporter; epidermal cells of barley roots; YS1; gene; nicotianamine; tolerance of iron deficiency;
D O I
10.1111/j.1365-313X.2006.02714.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Iron acquisition of graminaceous plants is characterized by the synthesis and secretion of the iron-chelating phytosiderophore, mugineic acid (MA), and by a specific uptake system for iron(III)-phytosiderophore complexes. We identified a gene specifically encoding an iron-phytosiderophore transporter (HvYS1) in barley, which is the most tolerant species to iron deficiency among graminaceous plants. HvYS1 was predicted to encode a polypeptide of 678 amino acids and to have 72.7% identity with ZmYS1, a first protein identified as an iron(III)-phytosiderophore transporter in maize. Real-time RT-PCR analysis showed that the HvYS1 gene was mainly expressed in the roots, and its expression was enhanced under iron deficiency. In situ hybridization analysis of iron-deficient barley roots revealed that the mRNA of HvYS1 was localized in epidermal root cells. Furthermore, immunohistological staining with anti-HvYS1 polyclonal antibody showed the same localization as the mRNA. HvYS1 functionally complemented yeast strains defective in iron uptake on media containing iron(III)-MA, but not iron-nicotianamine (NA). Expression of HvYS1 in Xenopus oocytes showed strict specificity for both metals and ligands: HvYS1 transports only iron(III) chelated with phytosiderophore. The localization and substrate specificity of HvYS1 is different from those of ZmYS1, indicating that HvYS1 is a specific transporter for iron(III)-phytosiderophore involved in primary iron acquisition from soil in barley roots.
引用
收藏
页码:563 / 572
页数:10
相关论文
共 44 条
[1]   Overexpression of the FRO2 ferric chelate reductase confers tolerance to growth on low iron and uncovers posttranscriptional control [J].
Connolly, EL ;
Campbell, NH ;
Grotz, N ;
Prichard, CL ;
Guerinot, ML .
PLANT PHYSIOLOGY, 2003, 133 (03) :1102-1110
[2]   Maize yellow stripe1 encodes a membrane protein directly involved in Fe(III) uptake [J].
Curie, C ;
Panaviene, Z ;
Loulergue, C ;
Dellaporta, SL ;
Briat, JF ;
Walker, EL .
NATURE, 2001, 409 (6818) :346-349
[3]   Iron transport and signaling in plants [J].
Curie, C ;
Briat, JF .
ANNUAL REVIEW OF PLANT BIOLOGY, 2003, 54 :183-206
[4]   Arabidopsis Yellow Stripe-Like2 (YSL2):: a metal-regulated gene encoding a plasma membrane transporter of nicotianamine-metal complexes [J].
DiDonato, RJ ;
Roberts, LA ;
Sanderson, T ;
Eisley, RB ;
Walker, EL .
PLANT JOURNAL, 2004, 39 (03) :403-414
[5]   Characterization of the FET4 protein of yeast - Evidence for a direct role in the transport of iron [J].
Dix, D ;
Bridgham, J ;
Broderius, M ;
Eide, D .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1997, 272 (18) :11770-11777
[6]   A novel iron-regulated metal transporter from plants identified by functional expression in yeast [J].
Eide, D ;
Broderius, M ;
Fett, J ;
Guerinot, ML .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1996, 93 (11) :5624-5628
[7]   Iron homeostasis related genes in rice [J].
Gross, J ;
Stein, RJ ;
Fett-Neto, AG ;
Fett, JP .
GENETICS AND MOLECULAR BIOLOGY, 2003, 26 (04) :477-497
[8]   Improving the nutrient composition of plants to enhance human nutrition and health [J].
Grusak, MA ;
DellaPenna, D .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1999, 50 :133-161
[9]   SOSUI: classification and secondary structure prediction system for membrane proteins [J].
Hirokawa, T ;
Boon-Chieng, S ;
Mitaku, S .
BIOINFORMATICS, 1998, 14 (04) :378-379
[10]  
Jackson D, 1991, MOL PLANT PATHOL, P163