Cloning two genes for nicotianamine aminotransferase, a critical enzyme in iron acquisition (strategy II) in graminaceous plants

被引:158
作者
Takahashi, M
Yamaguchi, H
Nakanishi, H
Shioiri, T
Nishizawa, NK
Mori, S [1 ]
机构
[1] Japan Sci & Technol Corp, Core Res Evolut Sci & Technol, Moroyama, Saitama 3320012, Japan
[2] Univ Tokyo, Lab Plant Mol Physiol, Tokyo 1138657, Japan
[3] Nagoya City Univ, Dept Pharmacol, Nagoya, Aichi 4670027, Japan
关键词
D O I
10.1104/pp.121.3.947
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Nicotianamine aminotransferase (NAAT), the key enzyme involved in the biosynthesis of mugineic acid family phytosiderophores (MAs), catalyzes the amino transfer of nicotianamine (NA). MAs are found only in graminaceous plants, although NA has been detected in every plant so far investigated. Therefore, this amino transfer reaction is the first step in the unique biosynthesis of MAs that has evolved in graminaceous plants. NAAT activity is dramatically induced by Fe deficiency and suppressed by re resupply. Based on the protein sequence of NAAT purified from Fe-deficient barley (Hordeum vulgare) roots, two distinct cDNA clones encoding NAAT, naat-A and naat-B, were identified. Their deduced amino acid sequences were homologous to several aminotransferases, and shared consensus sequences for the pyridoxal phosphate-binding site lysine residue and its surrounding residues. The expression of both naat-A and naat-B is increased in Fe-deficient barley roots, while naat-B has a low level of constitutive expression in Fe-sufficient barley roots. No detectable mRNA from either naat-A or naat-B was present in the leaves of either Fe-deficient or Fe-sufficient barley. One genomic clone with a tandem array of naat-1 and naat-A in this order was identified. naat-B and naat-A each have six introns at the same locations. The isolation of NAAT genes will pave the way to understanding the mechanism of the response to Fe in graminaceous plants, and may lead to the development of cultivars tolerant to Fe deficiency that can grow in calcareous soils.
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页码:947 / 956
页数:10
相关论文
共 50 条
[21]  
Mihashi S., 1989, Biology of Metals, V2, P146, DOI 10.1007/BF01142553
[22]   MUGINEIC ACID IRON(III) COMPLEX AND ITS STRUCTURALLY ANALOGOUS COBALT(III) COMPLEX - CHARACTERIZATION AND IMPLICATION FOR ABSORPTION AND TRANSPORT OF IRON IN GRAMINEOUS PLANTS [J].
MINO, Y ;
ISHIDA, T ;
OTA, N ;
INOUE, M ;
NOMOTO, K ;
TAKEMOTO, T ;
TANAKA, H ;
SUGIURA, Y .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1983, 105 (14) :4671-4676
[23]  
MORI S, 1989, PLANT CELL PHYSIOL, V30, P1057
[24]   IDENTIFICATION OF RYE CHROMOSOME-5R AS A CARRIER OF THE GENES FOR MUGINEIC ACID SYNTHETASE AND 3-HYDROXYMUGINEIC ACID SYNTHETASE USING WHEAT-RYE ADDITION LINES [J].
MORI, S ;
KISHINISHIZAWA, N ;
FUJIGAKI, J .
JAPANESE JOURNAL OF GENETICS, 1990, 65 (05) :343-352
[25]   DYNAMIC STATE OF MUGINEIC ACID AND ANALOGOUS PHYTOSIDEROPHORES IN FE-DEFICIENT BARLEY [J].
MORI, S ;
NISHIZAWA, N ;
KAWAI, S ;
SATO, Y ;
TAKAGI, S .
JOURNAL OF PLANT NUTRITION, 1987, 10 (9-16) :1003-1011
[26]   WHY ARE YOUNG RICE PLANTS HIGHLY SUSCEPTIBLE TO IRON-DEFICIENCY [J].
MORI, S ;
NISHIZAWA, N ;
HAYASHI, H ;
CHINO, M ;
YOSHIMURA, E ;
ISHIHARA, J .
PLANT AND SOIL, 1991, 130 (1-2) :143-156
[27]   THE SUBSTANTIA-NIGRA IS AN IMPORTANT SITE FOR THE CONTAINMENT OF SEIZURE GENERALIZATION IN THE KINDLING MODEL OF EPILEPSY [J].
MORIMOTO, K ;
GODDARD, GV .
EPILEPSIA, 1987, 28 (01) :1-10
[28]   RAPID ISOLATION OF HIGH MOLECULAR-WEIGHT PLANT DNA [J].
MURRAY, MG ;
THOMPSON, WF .
NUCLEIC ACIDS RESEARCH, 1980, 8 (19) :4321-4325
[29]   DIFFERENTIAL EXPRESSION OF CONGLYCININ ALPHA'-SUBUNIT AND BETA-SUBUNIT GENES IN TRANSGENIC PLANTS [J].
NAITO, S ;
DUBE, PH ;
BEACHY, RN .
PLANT MOLECULAR BIOLOGY, 1988, 11 (02) :109-123
[30]  
NISHIZAWA N, 1987, J PLANT NUTR, V10, P1012