Two cDNAs from potato are able to complement a phosphate uptake-deficient yeast mutant: Identification of phosphate transporters from higher plants

被引:171
作者
Leggewie, G [1 ]
Willmitzer, L [1 ]
Riesmeier, JW [1 ]
机构
[1] INST GENBIOL FORSCH, D-14195 BERLIN, GERMANY
关键词
D O I
10.1105/tpc.9.3.381
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Acquisition as well as translocation of phosphate are essential processes for plant growth. In many plants, phosphate uptake by roots and distribution within the plant are presumed to occur via a phosphate/proton cotransport mechanism. Here, we describe the isolation of two cDNAs, StPT1 and StPT2, from potato (Solanum tuberosum) that show homology to the phosphate/proton cotransporter PHO84 from the yeast Saccharomyces cerevisiae. The predicted products of both cDNAs share 35% identity with the PHO84 sequence, The deduced structure of the encoded proteins revealed 12 membrane-spanning domains with a central hydrophilic region, The molecular mass was calculated to be 59 kD for the StPT1 protein and 58 kD for the StPT2 protein. When expressed in a PHO84-deficient yeast strain, MB192, both cDNAs complemented the mutant, Uptake of radioactive orthophosphate by the yeast mutant expressing either StPT1 or StPT2 was dependent on pH and reduced in the presence of uncouplers of oxidative phosphorylation, such as 2,4-dinitrophenol or carbonyl cyanide m-chlorophenylhydrazone. The K-m for Pi uptake of the StPT1 and StPT2 proteins was determined to be 280 and 130 mu M, respectively, StPT1 is expressed in roots, tubers, and source leaves as well as in floral organs, Deprivation of nitrogen, phosphorus, potassium, and sulfur changed spatial expression as well as the expression level of StPT1. StPT2 expression was detected mainly in root organs when plants were deprived of Pi and to a lesser extent under sulfur deprivation conditions, No expression was found under optimized nutrition conditions or when other macronutrients were lacking.
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页码:381 / 392
页数:12
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  • [1] ACCELERATION OF NUCLEIC-ACID HYBRIDIZATION RATE BY POLYETHYLENE-GLYCOL
    AMASINO, RM
    [J]. ANALYTICAL BIOCHEMISTRY, 1986, 152 (02) : 304 - 307
  • [2] EXPRESSION AND PURIFICATION OF THE HIGH-AFFINITY PHOSPHATE TRANSPORTER OF SACCHAROMYCES-CEREVISIAE
    BERHE, A
    FRISTEDT, U
    PERSSON, BL
    [J]. EUROPEAN JOURNAL OF BIOCHEMISTRY, 1995, 227 (1-2): : 566 - 572
  • [3] Bieleski R. L., 1983, Inorganic plant nutrition, P422
  • [4] PHOSPHATE POOLS, PHOSPHATE TRANSPORT, AND PHOSPHATE AVAILABILITY
    BIELESKI, RL
    [J]. ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1973, 24 : 225 - 252
  • [5] BINHUI N, 1994, P NATL ACAD SCI USA, V91, P5607
  • [6] THE PHO84 GENE OF SACCHAROMYCES-CEREVISIAE ENCODES AN INORGANIC-PHOSPHATE TRANSPORTER
    BUNYA, M
    NISHIMURA, M
    HARASHIMA, S
    OSHIMA, Y
    [J]. MOLECULAR AND CELLULAR BIOLOGY, 1991, 11 (06) : 3229 - 3238
  • [7] Two new genes, PHO86 and PHO87, involved in inorganic phosphate uptake in Saccharomyces cerevisiae
    BunYa, M
    Shikata, K
    Nakade, S
    Yompakdee, C
    Harashima, S
    Oshima, Y
    [J]. CURRENT GENETICS, 1996, 29 (04) : 344 - 351
  • [8] CIRILLO VP, 1989, METHOD ENZYMOL, V174, P617
  • [9] Clarkson D. T., 1990, Progress in Botany, P61
  • [10] PHYSIOLOGICAL-CHANGES IN, AND PHOSPHATE-UPTAKE BY POTATO PLANTS DURING DEVELOPMENT OF, AND RECOVERY FROM PHOSPHATE DEFICIENCY
    COGLIATTI, DH
    CLARKSON, DT
    [J]. PHYSIOLOGIA PLANTARUM, 1983, 58 (03) : 287 - 294