Differential interaction of maize root ferredoxin:NADP+ oxidoreductase with photosynthetic and non-photosynthetic ferredoxin isoproteins

被引:130
作者
Onda, Y
Matsumura, T
Kimata-Ariga, Y
Sakakibara, H
Sugiyama, T
Hase, T
机构
[1] Osaka Univ, Div Enzymol, Inst Prot Res, Suita, Osaka 5650871, Japan
[2] Nagoya Univ, Dept Biol Mechanisms & Funct, Grad Sch Bioagr Sci, Nagoya, Aichi 4648601, Japan
关键词
D O I
10.1104/pp.123.3.1037
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
In higher plants ferredoxin (Fd):NADP(+) oxidoreductase (FNR) and Fd are each distributed in photosynthetic and nonphotosynthetic organs as distinct isoproteins. We have cloned cDNAs for leaf FNR (L-FNR I and L-FNR II) and root FNR (R-FNR) from maize (Zen mays L.), and produced recombinant L-FNR I and R-FNR to study their enzymatic functions through kinetic and Fd-binding analyses. The K-m value obtained by assay for a diaphorase activity indicated that R-FNR had a 10-fold higher affinity for NADPH than L-FNR I. When we assayed for NADPH-cytochrome c reductase activity using maize photosynthetic Fd (Fd I) and non-photosynthetic Fd (Fd III), the R-FNR showed a marked difference in affinity between these two Fd isoproteins; the F-m for Fd III was 3.0 mu M and that for Fd I was 29 mu M. Consistent with this, the dissociation constant for the R-FNR:Fd III complex was 10-fold smaller than that of the R-FNR:Fd I complex. This differential binding capacity was confirmed by an affinity chromatography of R-FNR on Fd-sepharose with stronger binding to Fd III. L-FNR I showed no such differential interaction with Fd I and Fd III. These data demonstrated that R-FNR has the ability to discriminate between these two types of Fds. We propose that the stronger interaction of R-FNR with Fd III is crucial for an efficient electron flux of NADPH-FNR-FIL cascade, thus supporting Fd-dependent metabolism in non-photosynthetic organs.
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页码:1037 / 1045
页数:9
相关论文
共 40 条
  • [1] Comparison of the electrostatic binding sites on the surface of ferredoxin for two ferredoxin-dependent enzymes, ferredoxin-NADP+ reductase and sulfite reductase
    Akashi, T
    Matsumura, T
    Ideguchi, T
    Iwakiri, K
    Kawakatsu, T
    Taniguchi, I
    Hase, T
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (41) : 29399 - 29405
  • [2] Akashi T., 1997, J INORG BIOCHEM, V67, P255
  • [3] Aliverti A, 1999, FLAVINS FLAVOPROTEIN, P265
  • [4] A non-photosynthetic ferredoxin gene is induced by ethylene in Citrus organs
    Alonso, JM
    Chamarro, J
    Granell, A
    [J]. PLANT MOLECULAR BIOLOGY, 1995, 29 (06) : 1211 - 1221
  • [5] SEQUENCE OF A CDNA-ENCODING RICE (ORYZA-SATIVA L) LEAF FERREDOXIN-NADP(+) REDUCTASE
    AOKI, H
    DOYAMA, N
    IDA, S
    [J]. PLANT PHYSIOLOGY, 1994, 104 (04) : 1473 - 1474
  • [6] NUCLEOTIDE-SEQUENCE OF A RICE ROOT FERREDOXIN-NADP(+) REDUCTASE CDNA AND ITS INDUCTION BY NITRATE
    AOKI, H
    IDA, S
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 1994, 1183 (03): : 553 - 556
  • [7] Arnon DI, 1940, SOIL SCI, V50, P463
  • [8] BATIE CJ, 1981, J BIOL CHEM, V256, P7756
  • [9] REDUCTANT FOR GLUTAMATE SYNTHASE IS GENERATED BY THE OXIDATIVE PENTOSE-PHOSPHATE PATHWAY IN NONPHOTOSYNTHETIC ROOT PLASTIDS
    BOWSHER, CG
    BOULTON, EL
    ROSE, JKC
    NAYAGAM, S
    EMES, MJ
    [J]. PLANT JOURNAL, 1992, 2 (06) : 893 - 898
  • [10] NITRITE REDUCTION AND CARBOHYDRATE-METABOLISM IN PLASTIDS PURIFIED FROM ROOTS OF PISUM-SATIVUM-L
    BOWSHER, CG
    HUCKLESBY, DP
    EMES, MJ
    [J]. PLANTA, 1989, 177 (03) : 359 - 366