Characterisation of flavodoxin NADP+ oxidoreductase and flavodoxin;: key components of electron transfer in Escherichia coli

被引:85
作者
McIver, L [1 ]
Leadbeater, C [1 ]
Campopiano, DJ [1 ]
Baxter, RL [1 ]
Daff, SN [1 ]
Chapman, SK [1 ]
Munro, AW [1 ]
机构
[1] Univ Edinburgh, Dept Chem, Edinburgh EH9 3JJ, Midlothian, Scotland
来源
EUROPEAN JOURNAL OF BIOCHEMISTRY | 1998年 / 257卷 / 03期
关键词
flavodoxin; flavodoxin NADP(+) oxidoreductase; redox potentiometry; enzyme kinetics; cytochrome P-450;
D O I
10.1046/j.1432-1327.1998.2570577.x
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
The genes encoding the Escherichia coli flavodoxin NADP(+) oxidoreductase (FLDR) and flavodoxin (FLD) have been overexpressed in E. coli as the major cell proteins (at least 13.5% and 11.4% of total soluble protein, respectively) and the gene products purified to homogeneity. The FLDR reduces potassium ferricyanide with a k(cat) of 1610.3 min(-1) and a K-m of 23.6 mu M, and cytochrome c with a k(cat) of 141.3 min(-1) and a K-m of 17.6 mu M. The cytochrome c reductase rate is increased sixfold by addition of FLD and an apparent K-m of 6.84 mu M was measured or the affinity of the two flavoproteins. The molecular masses of FLDR and FLD apoproteins were determined as 27648 Da and 19606 Da and the isolectric points as 4.8 and 3.5, respectively. The mass of the FLDR is precisely that predicted from the atomic structure and indicates that residue 126 is arginine, not glutamine as predicted from the gene sequence. FLDR and FLD were covalently crosslinked using 1-ethyl-3(dimethylamino-propyl) carbodiimide to generate a catalytically active heterodimer. The midpoint reduction potentials of the oxidised/semiquinone and semiquinone/hydroquinone couples of both FLDR (-308 mV and -268 mV, respectively) and FLD (-254 mV and -433 mV, respectively) were measured using redox potentiometry. This confirms the electron-transfer route as NADPH-->FLDR-->FLD. Binding of 2' adenosine monophosphate increases the midpoint reduction potentials for both FLDR couples. These data highlight the strong stabilisation of the flavodoxin semiquinone (absorption coefficient calculated as 4933 M-1 cm(-1) at 583 nm) with respect to the hydroquinone state and indicate that FLD must act as a Single electron shuttle from the semiquinone form in its support of cellular functions, and to facilitate catalytic activity of microsomal cytochromes P-450 heterologously expressed in E. coli. Kinetic studies of electron transfer from FLDR/FLD to the fatty acid oxidase P-450 BM3 support this conclusion, indicating a ping-pong mechanism. This is the first report of the potentiometric analysis of the full E. coli NAD(P)H/FLDR/FLD electron-transfer chain; a complex critical to the function of a large number of E. coli redox systems.
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收藏
页码:577 / 585
页数:9
相关论文
共 32 条
[11]   The domain architecture of cytochrome P450BM-3 [J].
Govindaraj, S ;
Poulos, TL .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1997, 272 (12) :7915-7921
[12]  
Hoover DM, 1997, PROTEIN SCI, V6, P2525
[13]   The three-dimensional structure of flavodoxin reductase from Escherichia coli at 1.7 angstrom resolution [J].
Ingelman, M ;
Bianchi, V ;
Eklund, H .
JOURNAL OF MOLECULAR BIOLOGY, 1997, 268 (01) :147-157
[14]   REDOX PROPERTIES OF MICROSOMAL REDUCED NICOTINAMIDE ADENINE DINUCLEOTIDE CYTOCHROME-B5 REDUCTASE AND CYTOCHROME-B5 [J].
IYANAGI, T .
BIOCHEMISTRY, 1977, 16 (12) :2725-2730
[15]   REDOX PROPERTIES OF REDUCED NICOTINAMIDE ADENINE-DINUCLEOTIDE PHOSPHATE-CYTOCHROME P-450 AND REDUCED NICOTINAMIDE ADENINE DINUCLEOTIDE-CYTOCHROME B5 REDUCTASES [J].
IYANAGI, T ;
MAKINO, N ;
MASON, HS .
BIOCHEMISTRY, 1974, 13 (08) :1701-1710
[16]  
JENKINS CM, 1994, J BIOL CHEM, V269, P27401
[17]   Negatively charged Anabaena flavodoxin residues (Asp(144) and Glu(145)) are important for reconstitution of cytochrome P450 17 alpha-hydroxylase activity [J].
Jenkins, CM ;
Genzor, CG ;
Fillat, MF ;
Waterman, MR ;
GomezMoreno, C .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1997, 272 (36) :22509-22513
[18]  
LAMBETH JD, 1976, J BIOL CHEM, V251, P4299
[19]  
MASSEY V, 1991, FLAVINS AND FLAVOPROTEINS 1990, P59
[20]  
Mayhew S.G., 1993, CHEM BIOCH FLAVOENZY, P389