To investigate the functional role of the cysteine residues present in the spinach ferredoxin-NADP+ oxidoreductase, we individually replaced each of the five cysteine residues with serine using site-directed mutagenesis. All of the mutant reductases were correctly assembled in Escherichia coli except for the C42S mutant protein. C114S and C137S mutant enzymes apparently showed structural and kinetic properties very similar to those of the wild-type reductase. However, C272S and C132S mutations yielded enzymes with a decreased catalytic activity in the ferredoxin-dependent reaction (14 and 31% of the wild type, respectively). Whereas the C132S was fully competent in the diaphorase reaction, the C272S mutant flavoprotein showed a 35-fold reduction in catalytic efficiency with respect to the wild-type enzyme (0.4 versus 14.28 microM-1 s-1) due to a substantial decrease of kcat. NADP+ binding by the C272S mutant enzyme was apparently quantitatively the same (Kd = 37 microM) but qualitatively different, as shown by the differential spectrum. Stopped-flow experiments showed that the enzyme-FAD reduction rate was considerably decreased in the C272S mutant reductase, along with a much lower yield of the charge-transfer transient species. It is inferred from these data that the charge transfer (FAD-NADPH) between the reductase and NADPH is required for hydride transfer from the pyridine nucleotide to flavin to occur with a rate compatible with catalysis.

The role of cysteine residues of spinach ferredoxin-NADP+ reductase As assessed by site-directed mutagenesis / A. Aliverti, L. Piubelli, G. Zanetti, T. Lübberstedt, R.G. Herrmann, B. Curti. - In: BIOCHEMISTRY. - ISSN 0006-2960. - 32:25(1993 Jun 29), pp. 6374-6380. [10.1021/bi00076a010]

The role of cysteine residues of spinach ferredoxin-NADP+ reductase As assessed by site-directed mutagenesis

A. Aliverti
Primo
;
G. Zanetti;B. Curti
Ultimo
1993

Abstract

To investigate the functional role of the cysteine residues present in the spinach ferredoxin-NADP+ oxidoreductase, we individually replaced each of the five cysteine residues with serine using site-directed mutagenesis. All of the mutant reductases were correctly assembled in Escherichia coli except for the C42S mutant protein. C114S and C137S mutant enzymes apparently showed structural and kinetic properties very similar to those of the wild-type reductase. However, C272S and C132S mutations yielded enzymes with a decreased catalytic activity in the ferredoxin-dependent reaction (14 and 31% of the wild type, respectively). Whereas the C132S was fully competent in the diaphorase reaction, the C272S mutant flavoprotein showed a 35-fold reduction in catalytic efficiency with respect to the wild-type enzyme (0.4 versus 14.28 microM-1 s-1) due to a substantial decrease of kcat. NADP+ binding by the C272S mutant enzyme was apparently quantitatively the same (Kd = 37 microM) but qualitatively different, as shown by the differential spectrum. Stopped-flow experiments showed that the enzyme-FAD reduction rate was considerably decreased in the C272S mutant reductase, along with a much lower yield of the charge-transfer transient species. It is inferred from these data that the charge transfer (FAD-NADPH) between the reductase and NADPH is required for hydride transfer from the pyridine nucleotide to flavin to occur with a rate compatible with catalysis.
photosynthesis ; protein ; flavoprotein ; enzyme ; flavin nucleotide ; cysteine residue ; nicotinamide nucleotide ; hydride transfer ; charge-transfer complex ; catalytic mechanism ; protein engineering
Settore BIO/10 - Biochimica
Settore BIO/11 - Biologia Molecolare
Settore BIO/04 - Fisiologia Vegetale
29-giu-1993
http://pubs.acs.org/doi/abs/10.1021/bi00076a010
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/192003
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