C-terminal residues of ferredoxin-NAD(P) + reductase from Chlorobaculum tepidum are responsible for reaction dynamics in the hydride transfer and redox equilibria with NADP + /NADPH

Photosynthesis research(2017)

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摘要
Ferredoxin-NAD(P) + reductase ([EC 1.18.1.2], [EC 1.18.1.3]) from Chlorobaculum tepidum ( Ct FNR) is structurally homologous to the bacterial NADPH-thioredoxin reductase (TrxR), but possesses a unique C-terminal extension relative to TrxR that interacts with the isoalloxazine ring moiety of the flavin adenine dinucleotide prosthetic group. In this study, we introduce truncations to the C-terminal residues to examine their role in the reactions of Ct FNR with NADP + and NADPH by spectroscopic and kinetic analyses. The truncation of the residues from Tyr326 to Glu360 (the whole C-terminal extension region), from Phe337 to Glu360 (omitting Phe337 on the re -face of the isoalloxazine ring) and from Ser338 to Glu360 (leaving Phe337 intact) resulted in a blue-shift of the flavin absorption bands. The truncations caused a slight increase in the dissociation constant toward NADP + and a slight decrease in the Michaelis constant toward NADPH in steady-state assays. Pre-steady-state studies of the redox reaction with NADPH demonstrated that deletions of Tyr326–Glu360 decreased the hydride transfer rate, and the amount of reduced enzyme increased at equilibrium relative to wild-type Ct FNR. In contrast, the deletions of Phe337–Glu360 and Ser338–Glu360 resulted in only slight changes in the reaction kinetics and redox equilibrium. These results suggest that the C-terminal region of Ct FNR is responsible for the formation and stability of charge-transfer complexes, leading to changes in redox properties and reactivity toward NADP + /NADPH.
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关键词
Flavoenzyme,Stopped-flow,Green sulfur bacteria,Charge transfer
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