Equilibrium analyses of the active-site asymmetry in enterococcal NADH oxidase: Role of the cysteine sulfenic acid redox center

Citation
Tc. Mallett et al., Equilibrium analyses of the active-site asymmetry in enterococcal NADH oxidase: Role of the cysteine sulfenic acid redox center, BIOCHEM, 38(10), 1999, pp. 3000-3011
Citations number
43
Categorie Soggetti
Biochemistry & Biophysics
Journal title
BIOCHEMISTRY
ISSN journal
00062960 → ACNP
Volume
38
Issue
10
Year of publication
1999
Pages
3000 - 3011
Database
ISI
SICI code
0006-2960(19990309)38:10<3000:EAOTAA>2.0.ZU;2-N
Abstract
Recent studies [Mallett, T. C., and Claiborne, A. (1998) Biochemistry 37, 8 790-8802] of the O-2 reactivity of C42S NADH oxidase (O-2 --> H2O2) reveale d an asymmetric mechanism in which the two FADH(2). NAD(+) per reduced dime r display kinetic inequivalence. Tn this report we provide evidence indicat ing that the fully active, recombinant wild-type oxidase (O-2 --> 2H(2)O) d isplays thermodynamic inequivalence between the two active sites per dimer. Using NADPH to generate the free reduced wildtype enzyme (EH2'/EH4), we ha ve shown that NAD(+) titrations lead to differential behavior as only one F ADH(2) per dimer binds NAD(+) tightly to give the charge-transfer complex. The second FADH(2), in contrast, transfers its electrons to the single Cys4 2-sulfenic acid (Cys42-SOH) redox center, which remains oxidized during the reductive titration. Titrations of the reduced NADH oxidase with oxidized 3-acetylpyridine and 3-aminopyridine adenine dinucleotides further support the conclusion that the two FADH(2) per dimer in wild-type enzyme can be de scribed as distinct "charge-transfer" and "electron-transfer'' sites, with the latter site giving rise to either intramolecular (Cys42-SOH) or bimolec ular (pyridine nucleotide) reduction. The reduced C42S mutant is not capabl e of intramolecular electron transfer on binding pyridine nucleotides, thus confirming that the Cys42-SOH center is in fact the source of the redox as ymmetry observed with wild-type oxidase. These observations on the role of Cys42-SOH in the expression of thermodynamic inequivalence as observed in w ild-type NADH oxidase complement the previously described kinetic inequival ence of the C42S mutant; taken together, these results provide the overlapp ing framework for an alternating sites cooperativity model of oxidase actio n.