Mn(II) Oxidation by the Multicopper Oxidase Complex Mnx: A Binuclear Activation Mechanism

Окисление Mn(II) мультикупровым оксидазным комплексом Mnx: биядерный механизм активации
Alexandra Soldatova, Bradley M. Tebo, William H. Casey, R. David Britt, Thomas G. Spiro, Lizhi Tao, Christine A. Romano, Troy A. Stich
2017-07-17

Mn(II) oxidationMnO2 nanoparticle nucleationMnx multicopper oxidasebinuclear activation mechanismmanganese biomineralization
The bacterial protein complex Mnx contains a multicopper oxidase (MCO) MnxG that, unusually, catalyzes the two-electron oxidation of Mn(II) to MnO 2 biomineral, via a Mn(III) intermediate. Although Mn(III)/Mn(II) and Mn(IV)/Mn(III) reduction potentials are expected to be high, we find a low reduction potential, 0.38 V (vs Normal Hydrogen Electrode, pH 7.8), for the MnxG type 1 Cu 2+, the electron acceptor. Indeed the type 1 Cu 2+ is not reduced by Mn(II) in the absence of molecular oxygen, indicating that substrate oxidation requires an activation step. We have investigated the enzyme mechanism via electronic absorption spectroscopy, using chemometric analysis to separate enzyme-catalyzed MnO 2 formation from MnO 2 nanoparticle aging. The nanoparticle aging time course is characteristic of nucleation and particle growth; rates for these processes followed expected dependencies on Mn(II) concentration and temperature, but exhibited different pH optima. The enzymatic time course is sigmoidal, signaling an activation step, prior to turnover. The Mn(II) concentration and pH dependence of a preceding lag phase indicates weak Mn(II) binding. The activation step is enabled by a p K a > 8.6 deprotonation, which is assigned to Mn(II)-bound H 2 O; it induces a conformation change (consistent with a high activation energy, 106 kJ/mol) that increases Mn(II) affinity. Mnx activation is proposed to decrease the Mn(III/II) reduction potential below that of type 1 Cu(II/I) by formation of a hydroxide-bridged binuclear complex, Mn(II)(μ-OH)Mn(II), at the substrate site. Turnover is found to depend cooperatively on two Mn(II) and is enabled by a p K a 7.6 double deprotonation. It is proposed that turnover produces a Mn(III)(μ-OH) 2 Mn(III) intermediate that proceeds to the enzyme product, likely Mn(IV)(μ-O) 2 Mn(IV) or an oligomer, which subsequently nucleates MnO 2 nanoparticles. We conclude that Mnx exploits manganese polynuclear chemistry in order to facilitate an otherwise difficult oxidation reaction, as well as biomineralization. The mechanism of the Mn(III/IV) conversion step is elucidated in an accompanying paper .
1
A sigmoidal enzymatic time course indicates an activation step involving weak Mn(II) binding and pKₐ > 8.6 deprotonation of Mn(II)-bound water.
2
Activation likely forms a hydroxide-bridged Mn(II)₂ complex, increasing Mn(II) affinity and lowering the Mn(III/II) potential below that of type 1 Cu(II/I).
3
MnxG catalyzes two-electron oxidation of Mn(II) to MnO₂ biomineral through a Mn(III) intermediate.
4
MnxG type 1 Cu(II) has an unexpectedly low reduction potential of 0.38 V at pH 7.8 and is not reduced by Mn(II) without O₂.
5
Turnover depends cooperatively on two Mn(II) ions and a pKₐ 7.6 double deprotonation, likely producing a Mn(III)(μ-OH)₂Mn(III) intermediate that leads to MnO₂ nucleation.

Mnx multicopper oxidase complex catalyzing Mn(II) oxidation and MnO2 biomineral formation

The binuclear manganese activation and turnover mechanism, including Mn(II) binding, deprotonation, redox-potential modulation, and formation of MnO2 precursors

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2017-07-17
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Alexandra Soldatova
Bradley M. Tebo
William H. Casey
R. David Britt
Thomas G. Spiro
Lizhi Tao
Christine A. Romano
Troy A. Stich
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