Mn(II) Oxidation by the Multicopper Oxidase Complex Mnx: A Coordinated Two-Stage Mn(II)/(III) and Mn(III)/(IV) Mechanism

Окисление Mn(II) мультикупровым оксидазным комплексом Mnx: согласованный двухстадийный механизм Mn(II)/Mn(III) и Mn(III)/Mn(IV)
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

EPR spectroscopyMn(II) oxidationMn(III) disproportionationMnO2 nanoparticlesMnx multicopper oxidase
The bacterial manganese oxidase MnxG of the Mnx protein complex is unique among multicopper oxidases (MCOs) in carrying out a two-electron metal oxidation, converting Mn(II) to MnO 2 nanoparticles. The reaction occurs in two stages: Mn(II) → Mn(III) and Mn(III) → MnO 2 . In a companion study, we show that the electron transfer from Mn(II) to the low-potential type 1 Cu of MnxG requires an activation step, likely forming a hydroxide bridge at a dinuclear Mn(II) site. Here we study the second oxidation step, using pyrophosphate (PP) as a Mn(III) trap. PP chelates Mn(III) produced by the enzyme and subsequently allows it to become a substrate for the second stage of the reaction. EPR spectroscopy confirms the presence of Mn(III) bound to the enzyme. The Mn(III) oxidation step does not involve direct electron transfer to the enzyme from Mn(III), which is shown by kinetic measurements to be excluded from the Mn(II) binding site. Instead, Mn(III) is proposed to disproportionate at an adjacent polynuclear site, thereby allowing indirect oxidation to Mn(IV) and recycling of Mn(II). PP plays a multifaceted role, slowing the reaction by complexing both Mn(II) and Mn(III) in solution, and also inhibiting catalysis, likely through binding at or near the active site. An overall mechanism for Mnx-catalyzed MnO 2 production from Mn(II) is presented.
1
EPR spectroscopy confirms enzyme-bound Mn(III), while pyrophosphate traps Mn(III) and enables its participation in the second reaction stage.
2
Mn(III) likely disproportionates at an adjacent polynuclear manganese site, enabling indirect oxidation to Mn(IV) while regenerating Mn(II).
3
MnxG catalyzes Mn(II) oxidation to MnO₂ nanoparticles through two coordinated stages: Mn(II)→Mn(III) and Mn(III)→Mn(IV).
4
Pyrophosphate slows catalysis by complexing Mn(II) and Mn(III) in solution and likely inhibiting the active site through nearby binding.
5
The second oxidation step does not involve direct electron transfer from Mn(III) to the enzyme, because Mn(III) is excluded from the Mn(II)-binding site.

MnxG multicopper oxidase complex catalyzing the oxidation of Mn(II) to MnO₂ nanoparticles

The coordinated two-stage Mn(II)/Mn(III) and Mn(III)/Mn(IV) oxidation mechanism, including Mn(III) disproportionation and the roles of pyrophosphate

Publication Details
Publication Date
2017-07-17
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Alexandra Soldatova
Bradley M. Tebo
William H. Casey
R. David Britt
Thomas G. Spiro
Lizhi Tao
Christine A. Romano
Troy A. Stich
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%