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Oxalate decarboxylase uses electron hole hopping for catalysis.
- Source :
-
The Journal of biological chemistry [J Biol Chem] 2021 Jul; Vol. 297 (1), pp. 100857. Date of Electronic Publication: 2021 Jun 05. - Publication Year :
- 2021
-
Abstract
- The hexameric low-pH stress response enzyme oxalate decarboxylase catalyzes the decarboxylation of the oxalate mono-anion in the soil bacterium Bacillus subtilis. A single protein subunit contains two Mn-binding cupin domains, and catalysis depends on Mn(III) at the N-terminal site. The present study suggests a mechanistic function for the C-terminal Mn as an electron hole donor for the N-terminal Mn. The resulting spatial separation of the radical intermediates directs the chemistry toward decarboxylation of the substrate. A π-stacked tryptophan pair (W96/W274) links two neighboring protein subunits together, thus reducing the Mn-to-Mn distance from 25.9 Å (intrasubunit) to 21.5 Å (intersubunit). Here, we used theoretical analysis of electron hole-hopping paths through redox-active sites in the enzyme combined with site-directed mutagenesis and X-ray crystallography to demonstrate that this tryptophan pair supports effective electron hole hopping between the C-terminal Mn of one subunit and the N-terminal Mn of the other subunit through two short hops of ∼8.5 Å. Replacement of W96, W274, or both with phenylalanine led to a large reduction in catalytic efficiency, whereas replacement with tyrosine led to recovery of most of this activity. W96F and W96Y mutants share the wildtype tertiary structure. Two additional hole-hopping networks were identified leading from the Mn ions to the protein surface, potentially protecting the enzyme from high Mn oxidation states during turnover. Our findings strongly suggest that multistep hole-hopping transport between the two Mn ions is required for enzymatic function, adding to the growing examples of proteins that employ aromatic residues as hopping stations.<br />Competing Interests: Conflict of interest The authors declare that they have no conflicts of interest with the contents of this article.<br /> (Copyright © 2021 The Authors. Published by Elsevier Inc. All rights reserved.)
- Subjects :
- Bacillus subtilis chemistry
Bacillus subtilis genetics
Binding Sites genetics
Carboxy-Lyases genetics
Carboxy-Lyases ultrastructure
Catalysis
Catalytic Domain genetics
Crystallography, X-Ray
Kinetics
Manganese chemistry
Oxygen chemistry
Tryptophan chemistry
Tryptophan genetics
Bacillus subtilis ultrastructure
Carboxy-Lyases chemistry
Electrons
Oxygen metabolism
Subjects
Details
- Language :
- English
- ISSN :
- 1083-351X
- Volume :
- 297
- Issue :
- 1
- Database :
- MEDLINE
- Journal :
- The Journal of biological chemistry
- Publication Type :
- Academic Journal
- Accession number :
- 34097877
- Full Text :
- https://doi.org/10.1016/j.jbc.2021.100857