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Updated: Sep 8, 2026

Expression and Purification of Nuclease-Free Oxygen Scavenger Protocatechuate 3,4-Dioxygenase
Published on: November 8, 2019
Spatially harnessing oxygenase enables paired and ultraselective electrooxidative waste depolymerization
Huaqin Wang1,2, Jie Li1,3, Jason Chun-Ho Lam4
1State Key Laboratory of Green Pesticides, State-Local Joint Laboratory for Comprehensive Utilization of Biomass, Center for R&D of Fine Chemicals, Guizhou University, Guiyang, 550025, China.
Abstract:
Electrooxidative C - C bond cleavage often encounters poor regioselectivity and low efficiency in conventional single-anode systems. Here, we deliberately customize a bipolar enzymic electrocatalyst HM@MM-MWCNT featuring medium-spin FeIII sites by covalently anchoring natural hemin (HM) to carboxylated multi-walled carbon nanotubes (MWCNT) cross-linked by melamine (MM) that further axially coordinates the single-atom Fe. HM@MM-MWCNT can trigger the complete oxidative upcycling of diverse lignin and plastic derivatives concurrently on two electrodes to exclusively afford organic acids with yields reaching >95% (cathode) and >92% (anode), double to quadruple that of state-of-the-art electrodes. The axial MM switches FeIII from a high-spin to medium-spin state, boosting directional Cβ - H activation activity of cathodic FeIII - O2•- and anodic FeIV = O species. Additionally, in-situ formed FeIII - OOH and FeIII - OH with weaker Fe-O bonding enabled by axial coordination can facilitate the dissociation of *OOH and *OH, respectively, for the subsequent coupling with the substrate Cβ• generated by dehydrogenation, eventually achieving paired and selective Cα - Cβ bond scission. Bipolar co-depolymerization of corn stover lignin furnishes aromatic monomers in a total yield, and its techno-economic analysis highlights low production costs. Spatially customizing enzymic electrodes with self-adaptive active species enables bipolar co-oxidation, doubling electrosynthesis efficiency for upgrading waste carbon sources.
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