Kinetic analysis of amino acid radicals formed in H 2 O 2 -driven Cu I LPMO reoxidation implicates dominant homolytic reactivity is a research paper published in Proceedings of the National Academy of Sciences (2020). On theSindex it has a DataRank of 0. It has been cited 120 times.
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HHS | National Institutes of Health
Grant: DK31450
HHS | National Institutes of Health
Grant: F32GM116240
HHS | National Institutes of Health
Grant: F32GM131602
NIDDK NIH HHS
Grant: R01 DK031450
NIDDK NIH HHS
Grant: R37 DK031450
FWCI
5.62
Citation Percentile
1.0%
Citation Trend
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Keywords
Additional file 1 of Characterization of an AA9 LPMO from Thielavia australiensis, TausLPMO9B, under industrially relevant lignocellulose saccharification conditions
Additional file 1 of Characterization of an AA9 LPMO from Thielavia australiensis, TausLPMO9B, under industrially relevant lignocellulose saccharification conditions
Additional file 1 of In situ measurements of oxidation–reduction potential and hydrogen peroxide concentration as tools for revealing LPMO inactivation during enzymatic saccharification of cellulose
Additional file 1 of In situ measurements of oxidation–reduction potential and hydrogen peroxide concentration as tools for revealing LPMO inactivation during enzymatic saccharification of cellulose
Additional file 1 of The impact of the carbohydrate-binding module on how a lytic polysaccharide monooxygenase modifies cellulose fibers
Additional file 1 of The impact of the carbohydrate-binding module on how a lytic polysaccharide monooxygenase modifies cellulose fibers