Literature DB >> 30514757

Kinetic insights into the role of the reductant in H2O2-driven degradation of chitin by a bacterial lytic polysaccharide monooxygenase.

Silja Kuusk1, Riin Kont1, Piret Kuusk2, Agnes Heering3, Morten Sørlie4, Bastien Bissaro4, Vincent G H Eijsink4, Priit Väljamäe5.   

Abstract

Lytic polysaccharide monooxygenases (LPMOs) are monocopper enzymes that catalyze oxidative cleavage of glycosidic bonds in polysaccharides in the presence of an external electron donor (reductant). In the classical O2-driven monooxygenase reaction, the reductant is needed in stoichiometric amounts. In a recently discovered, more efficient H2O2-driven reaction, the reductant would be needed only for the initial reduction (priming) of the LPMO to its catalytically active Cu(I) form. However, the influence of the reductant on reducing the LPMO or on H2O2 production in the reaction remains undefined. Here, we conducted a detailed kinetic characterization to investigate how the reductant affects H2O2-driven degradation of 14C-labeled chitin by a bacterial LPMO, SmLPMO10A (formerly CBP21). Sensitive detection of 14C-labeled products and careful experimental set-ups enabled discrimination between the effects of the reductant on LPMO priming and other effects, in particular enzyme-independent production of H2O2 through reactions with O2 When supplied with H2O2, SmLPMO10A catalyzed 18 oxidative cleavages per molecule of ascorbic acid, suggesting a "priming reduction" reaction. The dependence of initial rates of chitin degradation on reductant concentration followed hyperbolic saturation kinetics, and differences between the reductants were manifested in large variations in their half-saturating concentrations (K mR app). Theoretical analyses revealed that K mR app decreases with a decreasing rate of polysaccharide-independent LPMO reoxidation (by either O2 or H2O2). We conclude that the efficiency of LPMO priming depends on the relative contributions of reductant reactivity, on the LPMO's polysaccharide monooxygenase/peroxygenase and reductant oxidase/peroxidase activities, and on reaction conditions, such as O2, H2O2, and polysaccharide concentrations.
© 2019 Kuusk et al.

Entities:  

Keywords:  CBP21; Serratia marcescens; SmLPMO10A; binding; chitin; copper monooxygenase; enzyme inactivation; enzyme kinetics; hydrogen peroxide; lytic polysaccharide monooxygenase; oxidative degradation; polysaccharide; reductant

Mesh:

Substances:

Year:  2018        PMID: 30514757      PMCID: PMC6364757          DOI: 10.1074/jbc.RA118.006196

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  56 in total

1.  Multipoint Precision Binding of Substrate Protects Lytic Polysaccharide Monooxygenases from Self-Destructive Off-Pathway Processes.

Authors:  Jennifer S M Loose; Magnus Ø Arntzen; Bastien Bissaro; Roland Ludwig; Vincent G H Eijsink; Gustav Vaaje-Kolstad
Journal:  Biochemistry       Date:  2018-06-29       Impact factor: 3.162

2.  On the formation and role of reactive oxygen species in light-driven LPMO oxidation of phosphoric acid swollen cellulose.

Authors:  K B Möllers; H Mikkelsen; T I Simonsen; D Cannella; K S Johansen; M J Bjerrum; C Felby
Journal:  Carbohydr Res       Date:  2017-03-18       Impact factor: 2.104

3.  Reactivity of O2 versus H2O2 with polysaccharide monooxygenases.

Authors:  John A Hangasky; Anthony T Iavarone; Michael A Marletta
Journal:  Proc Natl Acad Sci U S A       Date:  2018-04-23       Impact factor: 11.205

4.  The predominant molecular state of bound enzyme determines the strength and type of product inhibition in the hydrolysis of recalcitrant polysaccharides by processive enzymes.

Authors:  Silja Kuusk; Morten Sørlie; Priit Väljamäe
Journal:  J Biol Chem       Date:  2015-03-12       Impact factor: 5.157

5.  Heterogeneity in the Histidine-brace Copper Coordination Sphere in Auxiliary Activity Family 10 (AA10) Lytic Polysaccharide Monooxygenases.

Authors:  Amanda K Chaplin; Michael T Wilson; Michael A Hough; Dimitri A Svistunenko; Glyn R Hemsworth; Paul H Walton; Erik Vijgenboom; Jonathan A R Worrall
Journal:  J Biol Chem       Date:  2016-04-15       Impact factor: 5.157

Review 6.  Oxygen Activation by Cu LPMOs in Recalcitrant Carbohydrate Polysaccharide Conversion to Monomer Sugars.

Authors:  Katlyn K Meier; Stephen M Jones; Thijs Kaper; Henrik Hansson; Martijn J Koetsier; Saeid Karkehabadi; Edward I Solomon; Mats Sandgren; Bradley Kelemen
Journal:  Chem Rev       Date:  2017-11-20       Impact factor: 60.622

Review 7.  Oxidoreductases and Reactive Oxygen Species in Conversion of Lignocellulosic Biomass.

Authors:  Bastien Bissaro; Anikó Várnai; Åsmund K Røhr; Vincent G H Eijsink
Journal:  Microbiol Mol Biol Rev       Date:  2018-09-26       Impact factor: 11.056

8.  Lytic polysaccharide monooxygenases from Myceliophthora thermophila C1 differ in substrate preference and reducing agent specificity.

Authors:  Matthias Frommhagen; Martijn J Koetsier; Adrie H Westphal; Jaap Visser; Sandra W A Hinz; Jean-Paul Vincken; Willem J H van Berkel; Mirjam A Kabel; Harry Gruppen
Journal:  Biotechnol Biofuels       Date:  2016-08-31       Impact factor: 6.040

9.  Catalase improves saccharification of lignocellulose by reducing lytic polysaccharide monooxygenase-associated enzyme inactivation.

Authors:  Brian R Scott; Hong Zhi Huang; Jesper Frickman; Rune Halvorsen; Katja S Johansen
Journal:  Biotechnol Lett       Date:  2015-11-05       Impact factor: 2.461

10.  Quantification of the catalytic performance of C1-cellulose-specific lytic polysaccharide monooxygenases.

Authors:  Matthias Frommhagen; Adrie H Westphal; Roelant Hilgers; Martijn J Koetsier; Sandra W A Hinz; Jaap Visser; Harry Gruppen; Willem J H van Berkel; Mirjam A Kabel
Journal:  Appl Microbiol Biotechnol       Date:  2017-12-02       Impact factor: 4.813

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  16 in total

1.  Purification, characterization and cloning of a chitinase from Stenotrophomonas rhizophila G22.

Authors:  Urszula Jankiewicz; Bartosz Baranowski; Maria Swiontek Brzezinska; Magdalena Frąk
Journal:  3 Biotech       Date:  2019-12-10       Impact factor: 2.406

2.  Kinetic analysis of amino acid radicals formed in H2O2-driven CuI LPMO reoxidation implicates dominant homolytic reactivity.

Authors:  Stephen M Jones; Wesley J Transue; Katlyn K Meier; Bradley Kelemen; Edward I Solomon
Journal:  Proc Natl Acad Sci U S A       Date:  2020-05-15       Impact factor: 11.205

3.  Natural photoredox catalysts promote light-driven lytic polysaccharide monooxygenase reactions and enzymatic turnover of biomass.

Authors:  Eirik G Kommedal; Fredrikke Sæther; Thomas Hahn; Vincent G H Eijsink
Journal:  Proc Natl Acad Sci U S A       Date:  2022-08-15       Impact factor: 12.779

4.  Molecular mechanism of the chitinolytic peroxygenase reaction.

Authors:  Bastien Bissaro; Bennett Streit; Ingvild Isaksen; Vincent G H Eijsink; Gregg T Beckham; Jennifer L DuBois; Åsmund K Røhr
Journal:  Proc Natl Acad Sci U S A       Date:  2020-01-06       Impact factor: 11.205

5.  Polysaccharide oxidation by lytic polysaccharide monooxygenase is enhanced by engineered cellobiose dehydrogenase.

Authors:  Daniel Kracher; Zarah Forsberg; Bastien Bissaro; Sonja Gangl; Marita Preims; Christoph Sygmund; Vincent G H Eijsink; Roland Ludwig
Journal:  FEBS J       Date:  2019-10-01       Impact factor: 5.622

6.  The liquid fraction from hydrothermal pretreatment of wheat straw provides lytic polysaccharide monooxygenases with both electrons and H2O2 co-substrate.

Authors:  Riin Kont; Ville Pihlajaniemi; Anna S Borisova; Nina Aro; Kaisa Marjamaa; Judith Loogen; Jochen Büchs; Vincent G H Eijsink; Kristiina Kruus; Priit Väljamäe
Journal:  Biotechnol Biofuels       Date:  2019-10-08       Impact factor: 6.040

7.  Controlled depolymerization of cellulose by light-driven lytic polysaccharide oxygenases.

Authors:  Bastien Bissaro; Eirik Kommedal; Åsmund K Røhr; Vincent G H Eijsink
Journal:  Nat Commun       Date:  2020-02-14       Impact factor: 14.919

8.  Specific Xylan Activity Revealed for AA9 Lytic Polysaccharide Monooxygenases of the Thermophilic Fungus Malbranchea cinnamomea by Functional Characterization.

Authors:  Silvia Hüttner; Anikó Várnai; Dejan M Petrović; Cao Xuan Bach; Dang Thi Kim Anh; Vu Nguyen Thanh; Vincent G H Eijsink; Johan Larsbrink; Lisbeth Olsson
Journal:  Appl Environ Microbiol       Date:  2019-11-14       Impact factor: 4.792

9.  The H2O2-dependent activity of a fungal lytic polysaccharide monooxygenase investigated with a turbidimetric assay.

Authors:  Frantisek Filandr; Petr Man; Petr Halada; Hucheng Chang; Roland Ludwig; Daniel Kracher
Journal:  Biotechnol Biofuels       Date:  2020-03-05       Impact factor: 6.040

10.  Formation of a Copper(II)-Tyrosyl Complex at the Active Site of Lytic Polysaccharide Monooxygenases Following Oxidation by H2O2.

Authors:  Alessandro Paradisi; Esther M Johnston; Morten Tovborg; Callum R Nicoll; Luisa Ciano; Adam Dowle; Jonathan McMaster; Y Hancock; Gideon J Davies; Paul H Walton
Journal:  J Am Chem Soc       Date:  2019-11-12       Impact factor: 15.419

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