» Articles » PMID: 35862679

Chitin-Active Lytic Polysaccharide Monooxygenases Are Rare in Species

Overview
Authors
Affiliations
Soon will be listed here.
Abstract

Cellulomonas flavigena is a saprotrophic bacterium that encodes, within its genome, four predicted lytic polysaccharide monooxygenases (LPMOs) from Auxiliary Activity family 10 (AA10). We showed previously that three of these cleave the plant polysaccharide cellulose by oxidation at carbon-1 (J. Li, L. Solhi, E.D. Goddard-Borger, Y. Mattieu et al., Biotechnol Biofuels 14:29, 2021, https://doi.org/10.1186/s13068-020-01860-3). Here, we present the biochemical characterization of the fourth C. flavigena AA10 member (LPMO10D) as a chitin-active LPMO. Both the full-length LPMO10D-Carbohydrate-Binding Module family 2 (CBM2) and catalytic module-only proteins were produced in Escherichia coli using the native general secretory (Sec) signal peptide. To quantify chitinolytic activity, we developed a high-performance anion-exchange chromatography-pulsed amperometric detection (HPAEC-PAD) method as an alternative to the established hydrophilic interaction liquid ion chromatography coupled with UV detection (HILIC-UV) method for separation and detection of released oxidized chito-oligosaccharides. Using this method, we demonstrated that LPMO10D is strictly active on the β-allomorph of chitin, with optimal activity at pH 5 to 6 and a preference for ascorbic acid as the reducing agent. We also demonstrated the importance of the CBM2 member for both mediating enzyme localization to substrates and prolonging LPMO activity. Together with previous work, the present study defines the distinct substrate specificities of the suite of C. flavigena AA10 members. Notably, a cross-genome survey of AA10 members indicated that chitinolytic LPMOs are, in fact, rare among bacteria. Species from the genus have a long history of study due to their roles in biomass recycling in nature and corresponding potential as sources of enzymes for biotechnological applications. Although species are more commonly associated with the cleavage and utilization of plant cell wall polysaccharides, here, we show that C. flavigena produces a unique lytic polysaccharide monooxygenase with activity on β-chitin, which is found, for example, in arthropods. The limited distribution of orthologous chitinolytic LPMOs suggests adaptation of individual cellulomonads to specific nutrient niches present in soil ecosystems. This research provides new insight into the biochemical specificity of LPMOs in species and related bacteria, and it raises new questions about the physiological function of these enzymes.

Citing Articles

Functional characterization of two AA10 lytic polysaccharide monooxygenases from Cellulomonas gelida.

Turunen R, Tuveng T, Forsberg Z, Schiml V, Eijsink V, Arntzen M Protein Sci. 2025; 34(3):e70060.

PMID: 39969139 PMC: 11837042. DOI: 10.1002/pro.70060.


Genomic Exploration of a Chitinolytic PMB5 Strain from European mantis ().

Baev V, Iliev I, Apostolova E, Gozmanova M, Hristova Y, Ilieva Y Curr Issues Mol Biol. 2024; 46(9):9359-9375.

PMID: 39329906 PMC: 11430731. DOI: 10.3390/cimb46090554.


Heterologous Expression and Characterization of a pH-Stable Chitinase from with a Potential Application in Chitin Degradation.

Guo H, Wang D, Yang H, Wu Y, Li Y, Xia G Mar Drugs. 2024; 22(6).

PMID: 38921598 PMC: 11204758. DOI: 10.3390/md22060287.


Functional characterization of fungal lytic polysaccharide monooxygenases for cellulose surface oxidation.

Mathieu Y, Raji O, Bellemare A, Di Falco M, Nguyen T, Viborg A Biotechnol Biofuels Bioprod. 2023; 16(1):132.

PMID: 37679837 PMC: 10486138. DOI: 10.1186/s13068-023-02383-3.

References
1.
Gilkes N, Warren R, Miller Jr R, Kilburn D . Precise excision of the cellulose binding domains from two Cellulomonas fimi cellulases by a homologous protease and the effect on catalysis. J Biol Chem. 1988; 263(21):10401-7. View

2.
Ong E, Gilkes N, Miller Jr R, Warren R, Kilburn D . The cellulose-binding domain (CBD(Cex)) of an exoglucanase from Cellulomonas fimi: production in Escherichia coli and characterization of the polypeptide. Biotechnol Bioeng. 1993; 42(4):401-9. DOI: 10.1002/bit.260420402. View

3.
Xu G, Ong E, Gilkes N, Kilburn D, Muhandiram D, CARVER J . Solution structure of a cellulose-binding domain from Cellulomonas fimi by nuclear magnetic resonance spectroscopy. Biochemistry. 1995; 34(21):6993-7009. View

4.
Gebler J, Gilkes N, Claeyssens M, Wilson D, Beguin P, Wakarchuk W . Stereoselective hydrolysis catalyzed by related beta-1,4-glucanases and beta-1,4-xylanases. J Biol Chem. 1992; 267(18):12559-61. View

5.
Crouch L, Labourel A, Walton P, Davies G, Gilbert H . The Contribution of Non-catalytic Carbohydrate Binding Modules to the Activity of Lytic Polysaccharide Monooxygenases. J Biol Chem. 2016; 291(14):7439-49. PMC: 4817175. DOI: 10.1074/jbc.M115.702365. View