Computer-Aided Virtual Saturation Mutagenesis Improves the Lignocellulose-Degrading Performance of an Aspergillus niger LPMO
Abstract
1. Introduction
2. Materials and Methods
2.1. Strains and Enzymes
2.2. Bioinformatics Analysis
2.3. Prediction of Mutation Site on AnLPMO15g Using FoldX
2.4. Construction of Recombinant Strains
2.5. Production, Purification, and Assay of the Recombinant AnLPMO15g
2.6. Determination of Enzyme Activity
2.7. Hydrolysis Activity on Different Cellulosic Substrates
2.8. MD Simulation
2.9. Statistical Analysis
3. Results and Discussion
3.1. Identification of Potential Sites for Directed Mutagenesis
3.2. Mutant Protein Expression and Purification
3.3. Optimal Temperature and Thermal Stability of Mutants
3.4. Combinatorial Mutagenesis for Further Improvement in Catalytic Efficiency
3.5. Catalytic Activity on Different Substrates
3.6. Synergistic Effect with Cellulase on Different Lignocellulosic Substrates
3.7. MD Simulation of Substrate Binding
3.7.1. Root Mean Square Deviation and Root Mean Square Fluctuation Analysis
3.7.2. Radius of Gyration and Hydrogen Bonding Analysis
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| LPMO | Lytic polysaccharide monooxygenases |
| AA | Auxiliary activities |
| 2,6-DMP | 2,6-Dimethoxyphenol |
| MD | Molecular dynamics |
| BMGY | Buffered glycerol-complex medium with yeast extract |
| BMMY | Buffered methanol-complex medium with yeast extract |
| CMC | Carboxymethyl cellulose |
| DNS | 3,5-Dinitrosalicylic acid |
| RMSD | Root mean square deviation |
| RMSF | Root mean square fluctuation |
| WT | Wild type |
References
- Ipsen, J.O.; Hallas-Moller, M.; Brander, S.; Lo Leggio, L.; Johansen, K.S. Lytic polysaccharide monooxygenases and other histidine-brace copper proteins: Structure, oxygen activation and biotechnological applications. Biochem. Soc. Trans. 2021, 49, 531–540. [Google Scholar] [CrossRef] [PubMed]
- Vaaje-Kolstad, G.; Westereng, B.; Horn, S.J.; Liu, Z.; Zhai, H.; Sorlie, M.; Eijsink, V.G. An oxidative enzyme boosting the enzymatic conversion of recalcitrant polysaccharides. Science 2010, 330, 219–222. [Google Scholar] [CrossRef] [PubMed]
- Vaaje-Kolstad, G.; Horn, S.J.; van Aalten, D.M.; Synstad, B.; Eijsink, V.G. The non-catalytic chitin-binding protein CBP21 from Serratia marcescens is essential for chitin degradation. J. Biol. Chem. 2005, 280, 28492–28497. [Google Scholar] [CrossRef]
- Horn, S.J.; Vaaje-Kolstad, G.; Westereng, B.; Eijsink, V. Novel enzymes for the degradation of cellulose. Biotechnol. Biofuels. 2012, 5, 45. [Google Scholar] [CrossRef] [PubMed]
- Levasseur, A.; Drula, E.; Lombard, V.; Coutinho, P.M.; Henrissat, B. Expansion of the enzymatic repertoire of the CAZy database to integrate auxiliary redox enzymes. Biotechnol. Biofuels. 2013, 6, 41. [Google Scholar] [CrossRef] [PubMed]
- Borisova, A.S.; Isaksen, T.; Dimarogona, M.; Kognole, A.A.; Mathiesen, G.; Varnai, A.; Rohr, A.K.; Payne, C.M.; Sorlie, M.; Sandgren, M.; et al. Structural and functional characterization of a lytic polysaccharide monooxygenase with broad substrate specificity. J. Biol. Chem. 2015, 290, 22955–22969. [Google Scholar] [CrossRef] [PubMed]
- Frandsen, K.E.H.; Simmons, T.J.; Dupree, P.; Poulsen, J.C.N.; Hemsworth, G.R.; Ciano, L.; Johnston, E.M.; Tovborg, M.; Johansen, K.S.; von Freiesleben, P.; et al. The molecular basis of polysaccharide cleavage by lytic polysaccharide monooxygenases. Nat. Chem. Biol. 2016, 12, 298–303. [Google Scholar] [CrossRef] [PubMed]
- Li, X.; Beeson, W.T.; Phillips, C.M.; Marletta, M.A.; Cate, J.H. Structural basis for substrate targeting and catalysis by fungal polysaccharide monooxygenases. Structure 2012, 20, 1051–1061. [Google Scholar] [CrossRef] [PubMed]
- Chylenski, P.; Bissaro, B.; Sørlie, M.; Røhr, Å.K.; Várnai, A.; Horn, S.J.; Eijsink, V.G.H. Lytic polysaccharide monooxygenases in enzymatic processing of lignocellulosic biomass. ACS Catal. 2019, 9, 4970–4991. [Google Scholar] [CrossRef]
- Hemsworth, G.R.; Johnston, E.M.; Davies, G.J.; Walton, P.H. Lytic polysaccharide monooxygenases in biomass conversion. Trends Biotechnol. 2015, 33, 747–761. [Google Scholar] [CrossRef] [PubMed]
- Johansen, K.S. Lytic polysaccharide monooxygenases: The microbial power tool for lignocellulose degradation. Trends Plant Sci. 2016, 21, 926–936. [Google Scholar] [CrossRef] [PubMed]
- Shi, Y.; Chen, K.; Long, L.; Ding, S. A highly xyloglucan active lytic polysaccharide monooxygenase EpLPMO9A from Eupenicillium parvum 4-14 shows boosting effect on hydrolysis of complex lignocellulosic substrates. Int. J. Biol. Macromol. 2021, 167, 202–213. [Google Scholar] [CrossRef] [PubMed]
- Lenfant, N.; Hainaut, M.; Terrapon, N.; Drula, E.; Lombard, V.; Henrissat, B. A bioinformatics analysis of 3400 lytic polysaccharide oxidases from family AA9. Carbohydr. Res. 2017, 448, 166–174. [Google Scholar] [CrossRef] [PubMed]
- Wu, M.; Beckham, G.T.; Larsson, A.M.; Ishida, T.; Kim, S.; Payne, C.M.; Himmel, M.E.; Crowley, M.F.; Horn, S.J.; Westereng, B.; et al. Crystal structure and computational characterization of the lytic polysaccharide monooxygenase GH61D from the Basidiomycota fungus Phanerochaete chrysosporium. J. Biol. Chem. 2013, 288, 12828–12839. [Google Scholar] [CrossRef] [PubMed]
- Beeson, W.T.; Vu, V.V.; Span, E.A.; Phillips, C.M.; Marletta, M.A. Cellulose degradation by polysaccharide monooxygenases. Annu. Rev. Biochem. 2015, 84, 923–946. [Google Scholar] [CrossRef] [PubMed]
- Quinlan, R.J.; Sweeney, M.D.; Lo Leggio, L.; Otten, H.; Poulsen, J.C.; Johansen, K.S.; Krogh, K.B.; Jorgensen, C.I.; Tovborg, M.; Anthonsen, A.; et al. Insights into the oxidative degradation of cellulose by a copper metalloenzyme that exploits biomass components. Proc. Natl. Acad. Sci. USA 2011, 108, 15079–15084. [Google Scholar] [CrossRef] [PubMed]
- Eijsink, V.G.H.; Petrovic, D.; Forsberg, Z.; Mekasha, S.; Rohr, A.K.; Varnai, A.; Bissaro, B.; Vaaje-Kolstad, G. On the functional characterization of lytic polysaccharide monooxygenases (LPMOs). Biotechnol. Biofuels. 2019, 12, 58. [Google Scholar] [CrossRef] [PubMed]
- Brander, S.; Tokin, R.; Ipsen, J.O.; Jensen, P.E.; Hernández-Rollán, C.; Nørholm, M.H.H.; Lo Leggio, L.; Dupree, P.; Johansen, K.S. Scission of glucosidic bonds by a Lentinus similis lytic polysaccharide monooxygenases is strictly dependent on H2O2 while the oxidation of saccharide products depends on O2. ACS Catal. 2021, 11, 13848–13859. [Google Scholar] [CrossRef]
- Forsberg, Z.; Mackenzie, A.K.; Sorlie, M.; Rohr, A.K.; Helland, R.; Arvai, A.S.; Vaaje-Kolstad, G.; Eijsink, V.G. Structural and functional characterization of a conserved pair of bacterial cellulose-oxidizing lytic polysaccharide monooxygenases. Proc. Natl. Acad. Sci. USA 2014, 111, 8446–8451. [Google Scholar] [CrossRef] [PubMed]
- Vu, V.V.; Beeson, W.T.; Phillips, C.M.; Cate, J.H.; Marletta, M.A. Determinants of regioselective hydroxylation in the fungal polysaccharide monooxygenases. J. Am. Chem. Soc. 2014, 136, 562–565. [Google Scholar] [CrossRef] [PubMed]
- Hansen, L.D.; Eijsink, V.G.H.; Horn, S.J.; Varnai, A. H2O2 feeding enables LPMO-assisted cellulose saccharification during simultaneous fermentative production of lactic acid. Biotechnol. Bioeng. 2023, 120, 726–736. [Google Scholar] [CrossRef] [PubMed]
- Rieder, L.; Sorlie, M. Recent advances in understanding LPMO catalysis. Biochemistry 2023, 62, 3170–3172. [Google Scholar] [CrossRef] [PubMed]
- Sanhueza, C.; Carvajal, G.; Soto-Aguilar, J.; Lienqueo, M.E.; Salazar, O. The effect of a lytic polysaccharide monooxygenase and a xylanase from Gloeophyllum trabeum on the enzymatic hydrolysis of lignocellulosic residues using a commercial cellulase. Enzym. Microb. Technol. 2018, 113, 75–82. [Google Scholar] [CrossRef] [PubMed]
- de Gouvea, P.F.; Gerolamo, L.E.; Bernardi, A.V.; Pereira, L.M.S.; Uyemura, S.A.; Dinamarco, T.M. Lytic polysaccharide monooxygenase from Aspergillus fumigatus can improve enzymatic cocktail activity during sugarcane bagasse hydrolysis. Protein Pept. Lett. 2019, 26, 377–385. [Google Scholar] [CrossRef] [PubMed]
- Du, L.; Ma, L.; Ma, Q.; Guo, G.; Han, X.; Xiao, D. Hydrolytic boosting of lignocellulosic biomass by a fungal lytic polysaccharide monooxygenase, AnLPMO15g from Aspergillus niger. Ind. Crop Prod. 2018, 126, 309–315. [Google Scholar] [CrossRef]
- Zouraris, D.; Dimarogona, M.; Karnaouri, A.; Topakas, E.; Karantonis, A. Direct electron transfer of lytic polysaccharide monooxygenases (LPMOs) and determination of their formal potentials by large amplitude Fourier transform alternating current cyclic voltammetry. Bioelectrochemistry 2018, 124, 149–155. [Google Scholar] [CrossRef] [PubMed]
- Chen, R.; Yu, S.; Chen, F.; Cui, X.; Wang, S.; Zhang, H.; Zhang, C.; Du, L.; Ma, L. Enhancing hydrolysis of lignocellulosic biomass through molecular modification of lytic polysaccharide monooxygenase from Aspergillus niger. Cellulose 2024, 31, 7353–7366. [Google Scholar] [CrossRef]
- Breslmayr, E.; Hanzek, M.; Hanrahan, A.; Leitner, C.; Kittl, R.; Santek, B.; Oostenbrink, C.; Ludwig, R. A fast and sensitive activity assay for lytic polysaccharide monooxygenase. Biotechnol. Biofuels. 2018, 11, 79. [Google Scholar] [CrossRef] [PubMed]
- Miller, G.L. Use of dinitrosalicylic acid reagent for determination of reducing sugars. Anal. Chem. 1959, 31, 426–428. [Google Scholar] [CrossRef]
- Meng, Y.; Gao, W.; Liu, X.; Li, T.; Li, K.; Yin, H. Improving the catalytic efficiency of an AA9 lytic polysaccharide monooxygenase MtLPMO9G by consensus mutagenesis. Catalysts 2024, 14, 614. [Google Scholar] [CrossRef]
- Breslmayr, E.; Daly, S.; Pozgajčić, A.; Chang, H.; Rezić, T.; Oostenbrink, C.; Ludwig, R. Improved spectrophotometric assay for lytic polysaccharide monooxygenase. Biotechnol. Biofuels. 2019, 12, 283. [Google Scholar] [CrossRef] [PubMed]
- Wang, D.; Li, J.; Zheng, Y.T.; Hsieh, Y.S.Y. Recent advances in screening methods for the functional investigation of lytic polysaccharide monooxygenases. Front. Chem. 2021, 9, 653754. [Google Scholar] [CrossRef] [PubMed]
- Marjamaa, K.; Rahikainen, J.; Stopamo, F.G.; Sulaeva, I.; Hosia, W.; Maiorova, N.; King, A.W.T.; Potthast, A.; Kruus, K.; Eijsink, V.G.H.; et al. LPMO-catalyzed oxidation of cellulosic fibers with controlled addition of a reductant and H2O2. ACS Sustain. Chem. Eng. 2024, 13, 220–231. [Google Scholar] [CrossRef] [PubMed]
- Chorozian, K.; Karnaouri, A.; Tryfona, T.; Kondyli, N.G.; Karantonis, A.; Topakas, E. Characterization of a novel AA16 lytic polysaccharide monooxygenase from Thermothelomyces thermophilus and comparison of biochemical properties with an LPMO from AA9 family. Carbohydr. Polym. 2024, 342, 122387. [Google Scholar] [CrossRef] [PubMed]
- Forsberg, Z.; Tuveng, T.R.; Eijsink, V.G.H. A modular enzyme with combined hemicellulose-removing and LPMO activity increases cellulose accessibility in softwood. FEBS J. 2025, 292, 75–93. [Google Scholar] [CrossRef] [PubMed]
- Gao, W.; Li, T.; Zhou, H.; Ju, J.; Yin, H. Carbohydrate-binding modules enhance H2O2 tolerance by promoting lytic polysaccharide monooxygenase active site H2O2 consumption. J. Biol. Chem. 2024, 300, 105573. [Google Scholar] [CrossRef] [PubMed]
- Kommedal, E.G.; Angeltveit, C.F.; Klau, L.J.; Ayuso-Fernández, I.; Arstad, B.; Antonsen, S.G.; Stenstrøm, Y.; Ekeberg, D.; Gírio, F.; Carvalheiro, F.; et al. Visible light-exposed lignin facilitates cellulose solubilization by lytic polysaccharide monooxygenases. Nat. Commun. 2023, 14, 1063. [Google Scholar] [CrossRef] [PubMed]
- Bissaro, B.; Streit, B.; Isaksen, I.; Eijsink, V.G.H.; Beckham, G.T.; DuBois, J.L.; Rohr, A.K. Molecular mechanism of the chitinolytic peroxygenase reaction. Proc. Natl. Acad. Sci. USA 2020, 117, 1504–1513. [Google Scholar] [CrossRef] [PubMed]






| Primer Name | Primer Sequence 1 |
|---|---|
| S197H-F | 5′-ACGGCTCCCATGAGCTTCCCTCCGGTGTCTCC-3′ |
| S197H-R | 5′-AAGCTCATGGGAGCCGTCGGAGGTGACCTTGA-3′ |
| S197F-F | 5′-ACGGCTCCTTCGAGCTTCCCTCCGGTGTCTCC-3′ |
| S197F-R | 5′-AAGCTCGAAGGAGCCGTCGGAGGTGACCTTGA-3′ |
| E185V-F | 5′-CTACATGGTATGTGTCCAGTTCAAGGTCACCTC-3′ |
| E185V-R | 5′-GGACACATACCATGTAGAACTGGGCACCACCC-3′ |
| E185L-F | 5′-CTACATGTTATGTGTCCAGTTCAAGGTCACCTC-3′ |
| E185L-R | 5′-GGACACATAACATGTAGAACTGGGCACCACCC-3′ |
| E185M-F | 5′-CTACATGATGTGTGTCCAGTTCAAGGTCACCTC-3′ |
| E185M-R | 5′-GGACACACATCATGTAGAACTGGGCACCACCC-3′ |
| E185I-F | 5′-CTACATGATATGTGTCCAGTTCAAGGTCACCTC-3′ |
| E185I-R | 5′-GGACACATATCATGTAGAACTGGGCACCACCC-3′ |
| Q108M-F | 5′-TCCCGTCATGGTCTACATGGCCCCGACGGCCA-3′ |
| Q108M-R | 5′-TGTAGACCATGACGGGACCCTTGTGGGAGGAG-3′ |
| A249P-F | 5′-ATCTTCCTCCCCAGCTGCTGCTGCTACCACCTC-3′ |
| A249P-R | 5′-CAGCTGGGGAGGAAGATCCGGAGCTGGAGCCG-3′ |
| Mutants | ∆∆G (kcal/mol) 1 |
|---|---|
| S197H | −2.53983 |
| S197F | −2.50902 |
| E185V | −2.39397 |
| E185L | −2.71438 |
| E185M | −3.11987 |
| E185I | −3.15412 |
| V187I | −2.72080 |
| S46L | −2.41606 |
| S46M | −2.91359 |
| N64G | −2.79300 |
| Q108M | −3.01390 |
| A249P | −2.56169 |
| A229M | −2.75333 |
| A180P | −2.47343 |
| Enzymes | Km (mM) | Vmax (U·g−1) | kcat (s−1) 1 | kcat/Km (s−1·mM−1) | References |
|---|---|---|---|---|---|
| AnLPMO15g (WT) | 5.41 ± 0.18 a | 33.98 ± 1.20 d | 14.92 ± 0.52 c | 2.76 ± 0.11 d | This study |
| E185V/Q108M | 5.05 ± 0.15 b | 42.52 ± 1.35 b | 20.70 ± 0.66 a | 4.10 ± 0.18 b | This study |
| E185V/Q108M/A249P | 4.84 ± 0.14 c | 47.64 ± 1.28 a | 20.84 ± 0.60 a | 4.31 ± 0.20 a | This study |
| C293F | 4.98 ± 0.01 b | 39.94 ± 0.01 c | 17.54 ± 0.04 b | 3.52 ± 0.02 c | [27] |
| NcLPMO9C | 245 ± 74 | 270 ± 20 | ND | ND | [28] |
| MtLPMO9G | 23.7 ± 3.5 | 662.2 ± 44.3 | ND | ND | [30] |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Yuan, L.; Yuan, W.; Han, J.; Wang, G.; Jia, J.; Xu, W.; Wang, S.; Bi, S.; Xia, M.; Ma, L. Computer-Aided Virtual Saturation Mutagenesis Improves the Lignocellulose-Degrading Performance of an Aspergillus niger LPMO. Foods 2026, 15, 2178. https://doi.org/10.3390/foods15122178
Yuan L, Yuan W, Han J, Wang G, Jia J, Xu W, Wang S, Bi S, Xia M, Ma L. Computer-Aided Virtual Saturation Mutagenesis Improves the Lignocellulose-Degrading Performance of an Aspergillus niger LPMO. Foods. 2026; 15(12):2178. https://doi.org/10.3390/foods15122178
Chicago/Turabian StyleYuan, Lin, Weixue Yuan, Jiaxin Han, Ge Wang, Jie Jia, Wenqi Xu, Shuang Wang, Shuang Bi, Menglei Xia, and Lijuan Ma. 2026. "Computer-Aided Virtual Saturation Mutagenesis Improves the Lignocellulose-Degrading Performance of an Aspergillus niger LPMO" Foods 15, no. 12: 2178. https://doi.org/10.3390/foods15122178
APA StyleYuan, L., Yuan, W., Han, J., Wang, G., Jia, J., Xu, W., Wang, S., Bi, S., Xia, M., & Ma, L. (2026). Computer-Aided Virtual Saturation Mutagenesis Improves the Lignocellulose-Degrading Performance of an Aspergillus niger LPMO. Foods, 15(12), 2178. https://doi.org/10.3390/foods15122178

