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Keyword
- enzyme kinetics2
- AA91
- aldose sugar dehydrogenase1
- amyloid1
- ascorbic acid1
- beta-xylosidase1
- biofuel1
- carbohydrate-binding protein1
- cellulose1
- dehydrogenase1
- fusion protein1
- gene multiplicity1
- glycoside hydrolase1
- hydrogen peroxide1
- inhibition mechanism1
- lytic polysaccharide monooxygenase (LPMO)1
- molecular dynamics1
- plant cell wall1
- protein aggregation1
- protein chimera1
- protein engineering1
- protein nanofibrils1
- protein stability1
- substrate binding1
- substrate specificity1
Enzymology
3 Results
- ArticleOpen Access
Comparison of three seemingly similar lytic polysaccharide monooxygenases from Neurospora crassa suggests different roles in plant biomass degradation
Journal of Biological ChemistryVol. 294Issue 41p15068–15081Published online: August 20, 2019- Dejan M. Petrović
- Anikó Várnai
- Maria Dimarogona
- Geir Mathiesen
- Mats Sandgren
- Bjørge Westereng
- and others
Cited in Scopus: 34Many fungi produce multiple lytic polysaccharide monooxygenases (LPMOs) with seemingly similar functions, but the biological reason for this multiplicity remains unknown. To address this question, here we carried out comparative structural and functional characterizations of three cellulose-active C4-oxidizing family AA9 LPMOs from the fungus Neurospora crassa, NcLPMO9A (NCU02240), NcLPMO9C (NCU02916), and NcLPMO9D (NCU01050). We solved the three-dimensional structure of copper-bound NcLPMO9A at 1.6-Å resolution and found that NcLPMO9A and NcLPMO9C, containing a CBM1 carbohydrate-binding module, bind cellulose more strongly and were less susceptible to inactivation than NcLPMO9D, which lacks a CBM. - ArticleOpen Access
Coupled chemistry kinetics demonstrate the utility of functionalized Sup35 amyloid nanofibrils in biocatalytic cascades
Journal of Biological ChemistryVol. 294Issue 41p14966–14977Published online: August 15, 2019- Benjamin Schmuck
- Mikael Gudmundsson
- Torleif Härd
- Mats Sandgren
Cited in Scopus: 1Concerns over the environment are a central driver for designing cell-free enzymatic cascade reactions that synthesize non–petrol-based commodity compounds. An often-suggested strategy that would demonstrate the economic competitiveness of this technology is recycling of valuable enzymes through their immobilization. For this purpose, amyloid nanofibrils are an ideal scaffold to realize chemistry-free covalent enzyme immobilization on a material that offers a large surface area. However, in most instances, only single enzyme–functionalized amyloid fibrils have so far been studied. - Molecular BiophysicsOpen Access
Kinetic and molecular dynamics study of inhibition and transglycosylation in Hypocrea jecorina family 3 β-glucosidases
Journal of Biological ChemistryVol. 294Issue 9p3169–3180Published online: January 2, 2019- Inacrist Geronimo
- Patricia Ntarima
- Kathleen Piens
- Mikael Gudmundsson
- Henrik Hansson
- Mats Sandgren
- and others
Cited in Scopus: 4β-Glucosidases enhance enzymatic biomass conversion by relieving cellobiose inhibition of endoglucanases and cellobiohydrolases. However, the susceptibility of these enzymes to inhibition and transglycosylation at high glucose or cellobiose concentrations severely limits their activity and, consequently, the overall efficiency of enzyme mixtures. We determined the impact of these two processes on the hydrolytic activity of the industrially relevant family 3 β-glucosidases from Hypocrea jecorina, HjCel3A and HjCel3B, and investigated the underlying molecular mechanisms through kinetic studies, binding free energy calculations, and molecular dynamics (MD) simulations.