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Rationally Guided Improvement of NOV1 Dioxygenase for the Conversion of Lignin-Derived Isoeugenol to Vanillin

[Image: see text] Biocatalysis is a key tool in both green chemistry and biorefinery fields. NOV1 is a dioxygenase that catalyzes the one-step, coenzyme-free oxidation of isoeugenol into vanillin and holds enormous biotechnological potential for the complete valorization of lignin as a sustainable s...

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Autores principales: De Simone, Mario, Alvigini, Laura, Alonso-Cotchico, Lur, Brissos, Vânia, Caroli, Jonatan, Lucas, Maria Fátima, Monza, Emanuele, Melo, Eduardo Pinho, Mattevi, Andrea, Martins, Lígia O.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9851154/
https://www.ncbi.nlm.nih.gov/pubmed/35687874
http://dx.doi.org/10.1021/acs.biochem.2c00168
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author De Simone, Mario
Alvigini, Laura
Alonso-Cotchico, Lur
Brissos, Vânia
Caroli, Jonatan
Lucas, Maria Fátima
Monza, Emanuele
Melo, Eduardo Pinho
Mattevi, Andrea
Martins, Lígia O.
author_facet De Simone, Mario
Alvigini, Laura
Alonso-Cotchico, Lur
Brissos, Vânia
Caroli, Jonatan
Lucas, Maria Fátima
Monza, Emanuele
Melo, Eduardo Pinho
Mattevi, Andrea
Martins, Lígia O.
author_sort De Simone, Mario
collection PubMed
description [Image: see text] Biocatalysis is a key tool in both green chemistry and biorefinery fields. NOV1 is a dioxygenase that catalyzes the one-step, coenzyme-free oxidation of isoeugenol into vanillin and holds enormous biotechnological potential for the complete valorization of lignin as a sustainable starting material for biobased chemicals, polymers, and materials. This study integrates computational, kinetic, structural, and biophysical approaches to characterize a new NOV1 variant featuring improved activity and stability compared to those of the wild type. The S283F replacement results in a 2-fold increased turnover rate (k(cat)) for isoeugenol and a 4-fold higher catalytic efficiency (k(cat)/K(m)) for molecular oxygen compared to those of the wild type. Furthermore, the variant exhibits a half-life that is 20-fold higher than that of the wild type, which most likely relates to the enhanced stabilization of the iron cofactor in the active site. Molecular dynamics supports this view, revealing that the S283F replacement decreases the optimal pK(a) and favors conformations of the iron-coordinating histidines compatible with an increased level of binding to iron. Importantly, whole cells containing the S283F variant catalyze the conversion of ≤100 mM isoeugenol to vanillin, yielding >99% molar conversion yields within 24 h. This integrative strategy provided a new enzyme for biotechnological applications and mechanistic insights that will facilitate the future design of robust and efficient biocatalysts.
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spelling pubmed-98511542023-06-10 Rationally Guided Improvement of NOV1 Dioxygenase for the Conversion of Lignin-Derived Isoeugenol to Vanillin De Simone, Mario Alvigini, Laura Alonso-Cotchico, Lur Brissos, Vânia Caroli, Jonatan Lucas, Maria Fátima Monza, Emanuele Melo, Eduardo Pinho Mattevi, Andrea Martins, Lígia O. Biochemistry [Image: see text] Biocatalysis is a key tool in both green chemistry and biorefinery fields. NOV1 is a dioxygenase that catalyzes the one-step, coenzyme-free oxidation of isoeugenol into vanillin and holds enormous biotechnological potential for the complete valorization of lignin as a sustainable starting material for biobased chemicals, polymers, and materials. This study integrates computational, kinetic, structural, and biophysical approaches to characterize a new NOV1 variant featuring improved activity and stability compared to those of the wild type. The S283F replacement results in a 2-fold increased turnover rate (k(cat)) for isoeugenol and a 4-fold higher catalytic efficiency (k(cat)/K(m)) for molecular oxygen compared to those of the wild type. Furthermore, the variant exhibits a half-life that is 20-fold higher than that of the wild type, which most likely relates to the enhanced stabilization of the iron cofactor in the active site. Molecular dynamics supports this view, revealing that the S283F replacement decreases the optimal pK(a) and favors conformations of the iron-coordinating histidines compatible with an increased level of binding to iron. Importantly, whole cells containing the S283F variant catalyze the conversion of ≤100 mM isoeugenol to vanillin, yielding >99% molar conversion yields within 24 h. This integrative strategy provided a new enzyme for biotechnological applications and mechanistic insights that will facilitate the future design of robust and efficient biocatalysts. American Chemical Society 2022-06-10 /pmc/articles/PMC9851154/ /pubmed/35687874 http://dx.doi.org/10.1021/acs.biochem.2c00168 Text en © 2022 American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle De Simone, Mario
Alvigini, Laura
Alonso-Cotchico, Lur
Brissos, Vânia
Caroli, Jonatan
Lucas, Maria Fátima
Monza, Emanuele
Melo, Eduardo Pinho
Mattevi, Andrea
Martins, Lígia O.
Rationally Guided Improvement of NOV1 Dioxygenase for the Conversion of Lignin-Derived Isoeugenol to Vanillin
title Rationally Guided Improvement of NOV1 Dioxygenase for the Conversion of Lignin-Derived Isoeugenol to Vanillin
title_full Rationally Guided Improvement of NOV1 Dioxygenase for the Conversion of Lignin-Derived Isoeugenol to Vanillin
title_fullStr Rationally Guided Improvement of NOV1 Dioxygenase for the Conversion of Lignin-Derived Isoeugenol to Vanillin
title_full_unstemmed Rationally Guided Improvement of NOV1 Dioxygenase for the Conversion of Lignin-Derived Isoeugenol to Vanillin
title_short Rationally Guided Improvement of NOV1 Dioxygenase for the Conversion of Lignin-Derived Isoeugenol to Vanillin
title_sort rationally guided improvement of nov1 dioxygenase for the conversion of lignin-derived isoeugenol to vanillin
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9851154/
https://www.ncbi.nlm.nih.gov/pubmed/35687874
http://dx.doi.org/10.1021/acs.biochem.2c00168
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