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Biochemical and structural characterization of a sphingomonad diarylpropane lyase for cofactorless deformylation

Lignin valorization is being intensely pursued via tandem catalytic depolymerization and biological funneling to produce single products. In many lignin depolymerization processes, aromatic dimers and oligomers linked by carbon–carbon bonds remain intact, necessitating the development of enzymes cap...

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Autores principales: Kuatsjah, Eugene, Zahn, Michael, Chen, Xiangyang, Kato, Ryo, Hinchen, Daniel J., Konev, Mikhail O., Katahira, Rui, Orr, Christian, Wagner, Armin, Zou, Yike, Haugen, Stefan J., Ramirez, Kelsey J., Michener, Joshua K., Pickford, Andrew R., Kamimura, Naofumi, Masai, Eiji, Houk, K. N., McGeehan, John E., Beckham, Gregg T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9942872/
https://www.ncbi.nlm.nih.gov/pubmed/36652470
http://dx.doi.org/10.1073/pnas.2212246120
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author Kuatsjah, Eugene
Zahn, Michael
Chen, Xiangyang
Kato, Ryo
Hinchen, Daniel J.
Konev, Mikhail O.
Katahira, Rui
Orr, Christian
Wagner, Armin
Zou, Yike
Haugen, Stefan J.
Ramirez, Kelsey J.
Michener, Joshua K.
Pickford, Andrew R.
Kamimura, Naofumi
Masai, Eiji
Houk, K. N.
McGeehan, John E.
Beckham, Gregg T.
author_facet Kuatsjah, Eugene
Zahn, Michael
Chen, Xiangyang
Kato, Ryo
Hinchen, Daniel J.
Konev, Mikhail O.
Katahira, Rui
Orr, Christian
Wagner, Armin
Zou, Yike
Haugen, Stefan J.
Ramirez, Kelsey J.
Michener, Joshua K.
Pickford, Andrew R.
Kamimura, Naofumi
Masai, Eiji
Houk, K. N.
McGeehan, John E.
Beckham, Gregg T.
author_sort Kuatsjah, Eugene
collection PubMed
description Lignin valorization is being intensely pursued via tandem catalytic depolymerization and biological funneling to produce single products. In many lignin depolymerization processes, aromatic dimers and oligomers linked by carbon–carbon bonds remain intact, necessitating the development of enzymes capable of cleaving these compounds to monomers. Recently, the catabolism of erythro-1,2-diguaiacylpropane-1,3-diol (erythro-DGPD), a ring-opened lignin-derived β-1 dimer, was reported in Novosphingobium aromaticivorans. The first enzyme in this pathway, LdpA (formerly LsdE), is a member of the nuclear transport factor 2 (NTF-2)-like structural superfamily that converts erythro-DGPD to lignostilbene through a heretofore unknown mechanism. In this study, we performed biochemical, structural, and mechanistic characterization of the N. aromaticivorans LdpA and another homolog identified in Sphingobium sp. SYK-6, for which activity was confirmed in vivo. For both enzymes, we first demonstrated that formaldehyde is the C(1) reaction product, and we further demonstrated that both enantiomers of erythro-DGPD were transformed simultaneously, suggesting that LdpA, while diastereomerically specific, lacks enantioselectivity. We also show that LdpA is subject to a severe competitive product inhibition by lignostilbene. Three-dimensional structures of LdpA were determined using X-ray crystallography, including substrate-bound complexes, revealing several residues that were shown to be catalytically essential. We used density functional theory to validate a proposed mechanism that proceeds via dehydroxylation and formation of a quinone methide intermediate that serves as an electron sink for the ensuing deformylation. Overall, this study expands the range of chemistry catalyzed by the NTF-2-like protein family to a prevalent lignin dimer through a cofactorless deformylation reaction.
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spelling pubmed-99428722023-02-22 Biochemical and structural characterization of a sphingomonad diarylpropane lyase for cofactorless deformylation Kuatsjah, Eugene Zahn, Michael Chen, Xiangyang Kato, Ryo Hinchen, Daniel J. Konev, Mikhail O. Katahira, Rui Orr, Christian Wagner, Armin Zou, Yike Haugen, Stefan J. Ramirez, Kelsey J. Michener, Joshua K. Pickford, Andrew R. Kamimura, Naofumi Masai, Eiji Houk, K. N. McGeehan, John E. Beckham, Gregg T. Proc Natl Acad Sci U S A Biological Sciences Lignin valorization is being intensely pursued via tandem catalytic depolymerization and biological funneling to produce single products. In many lignin depolymerization processes, aromatic dimers and oligomers linked by carbon–carbon bonds remain intact, necessitating the development of enzymes capable of cleaving these compounds to monomers. Recently, the catabolism of erythro-1,2-diguaiacylpropane-1,3-diol (erythro-DGPD), a ring-opened lignin-derived β-1 dimer, was reported in Novosphingobium aromaticivorans. The first enzyme in this pathway, LdpA (formerly LsdE), is a member of the nuclear transport factor 2 (NTF-2)-like structural superfamily that converts erythro-DGPD to lignostilbene through a heretofore unknown mechanism. In this study, we performed biochemical, structural, and mechanistic characterization of the N. aromaticivorans LdpA and another homolog identified in Sphingobium sp. SYK-6, for which activity was confirmed in vivo. For both enzymes, we first demonstrated that formaldehyde is the C(1) reaction product, and we further demonstrated that both enantiomers of erythro-DGPD were transformed simultaneously, suggesting that LdpA, while diastereomerically specific, lacks enantioselectivity. We also show that LdpA is subject to a severe competitive product inhibition by lignostilbene. Three-dimensional structures of LdpA were determined using X-ray crystallography, including substrate-bound complexes, revealing several residues that were shown to be catalytically essential. We used density functional theory to validate a proposed mechanism that proceeds via dehydroxylation and formation of a quinone methide intermediate that serves as an electron sink for the ensuing deformylation. Overall, this study expands the range of chemistry catalyzed by the NTF-2-like protein family to a prevalent lignin dimer through a cofactorless deformylation reaction. National Academy of Sciences 2023-01-18 2023-01-24 /pmc/articles/PMC9942872/ /pubmed/36652470 http://dx.doi.org/10.1073/pnas.2212246120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Kuatsjah, Eugene
Zahn, Michael
Chen, Xiangyang
Kato, Ryo
Hinchen, Daniel J.
Konev, Mikhail O.
Katahira, Rui
Orr, Christian
Wagner, Armin
Zou, Yike
Haugen, Stefan J.
Ramirez, Kelsey J.
Michener, Joshua K.
Pickford, Andrew R.
Kamimura, Naofumi
Masai, Eiji
Houk, K. N.
McGeehan, John E.
Beckham, Gregg T.
Biochemical and structural characterization of a sphingomonad diarylpropane lyase for cofactorless deformylation
title Biochemical and structural characterization of a sphingomonad diarylpropane lyase for cofactorless deformylation
title_full Biochemical and structural characterization of a sphingomonad diarylpropane lyase for cofactorless deformylation
title_fullStr Biochemical and structural characterization of a sphingomonad diarylpropane lyase for cofactorless deformylation
title_full_unstemmed Biochemical and structural characterization of a sphingomonad diarylpropane lyase for cofactorless deformylation
title_short Biochemical and structural characterization of a sphingomonad diarylpropane lyase for cofactorless deformylation
title_sort biochemical and structural characterization of a sphingomonad diarylpropane lyase for cofactorless deformylation
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9942872/
https://www.ncbi.nlm.nih.gov/pubmed/36652470
http://dx.doi.org/10.1073/pnas.2212246120
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