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NMR elucidation of nonproductive binding sites of lignin models with carbohydrate-binding module of cellobiohydrolase I

BACKGROUND: Highly efficient enzymatic saccharification of pretreated lignocellulose is a key step in achieving lignocellulosic biorefinery. Cellobiohydrolase I (Cel7A) secreted by Trichoderma reesei is an industrially used cellulase that possesses carbohydrate-binding module 1 (TrCBM1) at the C-ter...

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Autores principales: Tokunaga, Yuki, Nagata, Takashi, Kondo, Keiko, Katahira, Masato, Watanabe, Takashi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7541279/
https://www.ncbi.nlm.nih.gov/pubmed/33042221
http://dx.doi.org/10.1186/s13068-020-01805-w
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author Tokunaga, Yuki
Nagata, Takashi
Kondo, Keiko
Katahira, Masato
Watanabe, Takashi
author_facet Tokunaga, Yuki
Nagata, Takashi
Kondo, Keiko
Katahira, Masato
Watanabe, Takashi
author_sort Tokunaga, Yuki
collection PubMed
description BACKGROUND: Highly efficient enzymatic saccharification of pretreated lignocellulose is a key step in achieving lignocellulosic biorefinery. Cellobiohydrolase I (Cel7A) secreted by Trichoderma reesei is an industrially used cellulase that possesses carbohydrate-binding module 1 (TrCBM1) at the C-terminal domain. The nonproductive binding of TrCBM1 to lignin significantly decreases the enzymatic saccharification efficiency and increases the cost of biomass conversion because of the additionally required enzymes. Understanding the interaction mechanism between lignin and TrCBM1 is essential for realizing a cost-effective biofuel production; however, the binding sites in lignin have not been clearly elucidated. RESULTS: Three types of (13)C-labeled β-O-4 lignin oligomer models were synthesized and characterized. The 2D (1)H–(13)C heteronuclear single-quantum correlation (HSQC) spectra of the (13)C-labeled lignin models confirmed that the three types of the (13)C labels were correctly incorporated in the (1) aromatic rings and β positions, (2) α positions, and (3) methoxy groups, respectively. The TrCBM1-binding sites in lignin were analyzed by observing NMR chemical shift perturbations (CSPs) using the synthetic (13)C-labeled β-O-4 lignin oligomer models. Obvious CSPs were observed in signals from the aromatic regions in oligomers bound to TrCBM1, whereas perturbations in the signals from aliphatic regions and methoxy groups were insignificant. These findings indicated that hydrophobic interactions and π–π stacking were dominating factors in nonproductive binding. The synthetic lignin models have two configurations whose terminal units were differently aligned and donated C((I)) and C((II)). The C((I)) ring showed remarkable perturbation compared with the C((II)), which indicated that the binding of TrCBM1 was markedly affected by the configuration of the lignin models. The long-chain lignin models (degree of polymerization (DP) 4.16–4.70) clearly bound to TrCBM1. The interactions of TrCBM1 with the short-chain lignin models (DP 2.64–3.12) were insignificant, indicating that a DP greater than 4 was necessary for TrCBM1 binding. CONCLUSION: The CSP analysis using (13)C-labeled β-O-4 lignin oligomer models enabled the identification of the TrCBM1 binding sites in lignins at the atomic level. This specific interaction analysis will provide insights for new molecular designs of cellulase having a controlled affinity to cellulose and lignin for a cost-effective biorefinery process.
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spelling pubmed-75412792020-10-08 NMR elucidation of nonproductive binding sites of lignin models with carbohydrate-binding module of cellobiohydrolase I Tokunaga, Yuki Nagata, Takashi Kondo, Keiko Katahira, Masato Watanabe, Takashi Biotechnol Biofuels Research BACKGROUND: Highly efficient enzymatic saccharification of pretreated lignocellulose is a key step in achieving lignocellulosic biorefinery. Cellobiohydrolase I (Cel7A) secreted by Trichoderma reesei is an industrially used cellulase that possesses carbohydrate-binding module 1 (TrCBM1) at the C-terminal domain. The nonproductive binding of TrCBM1 to lignin significantly decreases the enzymatic saccharification efficiency and increases the cost of biomass conversion because of the additionally required enzymes. Understanding the interaction mechanism between lignin and TrCBM1 is essential for realizing a cost-effective biofuel production; however, the binding sites in lignin have not been clearly elucidated. RESULTS: Three types of (13)C-labeled β-O-4 lignin oligomer models were synthesized and characterized. The 2D (1)H–(13)C heteronuclear single-quantum correlation (HSQC) spectra of the (13)C-labeled lignin models confirmed that the three types of the (13)C labels were correctly incorporated in the (1) aromatic rings and β positions, (2) α positions, and (3) methoxy groups, respectively. The TrCBM1-binding sites in lignin were analyzed by observing NMR chemical shift perturbations (CSPs) using the synthetic (13)C-labeled β-O-4 lignin oligomer models. Obvious CSPs were observed in signals from the aromatic regions in oligomers bound to TrCBM1, whereas perturbations in the signals from aliphatic regions and methoxy groups were insignificant. These findings indicated that hydrophobic interactions and π–π stacking were dominating factors in nonproductive binding. The synthetic lignin models have two configurations whose terminal units were differently aligned and donated C((I)) and C((II)). The C((I)) ring showed remarkable perturbation compared with the C((II)), which indicated that the binding of TrCBM1 was markedly affected by the configuration of the lignin models. The long-chain lignin models (degree of polymerization (DP) 4.16–4.70) clearly bound to TrCBM1. The interactions of TrCBM1 with the short-chain lignin models (DP 2.64–3.12) were insignificant, indicating that a DP greater than 4 was necessary for TrCBM1 binding. CONCLUSION: The CSP analysis using (13)C-labeled β-O-4 lignin oligomer models enabled the identification of the TrCBM1 binding sites in lignins at the atomic level. This specific interaction analysis will provide insights for new molecular designs of cellulase having a controlled affinity to cellulose and lignin for a cost-effective biorefinery process. BioMed Central 2020-10-07 /pmc/articles/PMC7541279/ /pubmed/33042221 http://dx.doi.org/10.1186/s13068-020-01805-w Text en © The Author(s) 2020 Open AccessThis article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated in a credit line to the data.
spellingShingle Research
Tokunaga, Yuki
Nagata, Takashi
Kondo, Keiko
Katahira, Masato
Watanabe, Takashi
NMR elucidation of nonproductive binding sites of lignin models with carbohydrate-binding module of cellobiohydrolase I
title NMR elucidation of nonproductive binding sites of lignin models with carbohydrate-binding module of cellobiohydrolase I
title_full NMR elucidation of nonproductive binding sites of lignin models with carbohydrate-binding module of cellobiohydrolase I
title_fullStr NMR elucidation of nonproductive binding sites of lignin models with carbohydrate-binding module of cellobiohydrolase I
title_full_unstemmed NMR elucidation of nonproductive binding sites of lignin models with carbohydrate-binding module of cellobiohydrolase I
title_short NMR elucidation of nonproductive binding sites of lignin models with carbohydrate-binding module of cellobiohydrolase I
title_sort nmr elucidation of nonproductive binding sites of lignin models with carbohydrate-binding module of cellobiohydrolase i
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7541279/
https://www.ncbi.nlm.nih.gov/pubmed/33042221
http://dx.doi.org/10.1186/s13068-020-01805-w
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