A novel and efficient fungal delignification strategy based on versatile peroxidase for lignocellulose bioconversion

Abstract Background The selective lignin-degrading white-rot fungi are regarded to be the best lignin degraders and have been widely used for reducing the saccharification recalcitrance of lignocellulose. However, the biological delignification and conversion of lignocellulose in biorefinery is stil...

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Main Authors: Wen Kong, Xiao Fu, Lei Wang, Ahmad Alhujaily, Jingli Zhang, Fuying Ma, Xiaoyu Zhang, Hongbo Yu
Format: Article
Language:English
Published: BMC 2017-09-01
Series:Biotechnology for Biofuels
Subjects:
Online Access:http://link.springer.com/article/10.1186/s13068-017-0906-x
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spelling doaj-acbb18008d764ca7b4c1c990c52f20fe2020-11-24T21:54:51ZengBMCBiotechnology for Biofuels1754-68342017-09-0110111510.1186/s13068-017-0906-xA novel and efficient fungal delignification strategy based on versatile peroxidase for lignocellulose bioconversionWen Kong0Xiao Fu1Lei Wang2Ahmad Alhujaily3Jingli Zhang4Fuying Ma5Xiaoyu Zhang6Hongbo Yu7College of Life Science and Technology, Huazhong University of Science and TechnologyCollege of Life Science and Technology, Huazhong University of Science and TechnologyCollege of Life Science and Technology, Huazhong University of Science and TechnologyCollege of Life Science and Technology, Huazhong University of Science and TechnologyCollege of Life Science and Technology, WuHan University of TechnologyCollege of Life Science and Technology, Huazhong University of Science and TechnologyCollege of Life Science and Technology, Huazhong University of Science and TechnologyCollege of Life Science and Technology, Huazhong University of Science and TechnologyAbstract Background The selective lignin-degrading white-rot fungi are regarded to be the best lignin degraders and have been widely used for reducing the saccharification recalcitrance of lignocellulose. However, the biological delignification and conversion of lignocellulose in biorefinery is still limited. It is necessary to develop novel and more efficient bio-delignification systems. Results Physisporinus vitreus relies on a new versatile peroxidase (VP)-based delignification strategy to remove enzymatic recalcitrance of corn stover efficiently, so that saccharification of corn stover was significantly enhanced to 349.1 mg/g biomass (yield of glucose) and 91.5% (hydrolysis yield of cellulose) at 28 days, as high as levels reached by thermochemical treatment. Analysis of the lignin structure using pyrolysis–gas chromatography–mass spectrometry (Py–GC/MS) showed that the total abundance of lignin-derived compounds decreased by 54.0% and revealed a notable demethylation during lignin degradation by P. vitreus. Monomeric and dimeric lignin model compounds were used to confirm the ligninolytic capabilities of extracellular ligninases secreted by P. vitreus. The laccase (Lac) from P. vitreus could not oxidize nonphenolic lignin compounds and polymerized β-O-4 and 5-5′ dimers to precipitate which had a negative effect on the enzymatic hydrolysis of corn stover in vitro. However, the VP from P. vitreus could oxidize both phenolic and nonphenolic lignin model compounds as well as break the β-O-4 and 5-5′ dimers into monomeric compounds, which were measured by high-performance liquid chromatography–electrospray ionization–mass spectrometry (LC–ESI–MS). Moreover, we showed that addition of purified VP in vitro improved the enzymatic hydrolysis of corn stover by 14.1%. Conclusions From the highly efficient system of enzymatic recalcitrance removal by new white-rot fungus, we identified a new delignification strategy based on VP which could oxidize both phenolic and nonphenolic lignin units and break different linkages in lignin. In addition, this is the first evidence that VP could break 5-5′ linkage efficiently in vitro. Moreover, VP improved the enzymatic hydrolysis of corn stover in vitro. The remarkable lignin-degradative potential makes VP attractive for biotechnological applications.http://link.springer.com/article/10.1186/s13068-017-0906-xPhysisporinus vitreusEnzymatic recalcitrance removalVersatile peroxidaseCorn stoverBiofuelLignin
collection DOAJ
language English
format Article
sources DOAJ
author Wen Kong
Xiao Fu
Lei Wang
Ahmad Alhujaily
Jingli Zhang
Fuying Ma
Xiaoyu Zhang
Hongbo Yu
spellingShingle Wen Kong
Xiao Fu
Lei Wang
Ahmad Alhujaily
Jingli Zhang
Fuying Ma
Xiaoyu Zhang
Hongbo Yu
A novel and efficient fungal delignification strategy based on versatile peroxidase for lignocellulose bioconversion
Biotechnology for Biofuels
Physisporinus vitreus
Enzymatic recalcitrance removal
Versatile peroxidase
Corn stover
Biofuel
Lignin
author_facet Wen Kong
Xiao Fu
Lei Wang
Ahmad Alhujaily
Jingli Zhang
Fuying Ma
Xiaoyu Zhang
Hongbo Yu
author_sort Wen Kong
title A novel and efficient fungal delignification strategy based on versatile peroxidase for lignocellulose bioconversion
title_short A novel and efficient fungal delignification strategy based on versatile peroxidase for lignocellulose bioconversion
title_full A novel and efficient fungal delignification strategy based on versatile peroxidase for lignocellulose bioconversion
title_fullStr A novel and efficient fungal delignification strategy based on versatile peroxidase for lignocellulose bioconversion
title_full_unstemmed A novel and efficient fungal delignification strategy based on versatile peroxidase for lignocellulose bioconversion
title_sort novel and efficient fungal delignification strategy based on versatile peroxidase for lignocellulose bioconversion
publisher BMC
series Biotechnology for Biofuels
issn 1754-6834
publishDate 2017-09-01
description Abstract Background The selective lignin-degrading white-rot fungi are regarded to be the best lignin degraders and have been widely used for reducing the saccharification recalcitrance of lignocellulose. However, the biological delignification and conversion of lignocellulose in biorefinery is still limited. It is necessary to develop novel and more efficient bio-delignification systems. Results Physisporinus vitreus relies on a new versatile peroxidase (VP)-based delignification strategy to remove enzymatic recalcitrance of corn stover efficiently, so that saccharification of corn stover was significantly enhanced to 349.1 mg/g biomass (yield of glucose) and 91.5% (hydrolysis yield of cellulose) at 28 days, as high as levels reached by thermochemical treatment. Analysis of the lignin structure using pyrolysis–gas chromatography–mass spectrometry (Py–GC/MS) showed that the total abundance of lignin-derived compounds decreased by 54.0% and revealed a notable demethylation during lignin degradation by P. vitreus. Monomeric and dimeric lignin model compounds were used to confirm the ligninolytic capabilities of extracellular ligninases secreted by P. vitreus. The laccase (Lac) from P. vitreus could not oxidize nonphenolic lignin compounds and polymerized β-O-4 and 5-5′ dimers to precipitate which had a negative effect on the enzymatic hydrolysis of corn stover in vitro. However, the VP from P. vitreus could oxidize both phenolic and nonphenolic lignin model compounds as well as break the β-O-4 and 5-5′ dimers into monomeric compounds, which were measured by high-performance liquid chromatography–electrospray ionization–mass spectrometry (LC–ESI–MS). Moreover, we showed that addition of purified VP in vitro improved the enzymatic hydrolysis of corn stover by 14.1%. Conclusions From the highly efficient system of enzymatic recalcitrance removal by new white-rot fungus, we identified a new delignification strategy based on VP which could oxidize both phenolic and nonphenolic lignin units and break different linkages in lignin. In addition, this is the first evidence that VP could break 5-5′ linkage efficiently in vitro. Moreover, VP improved the enzymatic hydrolysis of corn stover in vitro. The remarkable lignin-degradative potential makes VP attractive for biotechnological applications.
topic Physisporinus vitreus
Enzymatic recalcitrance removal
Versatile peroxidase
Corn stover
Biofuel
Lignin
url http://link.springer.com/article/10.1186/s13068-017-0906-x
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