Rational engineering of xylanase hyper-producing system in Trichoderma reesei for efficient biomass degradation

Abstract Background Filamentous fungus Trichoderma reesei has been widely used as a workhorse for cellulase and xylanase productions. Xylanase has been reported as the crucial accessory enzyme in the degradation of lignocellulose for higher accessibility of cellulase. In addition, the efficient hydr...

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Main Authors: Su Yan, Yan Xu, Xiao-Wei Yu
Format: Article
Language:English
Published: BMC 2021-04-01
Series:Biotechnology for Biofuels
Subjects:
Online Access:https://doi.org/10.1186/s13068-021-01943-9
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spelling doaj-34960a2688d04be4adba73f0321134012021-04-11T11:41:36ZengBMCBiotechnology for Biofuels1754-68342021-04-0114111710.1186/s13068-021-01943-9Rational engineering of xylanase hyper-producing system in Trichoderma reesei for efficient biomass degradationSu Yan0Yan Xu1Xiao-Wei Yu2Key Laboratory of Industrial Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan UniversityKey Laboratory of Industrial Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan UniversityKey Laboratory of Industrial Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan UniversityAbstract Background Filamentous fungus Trichoderma reesei has been widely used as a workhorse for cellulase and xylanase productions. Xylanase has been reported as the crucial accessory enzyme in the degradation of lignocellulose for higher accessibility of cellulase. In addition, the efficient hydrolysis of xylan needs the co-work of multiple xylanolytic enzymes, which rise an increasing demand for the high yield of xylanase for efficient biomass degradation. Results In this study, a xylanase hyper-producing system in T. reesei was established by tailoring two transcription factors, XYR1 and ACE1, and homologous overexpression of the major endo-xylanase XYNII. The expressed xylanase cocktail contained 5256 U/mL xylanase activity and 9.25 U/mL β-xylosidase (pNPXase) activity. Meanwhile, the transcription level of the xylanolytic genes in the strain with XYR1 overexpressed was upregulated, which was well correlated with the amount of XYR1-binding sites. In addition, the higher expression of associated xylanolytic enzymes would result in more efficient xylan hydrolysis. Besides, 2310–3085 U/mL of xylanase activities were achieved using soluble carbon source, which was more efficient and economical than the traditional strategy of xylan induction. Unexpectedly, deletion of ace1 in C30OExyr1 did not give any improvement, which might be the result of the disturbed function of the complex formed between ACE1 and XYR1. The enzymatic hydrolysis of alkali pretreated corn stover using the crude xylanase cocktails as accessory enzymes resulted in a 36.64% increase in saccharification efficiency with the ratio of xylanase activity vs FPase activity at 500, compared to that using cellulase alone. Conclusions An efficient and economical xylanase hyper-producing platform was developed in T. reesei RUT-C30. The novel platform with outstanding ability for crude xylanase cocktail production would greatly fit in biomass degradation and give a new perspective of further engineering in T. reesei for industrial purposes.https://doi.org/10.1186/s13068-021-01943-9ACE1LignocelluloseTrichoderma reeseiXylanaseXylanolytic enzymesXYNII
collection DOAJ
language English
format Article
sources DOAJ
author Su Yan
Yan Xu
Xiao-Wei Yu
spellingShingle Su Yan
Yan Xu
Xiao-Wei Yu
Rational engineering of xylanase hyper-producing system in Trichoderma reesei for efficient biomass degradation
Biotechnology for Biofuels
ACE1
Lignocellulose
Trichoderma reesei
Xylanase
Xylanolytic enzymes
XYNII
author_facet Su Yan
Yan Xu
Xiao-Wei Yu
author_sort Su Yan
title Rational engineering of xylanase hyper-producing system in Trichoderma reesei for efficient biomass degradation
title_short Rational engineering of xylanase hyper-producing system in Trichoderma reesei for efficient biomass degradation
title_full Rational engineering of xylanase hyper-producing system in Trichoderma reesei for efficient biomass degradation
title_fullStr Rational engineering of xylanase hyper-producing system in Trichoderma reesei for efficient biomass degradation
title_full_unstemmed Rational engineering of xylanase hyper-producing system in Trichoderma reesei for efficient biomass degradation
title_sort rational engineering of xylanase hyper-producing system in trichoderma reesei for efficient biomass degradation
publisher BMC
series Biotechnology for Biofuels
issn 1754-6834
publishDate 2021-04-01
description Abstract Background Filamentous fungus Trichoderma reesei has been widely used as a workhorse for cellulase and xylanase productions. Xylanase has been reported as the crucial accessory enzyme in the degradation of lignocellulose for higher accessibility of cellulase. In addition, the efficient hydrolysis of xylan needs the co-work of multiple xylanolytic enzymes, which rise an increasing demand for the high yield of xylanase for efficient biomass degradation. Results In this study, a xylanase hyper-producing system in T. reesei was established by tailoring two transcription factors, XYR1 and ACE1, and homologous overexpression of the major endo-xylanase XYNII. The expressed xylanase cocktail contained 5256 U/mL xylanase activity and 9.25 U/mL β-xylosidase (pNPXase) activity. Meanwhile, the transcription level of the xylanolytic genes in the strain with XYR1 overexpressed was upregulated, which was well correlated with the amount of XYR1-binding sites. In addition, the higher expression of associated xylanolytic enzymes would result in more efficient xylan hydrolysis. Besides, 2310–3085 U/mL of xylanase activities were achieved using soluble carbon source, which was more efficient and economical than the traditional strategy of xylan induction. Unexpectedly, deletion of ace1 in C30OExyr1 did not give any improvement, which might be the result of the disturbed function of the complex formed between ACE1 and XYR1. The enzymatic hydrolysis of alkali pretreated corn stover using the crude xylanase cocktails as accessory enzymes resulted in a 36.64% increase in saccharification efficiency with the ratio of xylanase activity vs FPase activity at 500, compared to that using cellulase alone. Conclusions An efficient and economical xylanase hyper-producing platform was developed in T. reesei RUT-C30. The novel platform with outstanding ability for crude xylanase cocktail production would greatly fit in biomass degradation and give a new perspective of further engineering in T. reesei for industrial purposes.
topic ACE1
Lignocellulose
Trichoderma reesei
Xylanase
Xylanolytic enzymes
XYNII
url https://doi.org/10.1186/s13068-021-01943-9
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