Parallel proteomic and phosphoproteomic analyses reveal cellobiose‐dependent regulation of lignocellulase secretion in the filamentous fungus Neurospora crassa

Abstract High cost of lignocellulases restricts the commercialization of biofuel and bio‐product production from lignocellulosic biomass. Constitutively expressed lignocellulases are considered to degrade cellulose to release small amount of soluble cellodextrins such as cellobiose for further large...

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Main Authors: Bentao Xiong, Linfang Wei, Yifan Wang, Jinyu Li, Xin Liu, Yunheng Zhou, Panpan Du, Hao Fang, Johannes Liesche, Yahong Wei, Jisheng Li, Shaolin Chen
Format: Article
Language:English
Published: Wiley 2021-09-01
Series:GCB Bioenergy
Subjects:
Online Access:https://doi.org/10.1111/gcbb.12862
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spelling doaj-23eff93b6f004e4fa8f034a0c4f8ae862021-08-12T09:01:17ZengWileyGCB Bioenergy1757-16931757-17072021-09-011391372138710.1111/gcbb.12862Parallel proteomic and phosphoproteomic analyses reveal cellobiose‐dependent regulation of lignocellulase secretion in the filamentous fungus Neurospora crassaBentao Xiong0Linfang Wei1Yifan Wang2Jinyu Li3Xin Liu4Yunheng Zhou5Panpan Du6Hao Fang7Johannes Liesche8Yahong Wei9Jisheng Li10Shaolin Chen11Biomass Energy Center for Arid and Semi‐Arid Lands Northwest A&F University Yangling Shaanxi ChinaBiomass Energy Center for Arid and Semi‐Arid Lands Northwest A&F University Yangling Shaanxi ChinaBiomass Energy Center for Arid and Semi‐Arid Lands Northwest A&F University Yangling Shaanxi ChinaBiomass Energy Center for Arid and Semi‐Arid Lands Northwest A&F University Yangling Shaanxi ChinaBiomass Energy Center for Arid and Semi‐Arid Lands Northwest A&F University Yangling Shaanxi ChinaBiomass Energy Center for Arid and Semi‐Arid Lands Northwest A&F University Yangling Shaanxi ChinaBiomass Energy Center for Arid and Semi‐Arid Lands Northwest A&F University Yangling Shaanxi ChinaBiomass Energy Center for Arid and Semi‐Arid Lands Northwest A&F University Yangling Shaanxi ChinaBiomass Energy Center for Arid and Semi‐Arid Lands Northwest A&F University Yangling Shaanxi ChinaBiomass Energy Center for Arid and Semi‐Arid Lands Northwest A&F University Yangling Shaanxi ChinaBiomass Energy Center for Arid and Semi‐Arid Lands Northwest A&F University Yangling Shaanxi ChinaBiomass Energy Center for Arid and Semi‐Arid Lands Northwest A&F University Yangling Shaanxi ChinaAbstract High cost of lignocellulases restricts the commercialization of biofuel and bio‐product production from lignocellulosic biomass. Constitutively expressed lignocellulases are considered to degrade cellulose to release small amount of soluble cellodextrins such as cellobiose for further large‐scale production of lignocellulases; however, the underlying mechanism remains to be elucidated. Here, a triple β‐glucosidase mutant of the model fungus Neurospora crassa, which prevents rapid turnover of cellobiose and thus allows the disaccharide to induce lignocellulases, was applied to perform parallel analyses of proteome and phosphoproteome changes in response to cellobiose and Avicel cellulose. The results revealed shared proteome and phosphoproteome responses to cellobiose and Avicel, corroborating the idea that cellobiose mediates the regulation of lignocellulase expression and secretion. The results further suggest that this regulation is achieved at multiple levels, including epigenetic, transcription, post‐transcription, translation, and post‐translation. Proteome profiling revealed that the proteins upregulated by cellobiose and Avicel were over‐represented in cellulose degradation and degradation product transport pathways. Phosphoproteome profiling revealed that the proteins differentially phosphorylated by cellobiose and Avicel were over‐represented by the pathways such as transcriptional control, protein processing and export, cell wall biogenesis, and cellular signaling. Deletion mutation analysis further suggests that the ER chaperon protein Hsp70‐6, the translocation complex subunit Sec66/Sec71, and the signal peptidase subunit Spc2 are involved in lignocellulase secretion, particularly translocation across the endoplasmic reticulum. Altogether, the results offer a new insight into how cellobiose mediates the regulation of lignocellulase expression and secretion, providing a potential strategy for the strain engineering to improve lignocellulase production.https://doi.org/10.1111/gcbb.12862cellobiosecellulosefilamentous fungilignocellulaseNeurospora crassaphosphoproteomics
collection DOAJ
language English
format Article
sources DOAJ
author Bentao Xiong
Linfang Wei
Yifan Wang
Jinyu Li
Xin Liu
Yunheng Zhou
Panpan Du
Hao Fang
Johannes Liesche
Yahong Wei
Jisheng Li
Shaolin Chen
spellingShingle Bentao Xiong
Linfang Wei
Yifan Wang
Jinyu Li
Xin Liu
Yunheng Zhou
Panpan Du
Hao Fang
Johannes Liesche
Yahong Wei
Jisheng Li
Shaolin Chen
Parallel proteomic and phosphoproteomic analyses reveal cellobiose‐dependent regulation of lignocellulase secretion in the filamentous fungus Neurospora crassa
GCB Bioenergy
cellobiose
cellulose
filamentous fungi
lignocellulase
Neurospora crassa
phosphoproteomics
author_facet Bentao Xiong
Linfang Wei
Yifan Wang
Jinyu Li
Xin Liu
Yunheng Zhou
Panpan Du
Hao Fang
Johannes Liesche
Yahong Wei
Jisheng Li
Shaolin Chen
author_sort Bentao Xiong
title Parallel proteomic and phosphoproteomic analyses reveal cellobiose‐dependent regulation of lignocellulase secretion in the filamentous fungus Neurospora crassa
title_short Parallel proteomic and phosphoproteomic analyses reveal cellobiose‐dependent regulation of lignocellulase secretion in the filamentous fungus Neurospora crassa
title_full Parallel proteomic and phosphoproteomic analyses reveal cellobiose‐dependent regulation of lignocellulase secretion in the filamentous fungus Neurospora crassa
title_fullStr Parallel proteomic and phosphoproteomic analyses reveal cellobiose‐dependent regulation of lignocellulase secretion in the filamentous fungus Neurospora crassa
title_full_unstemmed Parallel proteomic and phosphoproteomic analyses reveal cellobiose‐dependent regulation of lignocellulase secretion in the filamentous fungus Neurospora crassa
title_sort parallel proteomic and phosphoproteomic analyses reveal cellobiose‐dependent regulation of lignocellulase secretion in the filamentous fungus neurospora crassa
publisher Wiley
series GCB Bioenergy
issn 1757-1693
1757-1707
publishDate 2021-09-01
description Abstract High cost of lignocellulases restricts the commercialization of biofuel and bio‐product production from lignocellulosic biomass. Constitutively expressed lignocellulases are considered to degrade cellulose to release small amount of soluble cellodextrins such as cellobiose for further large‐scale production of lignocellulases; however, the underlying mechanism remains to be elucidated. Here, a triple β‐glucosidase mutant of the model fungus Neurospora crassa, which prevents rapid turnover of cellobiose and thus allows the disaccharide to induce lignocellulases, was applied to perform parallel analyses of proteome and phosphoproteome changes in response to cellobiose and Avicel cellulose. The results revealed shared proteome and phosphoproteome responses to cellobiose and Avicel, corroborating the idea that cellobiose mediates the regulation of lignocellulase expression and secretion. The results further suggest that this regulation is achieved at multiple levels, including epigenetic, transcription, post‐transcription, translation, and post‐translation. Proteome profiling revealed that the proteins upregulated by cellobiose and Avicel were over‐represented in cellulose degradation and degradation product transport pathways. Phosphoproteome profiling revealed that the proteins differentially phosphorylated by cellobiose and Avicel were over‐represented by the pathways such as transcriptional control, protein processing and export, cell wall biogenesis, and cellular signaling. Deletion mutation analysis further suggests that the ER chaperon protein Hsp70‐6, the translocation complex subunit Sec66/Sec71, and the signal peptidase subunit Spc2 are involved in lignocellulase secretion, particularly translocation across the endoplasmic reticulum. Altogether, the results offer a new insight into how cellobiose mediates the regulation of lignocellulase expression and secretion, providing a potential strategy for the strain engineering to improve lignocellulase production.
topic cellobiose
cellulose
filamentous fungi
lignocellulase
Neurospora crassa
phosphoproteomics
url https://doi.org/10.1111/gcbb.12862
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