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Kües, Ursula
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Preferred name
Kües, Ursula
Official Name
Kües, Ursula
Alternative Name
Kües, U.
Kues, U.
Kues, Ursula
Kuees, U.
Kuees, Ursula
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ORCID
Scopus Author ID
56247644100
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2022Journal Article Research Paper [["dc.bibliographiccitation.firstpage","e0176021"],["dc.bibliographiccitation.issue","1"],["dc.bibliographiccitation.journal","Applied and Environmental Microbiology"],["dc.bibliographiccitation.volume","88"],["dc.contributor.author","Liu, Juanjuan"],["dc.contributor.author","Peng, Can"],["dc.contributor.author","Han, Qiqi"],["dc.contributor.author","Wang, Mengyao"],["dc.contributor.author","Zhou, Gang"],["dc.contributor.author","Ye, Bin"],["dc.contributor.author","Xiao, Yazhong"],["dc.contributor.author","Fang, Zemin"],["dc.contributor.author","Kües, Ursula"],["dc.date.accessioned","2021-12-01T09:23:11Z"],["dc.date.available","2021-12-01T09:23:11Z"],["dc.date.issued","2022"],["dc.description.abstract","Frequently, laccases are triggered during fungal cocultivation for overexpression. The function of these activated laccases during coculture has not been clarified. Previously, we reported that Gongronella sp. w5 (w5) (Mucoromycota, Mucoromycetes) specifically triggered the laccase Lcc9 overexpression in Coprinopsis cinerea (Basidiomycota, Agaricomycetes). To systematically analyze the function of the overexpressed laccase during fungal interaction, C. cinerea mycelia before and after the initial Lcc9 overexpression were chosen for transcriptome analysis. Results showed that accompanied by specific utilization of fructose as carbohydrate substrate, oxidative stress derived from antagonistic compounds secreted by w5 appears to be a signal critical for laccase production in C. cinerea . Reactive oxygen species (ROS) decrease in the C. cinerea wild-type strain followed the increase in laccase production and then, lcc9 transcription and laccase activity stopped. By comparison, increased H 2 O 2 content and mycelial ROS levels were observed during the entire cocultivation in lcc9 silenced C. cinerea strains. Moreover, lcc9 silencing slowed down the C. cinerea mycelial growth, affected hyphal morphology, and decreased the asexual sporulation in coculture. Our results showed that intracellular ROS acted as signal molecules to stimulate defense responses by C. cinerea with the expression of oxidative stress response regulator Skn7 and various detoxification proteins. Lcc9 takes part as a defense strategy to eliminate oxidative stress during the interspecific interaction with w5. Importance: The overproduction of laccase during interspecific fungal interactions is notoriously known. However, the exact role of the up-regulated laccases remains underexplored. Based on comparative transcriptomic analysis of C. cinerea and gene silencing of laccase Lcc9, here we show that oxidative stress derived from antagonistic compounds secreted by Gongronella sp. w5 was a signal critical for laccase Lcc9 production in Coprinopsis cinerea . Intracellular ROS acted as signal molecules to stimulate defense responses by C. cinerea with the expression of oxidative stress response regulator Skn7 and various detoxification proteins. Ultimately, Lcc9 takes part as a defense strategy to eliminate oxidative stress and help cell growth and development during the interspecific interaction with Gongronella sp. w5. These findings deepened our understanding of fungal interactions in their natural population and communities."],["dc.description.abstract","Frequently, laccases are triggered during fungal cocultivation for overexpression. The function of these activated laccases during coculture has not been clarified. Previously, we reported that Gongronella sp. w5 (w5) (Mucoromycota, Mucoromycetes) specifically triggered the laccase Lcc9 overexpression in Coprinopsis cinerea (Basidiomycota, Agaricomycetes). To systematically analyze the function of the overexpressed laccase during fungal interaction, C. cinerea mycelia before and after the initial Lcc9 overexpression were chosen for transcriptome analysis. Results showed that accompanied by specific utilization of fructose as carbohydrate substrate, oxidative stress derived from antagonistic compounds secreted by w5 appears to be a signal critical for laccase production in C. cinerea . Reactive oxygen species (ROS) decrease in the C. cinerea wild-type strain followed the increase in laccase production and then, lcc9 transcription and laccase activity stopped. By comparison, increased H 2 O 2 content and mycelial ROS levels were observed during the entire cocultivation in lcc9 silenced C. cinerea strains. Moreover, lcc9 silencing slowed down the C. cinerea mycelial growth, affected hyphal morphology, and decreased the asexual sporulation in coculture. Our results showed that intracellular ROS acted as signal molecules to stimulate defense responses by C. cinerea with the expression of oxidative stress response regulator Skn7 and various detoxification proteins. Lcc9 takes part as a defense strategy to eliminate oxidative stress during the interspecific interaction with w5. Importance: The overproduction of laccase during interspecific fungal interactions is notoriously known. However, the exact role of the up-regulated laccases remains underexplored. Based on comparative transcriptomic analysis of C. cinerea and gene silencing of laccase Lcc9, here we show that oxidative stress derived from antagonistic compounds secreted by Gongronella sp. w5 was a signal critical for laccase Lcc9 production in Coprinopsis cinerea . Intracellular ROS acted as signal molecules to stimulate defense responses by C. cinerea with the expression of oxidative stress response regulator Skn7 and various detoxification proteins. Ultimately, Lcc9 takes part as a defense strategy to eliminate oxidative stress and help cell growth and development during the interspecific interaction with Gongronella sp. w5. These findings deepened our understanding of fungal interactions in their natural population and communities."],["dc.identifier.doi","10.1128/AEM.01760-21"],["dc.identifier.pmid","34669425"],["dc.identifier.uri","https://resolver.sub.uni-goettingen.de/purl?gro-2/94582"],["dc.identifier.url","https://publications.goettingen-research-online.de/handle/2/94582"],["dc.language.iso","en"],["dc.notes.intern","DOI-Import GROB-478"],["dc.relation.eissn","1098-5336"],["dc.relation.issn","0099-2240"],["dc.relation.issn","1098-5336"],["dc.relation.orgunit","Abteilung Molekulare Holzbiotechnologie und technische Mykologie"],["dc.title","Coprinopsis cinerea uses laccase Lcc9 as a defense strategy to eliminate oxidative stress during fungal-fungal interactions"],["dc.type","journal_article"],["dc.type.internalPublication","yes"],["dc.type.subtype","original_ja"],["dspace.entity.type","Publication"]]Details DOI PMID PMC2018Journal Article [["dc.bibliographiccitation.firstpage","411"],["dc.bibliographiccitation.issue","1"],["dc.bibliographiccitation.journal","Applied Microbiology and Biotechnology"],["dc.bibliographiccitation.lastpage","425"],["dc.bibliographiccitation.volume","103"],["dc.contributor.author","Hu, Jun"],["dc.contributor.author","Zhang, Yinliang"],["dc.contributor.author","Xu, Yong"],["dc.contributor.author","Sun, Qiuying"],["dc.contributor.author","Liu, Juanjuan"],["dc.contributor.author","Fang, Wei"],["dc.contributor.author","Xiao, Yazhong"],["dc.contributor.author","Kües, Ursula"],["dc.contributor.author","Fang, Zemin"],["dc.date.accessioned","2020-12-10T14:09:58Z"],["dc.date.available","2020-12-10T14:09:58Z"],["dc.date.issued","2018"],["dc.identifier.doi","10.1007/s00253-018-9469-4"],["dc.identifier.eissn","1432-0614"],["dc.identifier.issn","0175-7598"],["dc.identifier.uri","https://resolver.sub.uni-goettingen.de/purl?gro-2/70623"],["dc.language.iso","en"],["dc.notes.intern","DOI Import GROB-354"],["dc.title","Gongronella sp. w5 elevates Coprinopsis cinerea laccase production by carbon source syntrophism and secondary metabolite induction"],["dc.type","journal_article"],["dc.type.internalPublication","yes"],["dspace.entity.type","Publication"]]Details DOI