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Next-Generation Sequencing Analysis of the Tineola bisselliella Larval Gut Transcriptome Reveals Candidate Enzymes for Keratin Digestion

The clothes moth Tineola bisselliella is one of a few insects that can digest keratin, leading to the destruction of clothing, textiles and artwork. The mechanism of keratin digestion is not yet fully understood, partly reflecting the lack of publicly available genomic and transcriptomic data. Here...

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Autores principales: Schwabe, Michael, Griep, Sven, Schmidtberg, Henrike, Plarre, Rudy, Goesmann, Alexander, Vilcinskas, Andreas, Vogel, Heiko, Brinkrolf, Karina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8394580/
https://www.ncbi.nlm.nih.gov/pubmed/34440287
http://dx.doi.org/10.3390/genes12081113
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author Schwabe, Michael
Griep, Sven
Schmidtberg, Henrike
Plarre, Rudy
Goesmann, Alexander
Vilcinskas, Andreas
Vogel, Heiko
Brinkrolf, Karina
author_facet Schwabe, Michael
Griep, Sven
Schmidtberg, Henrike
Plarre, Rudy
Goesmann, Alexander
Vilcinskas, Andreas
Vogel, Heiko
Brinkrolf, Karina
author_sort Schwabe, Michael
collection PubMed
description The clothes moth Tineola bisselliella is one of a few insects that can digest keratin, leading to the destruction of clothing, textiles and artwork. The mechanism of keratin digestion is not yet fully understood, partly reflecting the lack of publicly available genomic and transcriptomic data. Here we present a high-quality gut transcriptome of T. bisselliella generated from larvae reared on keratin-rich and keratin-free diets. The overall transcriptome consists of 428,221 contigs that were functionally annotated and screened for candidate enzymes involved in keratin utilization. As a mechanism for keratin digestion, we identified cysteine synthases, cystathionine β-synthases and cystathionine γ-lyases. These enzymes release hydrogen sulfite, which may reduce the disulfide bonds in keratin. The dataset also included 27 differentially expressed contigs with trypsin domains, among which 20 were associated with keratin feeding. Finally, we identified seven collagenases that were upregulated on the keratin-rich diet. In addition to this enzymatic repertoire potentially involved in breaking down keratin, our analysis of poly(A)-enriched and poly(A)-depleted transcripts suggested that T. bisselliella larvae possess an unstable intestinal microbiome that may nevertheless contribute to keratin digestion.
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spelling pubmed-83945802021-08-28 Next-Generation Sequencing Analysis of the Tineola bisselliella Larval Gut Transcriptome Reveals Candidate Enzymes for Keratin Digestion Schwabe, Michael Griep, Sven Schmidtberg, Henrike Plarre, Rudy Goesmann, Alexander Vilcinskas, Andreas Vogel, Heiko Brinkrolf, Karina Genes (Basel) Article The clothes moth Tineola bisselliella is one of a few insects that can digest keratin, leading to the destruction of clothing, textiles and artwork. The mechanism of keratin digestion is not yet fully understood, partly reflecting the lack of publicly available genomic and transcriptomic data. Here we present a high-quality gut transcriptome of T. bisselliella generated from larvae reared on keratin-rich and keratin-free diets. The overall transcriptome consists of 428,221 contigs that were functionally annotated and screened for candidate enzymes involved in keratin utilization. As a mechanism for keratin digestion, we identified cysteine synthases, cystathionine β-synthases and cystathionine γ-lyases. These enzymes release hydrogen sulfite, which may reduce the disulfide bonds in keratin. The dataset also included 27 differentially expressed contigs with trypsin domains, among which 20 were associated with keratin feeding. Finally, we identified seven collagenases that were upregulated on the keratin-rich diet. In addition to this enzymatic repertoire potentially involved in breaking down keratin, our analysis of poly(A)-enriched and poly(A)-depleted transcripts suggested that T. bisselliella larvae possess an unstable intestinal microbiome that may nevertheless contribute to keratin digestion. MDPI 2021-07-22 /pmc/articles/PMC8394580/ /pubmed/34440287 http://dx.doi.org/10.3390/genes12081113 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Schwabe, Michael
Griep, Sven
Schmidtberg, Henrike
Plarre, Rudy
Goesmann, Alexander
Vilcinskas, Andreas
Vogel, Heiko
Brinkrolf, Karina
Next-Generation Sequencing Analysis of the Tineola bisselliella Larval Gut Transcriptome Reveals Candidate Enzymes for Keratin Digestion
title Next-Generation Sequencing Analysis of the Tineola bisselliella Larval Gut Transcriptome Reveals Candidate Enzymes for Keratin Digestion
title_full Next-Generation Sequencing Analysis of the Tineola bisselliella Larval Gut Transcriptome Reveals Candidate Enzymes for Keratin Digestion
title_fullStr Next-Generation Sequencing Analysis of the Tineola bisselliella Larval Gut Transcriptome Reveals Candidate Enzymes for Keratin Digestion
title_full_unstemmed Next-Generation Sequencing Analysis of the Tineola bisselliella Larval Gut Transcriptome Reveals Candidate Enzymes for Keratin Digestion
title_short Next-Generation Sequencing Analysis of the Tineola bisselliella Larval Gut Transcriptome Reveals Candidate Enzymes for Keratin Digestion
title_sort next-generation sequencing analysis of the tineola bisselliella larval gut transcriptome reveals candidate enzymes for keratin digestion
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8394580/
https://www.ncbi.nlm.nih.gov/pubmed/34440287
http://dx.doi.org/10.3390/genes12081113
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