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A targeted metabolomics method for extra- and intracellular metabolite quantification covering the complete monolignol and lignan synthesis pathway

Microbial synthesis of monolignols and lignans from simple substrates is a promising alternative to plant extraction. Bottlenecks and byproduct formation during heterologous production require targeted metabolomics tools for pathway optimization. In contrast to available fractional methods, we estab...

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Autores principales: Steinmann, Andrea, Schullehner, Katrin, Kohl, Anna, Dickmeis, Christina, Finger, Maurice, Hubmann, Georg, Jach, Guido, Commandeur, Ulrich, Girhard, Marco, Urlacher, Vlada B., Lütz, Stephan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9474286/
https://www.ncbi.nlm.nih.gov/pubmed/36119807
http://dx.doi.org/10.1016/j.mec.2022.e00205
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author Steinmann, Andrea
Schullehner, Katrin
Kohl, Anna
Dickmeis, Christina
Finger, Maurice
Hubmann, Georg
Jach, Guido
Commandeur, Ulrich
Girhard, Marco
Urlacher, Vlada B.
Lütz, Stephan
author_facet Steinmann, Andrea
Schullehner, Katrin
Kohl, Anna
Dickmeis, Christina
Finger, Maurice
Hubmann, Georg
Jach, Guido
Commandeur, Ulrich
Girhard, Marco
Urlacher, Vlada B.
Lütz, Stephan
author_sort Steinmann, Andrea
collection PubMed
description Microbial synthesis of monolignols and lignans from simple substrates is a promising alternative to plant extraction. Bottlenecks and byproduct formation during heterologous production require targeted metabolomics tools for pathway optimization. In contrast to available fractional methods, we established a comprehensive targeted metabolomics method. It enables the quantification of 17 extra- and intracellular metabolites of the monolignol and lignan pathway, ranging from amino acids to pluviatolide. Several cell disruption methods were compared. Hot water extraction was best suited regarding monolignol and lignan stability as well as extraction efficacy. The method was applied to compare enzymes for alleviating bottlenecks during heterologous monolignol and lignan production in E. coli. Variants of tyrosine ammonia-lyase had a considerable influence on titers of subsequent metabolites. The choice of multicopper oxidase greatly affected the accumulation of lignans. Metabolite titers were monitored during batch fermentation of either monolignol or lignan-producing recombinant E. coli strains, demonstrating the dynamic accumulation of metabolites. The new method enables efficient time-resolved targeted metabolomics of monolignol- and lignan-producing E. coli. It facilitates bottleneck identification and byproduct quantification, making it a valuable tool for further pathway engineering studies. This method will benefit the bioprocess development of biotransformation or fermentation approaches for microbial lignan production.
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spelling pubmed-94742862022-09-16 A targeted metabolomics method for extra- and intracellular metabolite quantification covering the complete monolignol and lignan synthesis pathway Steinmann, Andrea Schullehner, Katrin Kohl, Anna Dickmeis, Christina Finger, Maurice Hubmann, Georg Jach, Guido Commandeur, Ulrich Girhard, Marco Urlacher, Vlada B. Lütz, Stephan Metab Eng Commun Full Length Article Microbial synthesis of monolignols and lignans from simple substrates is a promising alternative to plant extraction. Bottlenecks and byproduct formation during heterologous production require targeted metabolomics tools for pathway optimization. In contrast to available fractional methods, we established a comprehensive targeted metabolomics method. It enables the quantification of 17 extra- and intracellular metabolites of the monolignol and lignan pathway, ranging from amino acids to pluviatolide. Several cell disruption methods were compared. Hot water extraction was best suited regarding monolignol and lignan stability as well as extraction efficacy. The method was applied to compare enzymes for alleviating bottlenecks during heterologous monolignol and lignan production in E. coli. Variants of tyrosine ammonia-lyase had a considerable influence on titers of subsequent metabolites. The choice of multicopper oxidase greatly affected the accumulation of lignans. Metabolite titers were monitored during batch fermentation of either monolignol or lignan-producing recombinant E. coli strains, demonstrating the dynamic accumulation of metabolites. The new method enables efficient time-resolved targeted metabolomics of monolignol- and lignan-producing E. coli. It facilitates bottleneck identification and byproduct quantification, making it a valuable tool for further pathway engineering studies. This method will benefit the bioprocess development of biotransformation or fermentation approaches for microbial lignan production. Elsevier 2022-08-31 /pmc/articles/PMC9474286/ /pubmed/36119807 http://dx.doi.org/10.1016/j.mec.2022.e00205 Text en © 2022 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Full Length Article
Steinmann, Andrea
Schullehner, Katrin
Kohl, Anna
Dickmeis, Christina
Finger, Maurice
Hubmann, Georg
Jach, Guido
Commandeur, Ulrich
Girhard, Marco
Urlacher, Vlada B.
Lütz, Stephan
A targeted metabolomics method for extra- and intracellular metabolite quantification covering the complete monolignol and lignan synthesis pathway
title A targeted metabolomics method for extra- and intracellular metabolite quantification covering the complete monolignol and lignan synthesis pathway
title_full A targeted metabolomics method for extra- and intracellular metabolite quantification covering the complete monolignol and lignan synthesis pathway
title_fullStr A targeted metabolomics method for extra- and intracellular metabolite quantification covering the complete monolignol and lignan synthesis pathway
title_full_unstemmed A targeted metabolomics method for extra- and intracellular metabolite quantification covering the complete monolignol and lignan synthesis pathway
title_short A targeted metabolomics method for extra- and intracellular metabolite quantification covering the complete monolignol and lignan synthesis pathway
title_sort targeted metabolomics method for extra- and intracellular metabolite quantification covering the complete monolignol and lignan synthesis pathway
topic Full Length Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9474286/
https://www.ncbi.nlm.nih.gov/pubmed/36119807
http://dx.doi.org/10.1016/j.mec.2022.e00205
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