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An ion-pair free LC-MS/MS method for quantitative metabolite profiling of microbial bioproduction systems.
Takenaka, Musashi; Yoshida, Takanobu; Hori, Yoshimi; Bamba, Takahiro; Mochizuki, Masao; Vavricka, Christopher J; Hattori, Takanari; Hayakawa, Yoshihiro; Hasunuma, Tomohisa; Kondo, Akihiko.
Afiliação
  • Takenaka M; Graduate School of Science, Technology and Innovation, Kobe University, Japan.
  • Yoshida T; Graduate School of Science, Technology and Innovation, Kobe University, Japan.
  • Hori Y; Graduate School of Science, Technology and Innovation, Kobe University, Japan.
  • Bamba T; Graduate School of Science, Technology and Innovation, Kobe University, Japan.
  • Mochizuki M; Graduate School of Science, Technology and Innovation, Kobe University, Japan.
  • Vavricka CJ; Graduate School of Science, Technology and Innovation, Kobe University, Japan.
  • Hattori T; Shimadzu Corporation, Japan.
  • Hayakawa Y; Shimadzu Corporation, Japan.
  • Hasunuma T; Graduate School of Science, Technology and Innovation, Kobe University, Japan; Engineering Biology Research Center, Kobe University, Japan. Electronic address: hasunuma@port.kobe-u.ac.jp.
  • Kondo A; Graduate School of Science, Technology and Innovation, Kobe University, Japan; Engineering Biology Research Center, Kobe University, Japan.
Talanta ; 222: 121625, 2021 Jan 15.
Article em En | MEDLINE | ID: mdl-33167273
ABSTRACT
Data-driven engineering of microbes has been demonstrated for the sustainable production of high-performance chemicals. Metabolic profiling analysis is essential to increase the productivity of target compounds. However, improvement of comprehensive analysis methodologies is required for the high demands of metabolic engineering. Therefore, a liquid chromatography-tandem mass spectrometry (LC-MS/MS) based methodology was designed and applied to cover a wide target range with high precision. Ion-pair free separation of metabolites on a pentafluorophenyl propyl column enabled high-precision quantification of 113 metabolites. The method was further evaluated for high reproducibility and robustness. Target analytes consisted of primary metabolites and intermediate metabolites for microbial production of high-performance chemicals. 95 metabolites could be detected with high reproducibility of peak area (intraday data CV<15%), and 53 metabolites could be sensitively determined within a wide dynamic linear range (3-4 orders of magnitude). The developed system was further applied to the metabolomic analysis of various prokaryotic and eukaryotic microorganisms. Differences due to culture media and metabolic phenotypes could be observed when comparing the metabolomes of conventional and non-conventional yeast. Furthermore, almost all Kluyveromyces marxianus metabolites could be detected with moderate reproducibility (CV<40%, among independent extractions), where 41 metabolites were detected with very high reproducibility (CV<15%). In addition, the accuracy was validated via a spike-and-recovery test,and 78 metabolites were detected with analyte recovery in the 80-120% range. Together these results establish ion-pair free metabolic profiling as a comprehensive and precise tool for data-driven bioengineering applications.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Espectrometria de Massas em Tandem / Metabolômica Idioma: En Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Espectrometria de Massas em Tandem / Metabolômica Idioma: En Ano de publicação: 2021 Tipo de documento: Article