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New Protocol Based on UHPLC-MS/MS for Quantitation of Metabolites in Xylose-Fermenting Yeasts
Authors:Christiane Gonçalves Campos  Henrique César Teixeira Veras  José Antônio de Aquino Ribeiro  Patrícia Pinto Kalil Gonçalves Costa  Katiúscia Pereira Araújo  Clenilson Martins Rodrigues  João Ricardo Moreira de Almeida  Patrícia Verardi Abdelnur
Institution:1.Brazilian Agricultural Research Corporation, Embrapa Agroenergy,Brasília,Brazil;2.Chemistry Institute,Federal University of Goiás,Goiania,Brazil;3.Postgraduate Program in Molecular Biology, Department of Cellular Biology,University of Brasília,Brasília,Brazil;4.Postgraduate Program in Chemical and Biological Technologies, Institute of Chemistry,University of Brasília,Brasília,Brazil
Abstract:Xylose fermentation is a bottleneck in second-generation ethanol production. As such, a comprehensive understanding of xylose metabolism in naturally xylose-fermenting yeasts is essential for prospection and construction of recombinant yeast strains. The objective of the current study was to establish a reliable metabolomics protocol for quantification of key metabolites of xylose catabolism pathways in yeast, and to apply this protocol to Spathaspora arborariae. Ultra-high performance liquid chromatography coupled to tandem mass spectrometry (UHPLC-MS/MS) was used to quantify metabolites, and afterwards, sample preparation was optimized to examine yeast intracellular metabolites. S. arborariae was cultivated using xylose as a carbon source under aerobic and oxygen-limited conditions. Ion pair chromatography (IPC) and hydrophilic interaction liquid chromatography-tandem mass spectrometry (HILIC-MS/MS) were shown to efficiently quantify 14 and 5 metabolites, respectively, in a more rapid chromatographic protocol than previously described. Thirteen and eleven metabolites were quantified in S. arborariae under aerobic and oxygen-limited conditions, respectively. This targeted metabolomics protocol is shown here to quantify a total of 19 metabolites, including sugars, phosphates, coenzymes, monosaccharides, and alcohols, from xylose catabolism pathways (glycolysis, pentose phosphate pathway, and tricarboxylic acid cycle) in yeast. Furthermore, to our knowledge, this is the first time that intracellular metabolites have been quantified in S. arborariae after xylose consumption. The results indicated that fine control of oxygen levels during fermentation is necessary to optimize ethanol production by S. arborariae. The protocol presented here may be applied to other yeast species and could support yeast genetic engineering to improve second generation ethanol production.
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