MET2 affects production of hydrogen sulfide during wine fermentation

被引:0
作者
Chien Huang
Miguel Roncoroni
Richard C. Gardner
机构
[1] University of Auckland,Wine Science Group, School of Biological Sciences
来源
Applied Microbiology and Biotechnology | 2014年 / 98卷
关键词
Wine yeast; Hydrogen sulfide; Wine aroma; Quantitative trait loci;
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学科分类号
摘要
The production of hydrogen sulfide (H2S) during yeast fermentation contributes negatively to wine aroma. We have mapped naturally occurring mutations in commercial wine strains that affect production of H2S. A dominant R310G mutant allele of MET2, which encodes homoserine O-acetyltransferase, is present in several wine yeast strains as well as in the main lab strain S288c. Reciprocal hemizygosity and allele swap experiments demonstrated that the MET2R310G allele confers reduced H2S production. Mutations were also identified in genes encoding the two subunits of sulfite reductase, MET5 and MET10, which were associated with reduced H2S production. The most severe of these, an allele of MET10, showed five additional phenotypes: reduced growth rate on sulfate, elevated secretion of sulfite, and reduced production in wine of three volatile sulfur compounds: methionol, carbon disulfide and methylthioacetate. Alleles of MET5 and MET10, but not MET2, affected H2S production measured by colour assays on BiGGY indicator agar, but MET2 effects were seen when bismuth was added to agar plates made with Sauvignon blanc grape juice. Collectively, the data are consistent with the hypothesis that H2S production during wine fermentation results predominantly from enzyme activity in the sulfur assimilation pathway. Lower H2S production results from mutations that reduce the activity of sulfite reductase, the enzyme that produces H2S, or that increase the activity of l-homoserine-O-acetyltransferase, which produces substrate for the next step in the sulfur assimilation pathway.
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页码:7125 / 7135
页数:10
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共 121 条
  • [11] Damert WC(2010)Inactivation of FEMS Yeast Res 10 72-82
  • [12] Cordente AG(1995) in brewer’s yeast specifically increases SO Appl Environ Microbiol 61 461-467
  • [13] Heinrich A(2013) formation during beer production Biochem Pharmacol 85 689-703
  • [14] Pretorius IS(2009)Yeast genes involved in sulfur and nitrogen metabolism affect the production of volatile thiols from Sauvignon Blanc musts FEMS Yeast Res 9 713-722
  • [15] Swiegers JH(2012)Optimized fermentation of grape juice by laboratory strains of G3 2 753-760
  • [16] Deed N(2010)Regulation of hydrogen sulfide liberation in wine-producing Am J Enol Vitic 61 365-371
  • [17] Vuuren HJ(2008) strains by assimilable nitrogen Appl Environ Microbiol 74 1418-1427
  • [18] Gardner R(2010)Biology and therapeutic potential of hydrogen sulfide and hydrogen sulfide-releasing chimeras Appl Environ Microbiol 76 7699-7707
  • [19] Forlani N(2006)Dissecting the pleiotropic consequences of a quantitative trait nucleotide FEMS Yeast Res 6 268-279
  • [20] Martegani E(2005)A noncomplementation screen for quantitative trait alleles in Biochemistry 44 15768-15773