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Identification of Strains in Stored Honey and Their Stress Tolerance

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Specialty Biotechnology
Date 2018 Sep 29
PMID 30263457
Citations 6
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Abstract

To screen yeast with high sugar tolerance and evaluate their stress tolerance, six yeast strains were selected from 17 stored honey samples. The species were identified through 26S rRNA sequencing. Their stress tolerance was determined via the Durham fermentation method and ethanol production ability was determined via flask fermentation. The results demonstrated that all the six strains were . Their sugar, ethanol, and acid tolerance ranges were 500-700 g/L, 10-12% (v/v), and pH 2.5-4.5, respectively. The SO tolerance was 250 mg/L. Among the six strains, 6-7431 had the best stress tolerance with sugar tolerance of 700 g/L, ethanol tolerance of 12% (v/v), and acid tolerance of pH 2.5. Furthermore, the strain of 6-7431 had the highest percentage of ethanol production at the same initial sugar content as the other strains. Therefore, the selected six yeast strains would be promising fermentation yeasts for wine-making, ethanol production, or other fermentation purposes.

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References
1.
Meijnen J, Randazzo P, Foulquie-Moreno M, van den Brink J, Vandecruys P, Stojiljkovic M . Polygenic analysis and targeted improvement of the complex trait of high acetic acid tolerance in the yeast Saccharomyces cerevisiae. Biotechnol Biofuels. 2016; 9:5. PMC: 4702306. DOI: 10.1186/s13068-015-0421-x. View

2.
Kurtzman C, Robnett C . Identification and phylogeny of ascomycetous yeasts from analysis of nuclear large subunit (26S) ribosomal DNA partial sequences. Antonie Van Leeuwenhoek. 1998; 73(4):331-71. DOI: 10.1023/a:1001761008817. View

3.
Santos J, Sousa M, Cardoso H, Inacio J, Silva S, Spencer-Martins I . Ethanol tolerance of sugar transport, and the rectification of stuck wine fermentations. Microbiology (Reading). 2008; 154(Pt 2):422-430. DOI: 10.1099/mic.0.2007/011445-0. View

4.
Lam F, Ghaderi A, Fink G, Stephanopoulos G . Biofuels. Engineering alcohol tolerance in yeast. Science. 2014; 346(6205):71-5. PMC: 4401034. DOI: 10.1126/science.1257859. View

5.
de Nadal E, Ammerer G, Posas F . Controlling gene expression in response to stress. Nat Rev Genet. 2011; 12(12):833-45. DOI: 10.1038/nrg3055. View