Impact of pitching rate on yeast fermentation performance and beer flavour

被引:0
作者
P. J. Verbelen
T. M. L. Dekoninck
S. M. G. Saerens
S. E. Van Mulders
J. M. Thevelein
F. R. Delvaux
机构
[1] Katholieke Universiteit Leuven,Centre for Malting and Brewing Science, Faculty of Bioscience Engineering
[2] Katholieke Universiteit Leuven,The Laboratory of Molecular Cell Biology, Department of Molecular Microbiology (VIB), Institute of Botany and Microbiology
来源
Applied Microbiology and Biotechnology | 2009年 / 82卷
关键词
Fermentation; Brewer’s yeast; Yeast metabolism; Yeast physiology; Stress response; Flavour;
D O I
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中图分类号
学科分类号
摘要
The volumetric productivity of the beer fermentation process can be increased by using a higher pitching rate (i.e. higher inoculum size). However, the impact of the pitching rate on crucial fermentation and beer quality parameters has never been assessed systematically. In this study, five pitching rates were applied to lab-scale fermentations to investigate its impact on the yeast physiology and beer quality. The fermentation rate increased significantly and the net yeast growth was lowered with increasing pitching rate, without affecting significantly the viability and the vitality of the yeast population. The build-up of unsaturated fatty acids in the initial phase of the fermentation was repressed when higher yeast concentrations were pitched. The expression levels of the genes HSP104 and HSP12 and the concentration of trehalose were higher with increased pitching rates, suggesting a moderate exposure to stress in case of higher cell concentrations. The influence of pitching rate on aroma compound production was rather limited, with the exception of total diacetyl levels, which strongly increased with the pitching rate. These results demonstrate that most aspects of the yeast physiology and flavour balance are not significantly or negatively affected when the pitching rate is changed. However, further research is needed to fully optimise the conditions for brewing beer with high cell density populations.
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页码:155 / 167
页数:12
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共 196 条
  • [1] Amorós M(2001)Hsf1p and Msn2/4p cooperate in the expression of Mol Microbiol 39 1523-1532
  • [2] Estruch F(1977) genes J Inst Brew 83 220-223
  • [3] Aries V(2002) and J Am Soc Brew Chem 60 101-106
  • [4] Kirsop BH(1999) in a gene- and stress type-dependent manner Mol Microbiol 33 274-283
  • [5] Boswell CD(2005)Sterol synthesis in relation to growth and fermentation by brewing inoculated at different concentrations Biotechnol Prog 21 653-663
  • [6] Nienow AW(2000)Studies on the effect of mechanical agitation on the performance of brewing fermentations: fermentation rate, yeast physiology, and development of flavor compounds J Appl Microbiol 88 746-755
  • [7] Hewitt CJ(2001)The heat shock response in yeast: differential regulations and contributions of the Msn2p/Msn4p and Hsf1p regulons Arch Microbiol 175 450-457
  • [8] Boy-Marcotte E(1984)Continuous beer fermentation using immobilized yeast cell bioreactor systems Appl Environ Microbiol 48 639-646
  • [9] Lagniel G(2006)The stress response is repressed during fermentation in brewery strains of yeast Genes Dev 20 1150-1161
  • [10] Perrot M(1998)Analysis of the stress resistance of commercial wine yeast strains Yeast 14 1471-1510