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research article

A unified stoichiometric model for oxidative and oxidoreductive growth of yeasts

Auberson, Lillian C. M.
•
Von Stockar, U.  
1992
Biotechnology and Bioengineering

Yeasts degrade glucose through different metabolic pathways, where the choice of the pathway is dependent on the nature of the limitation in the various substrates. When oxygen is limiting in addn. to glucose, yeasts often grow according to a mixt. of oxidative and reductive metab. Oxygen may be limiting either by supply or by inherent biol. restrictions such as the respiratory bottleneck in Saccharomyces cerevisiae or by both. A unified model incorporating both supply and biol. limitations is proposed for the quant. prediction of growth rates, consumption and prodn. rates, as well as key metabolite concns. during mixed oxidoreductive metab. occurring as a result of such oxygen limitations. This simple unstructured model can be applied to different yeast strains while at the same time requiring a min. no. of measured parameters. Estimators are utilized in order to predict the presence of supply-side or biol. limitations. The values of these estimators also characterize the relative importance of oxidative to total metab. Results from the aerobic and oxygen-limited chemostat cultures were used to corroborate the model predictions. During these expts., the heat released by the yeast cultures was also monitored online. The model correctly predicted the over-all stoichiometry, steady-state concns., and rates including heat dissipation rates measured in the various situations of oxygen limitations. Direct continuous measurements such as heat can be used in conjunction with the unified model for online process control. [on SciFinder (R)]

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Type
research article
DOI
10.1002/bit.260401014
Web of Science ID

WOS:A1992JX83600013

Author(s)
Auberson, Lillian C. M.
•
Von Stockar, U.  
Date Issued

1992

Published in
Biotechnology and Bioengineering
Volume

40

Issue

10

Start page

1243

End page

55

Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LGCB  
Available on Infoscience
February 27, 2006
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/225965
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