Physiological responses of Saccharomyces cerevisiae to industrially relevant conditions

Slow growth, low pH, and high CO2 levels

Journal Article (2019)
Author(s)

Xavier D.V. Hakkaart (TU Delft - BT/Industriele Microbiologie)

Y. Liu (TU Delft - OLD BT/Cell Systems Engineering)

Mandy Hulst (Student TU Delft)

Anissa El Masoudi (Student TU Delft)

Eveline Peuscher (Student TU Delft)

Jack T. Pronk (TU Delft - BT/Biotechnologie)

Walter M. Van Gulik (TU Delft - OLD BT/Cell Systems Engineering)

P.A.S. Daran-Lapujade (TU Delft - BT/Industriele Microbiologie)

Research Group
OLD BT/Cell Systems Engineering
Copyright
© 2019 X.D.V. Hakkaart, Y. Liu, Mandy Hulst, Anissa el Masoudi, Eveline Peuscher, J.T. Pronk, W.M. van Gulik, P.A.S. Daran-Lapujade
DOI related publication
https://doi.org/10.1002/bit.27210
More Info
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Publication Year
2019
Language
English
Copyright
© 2019 X.D.V. Hakkaart, Y. Liu, Mandy Hulst, Anissa el Masoudi, Eveline Peuscher, J.T. Pronk, W.M. van Gulik, P.A.S. Daran-Lapujade
Related content
Research Group
OLD BT/Cell Systems Engineering
Issue number
3
Volume number
117
Pages (from-to)
721-735
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Abstract

Engineered strains of Saccharomyces cerevisiae are used for industrial production of succinic acid. Optimal process conditions for dicarboxylic-acid yield and recovery include slow growth, low pH, and high CO2. To quantify and understand how these process parameters affect yeast physiology, this study investigates individual and combined impacts of low pH (3.0) and high CO2 (50%) on slow-growing chemostat and retentostat cultures of the reference strain S. cerevisiae CEN.PK113-7D. Combined exposure to low pH and high CO2 led to increased maintenance-energy requirements and death rates in aerobic, glucose-limited cultures. Further experiments showed that these effects were predominantly caused by low pH. Growth under ammonium-limited, energy-excess conditions did not aggravate or ameliorate these adverse impacts. Despite the absence of a synergistic effect of low pH and high CO2 on physiology, high CO2 strongly affected genome-wide transcriptional responses to low pH. Interference of high CO2 with low-pH signaling is consistent with low-pH and high-CO2 signals being relayed via common (MAPK) signaling pathways, notably the cell wall integrity, high-osmolarity glycerol, and calcineurin pathways. This study highlights the need to further increase robustness of cell factories to low pH for carboxylic-acid production, even in organisms that are already applied at industrial scale.