Literature DB >> 8735387

Oscillatory, stochastic and chaotic growth rate fluctuations in permittistatically controlled yeast cultures.

H M Davey1, C L Davey, A M Woodward, A N Edmonds, A W Lee, D B Kell.   

Abstract

We describe a continuous culture system related to the turbidostat, but using a feedback system based on biomass estimation from the dielectric permittivity of the cell suspension rather than its optical density. It is shown that this system provides an excellent method of maintaining a constant biomass level within a fermentor. The computer-controlled system was able to effect the essentially continuous registration of growth rate by monitoring the rate of medium addition via the time-dependent activity of the pump. At some biomass setpoints for aerobically grown cultures of baker's yeast substantial time-dependent fluctuations in the growth rate of the culture were thereby observed. At some biomass setpoints, however, or under anaerobic conditions, or when using a non-Crabtree yeast, the growth rate was constant, indicating that the fluctuations were inherent to the biological system and not simply a property of the fermentor and control system. A variety of time series analyses (Fourier transformations, Hurst and Lyapunov exponents, the determination of embedding dimension, and non-linear time series predictions based on the methodology of Sugihara and May) were used to demonstrate, for the first time, that as well as stochastic and periodic components these fluctuations exhibited deterministic chaos. 'Trivial predictors' were unable to give accurate predictions of the growth rate in these cultures. The growth rate fluctuations were studied further by means of offline measurements of changes in percentage viability, bud count, and in the external ethanol and glucose concentrations; these data and other evidence suggested that the growth rate fluctuations were closely linked to the primary respiro-fermentative metabolism of this organism. The identification of chaotic growth rates in cell cultures suggests that there may be novel methods for controlling the growth of such cultures.

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Year:  1996        PMID: 8735387     DOI: 10.1016/0303-2647(95)01577-9

Source DB:  PubMed          Journal:  Biosystems        ISSN: 0303-2647            Impact factor:   1.973


  14 in total

1.  Absolute quantification of the glycolytic pathway in yeast: deployment of a complete QconCAT approach.

Authors:  Kathleen M Carroll; Deborah M Simpson; Claire E Eyers; Christopher G Knight; Philip Brownridge; Warwick B Dunn; Catherine L Winder; Karin Lanthaler; Pinar Pir; Naglis Malys; Douglas B Kell; Stephen G Oliver; Simon J Gaskell; Robert J Beynon
Journal:  Mol Cell Proteomics       Date:  2011-09-19       Impact factor: 5.911

Review 2.  Flow cytometry and cell sorting of heterogeneous microbial populations: the importance of single-cell analyses.

Authors:  H M Davey; D B Kell
Journal:  Microbiol Rev       Date:  1996-12

3.  Clock control of ultradian respiratory oscillation found during yeast continuous culture.

Authors:  D B Murray; S Roller; H Kuriyama; D Lloyd
Journal:  J Bacteriol       Date:  2001-12       Impact factor: 3.490

Review 4.  Application of dielectric spectroscopy to unravel the physiological state of microorganisms: current state, prospects and limits.

Authors:  G Flores-Cosío; E J Herrera-López; M Arellano-Plaza; A Gschaedler-Mathis; M Kirchmayr; L Amaya-Delgado
Journal:  Appl Microbiol Biotechnol       Date:  2020-05-21       Impact factor: 4.813

5.  A computational framework for finding parameter sets associated with chaotic dynamics.

Authors:  S Koshy-Chenthittayil; E Dimitrova; E W Jenkins; B C Dean
Journal:  In Silico Biol       Date:  2021

6.  Improving metabolic flux predictions using absolute gene expression data.

Authors:  Dave Lee; Kieran Smallbone; Warwick B Dunn; Ettore Murabito; Catherine L Winder; Douglas B Kell; Pedro Mendes; Neil Swainston
Journal:  BMC Syst Biol       Date:  2012-06-19

7.  A model of yeast glycolysis based on a consistent kinetic characterisation of all its enzymes.

Authors:  Kieran Smallbone; Hanan L Messiha; Kathleen M Carroll; Catherine L Winder; Naglis Malys; Warwick B Dunn; Ettore Murabito; Neil Swainston; Joseph O Dada; Farid Khan; Pınar Pir; Evangelos Simeonidis; Irena Spasić; Jill Wishart; Dieter Weichart; Neil W Hayes; Daniel Jameson; David S Broomhead; Stephen G Oliver; Simon J Gaskell; John E G McCarthy; Norman W Paton; Hans V Westerhoff; Douglas B Kell; Pedro Mendes
Journal:  FEBS Lett       Date:  2013-07-04       Impact factor: 4.124

8.  Systematic integration of experimental data and models in systems biology.

Authors:  Peter Li; Joseph O Dada; Daniel Jameson; Irena Spasic; Neil Swainston; Kathleen Carroll; Warwick Dunn; Farid Khan; Naglis Malys; Hanan L Messiha; Evangelos Simeonidis; Dieter Weichart; Catherine Winder; Jill Wishart; David S Broomhead; Carole A Goble; Simon J Gaskell; Douglas B Kell; Hans V Westerhoff; Pedro Mendes; Norman W Paton
Journal:  BMC Bioinformatics       Date:  2010-11-29       Impact factor: 3.169

9.  The genetic control of growth rate: a systems biology study in yeast.

Authors:  Pınar Pir; Alex Gutteridge; Jian Wu; Bharat Rash; Douglas B Kell; Nianshu Zhang; Stephen G Oliver
Journal:  BMC Syst Biol       Date:  2012-01-13

Review 10.  Individuality, phenotypic differentiation, dormancy and 'persistence' in culturable bacterial systems: commonalities shared by environmental, laboratory, and clinical microbiology.

Authors:  Douglas Kell; Marnie Potgieter; Etheresia Pretorius
Journal:  F1000Res       Date:  2015-07-01
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