Damaging agitation intensities increase DNA synthesis rate and alter cell‐cycle phase distributions of CHO cells
- 20 October 1992
- journal article
- research article
- Published by Wiley in Biotechnology & Bioengineering
- Vol. 40 (8), 978-990
- https://doi.org/10.1002/bit.260400814
Abstract
The effects of fluid-mechanical force (agitation) on the cell cycle kinetics of Chinese hamster ovary (CHO) cells cultured in suspension in 2-L bioreactors has been examined. A two-color flow cytometry method was used to determine the fraction rate of DNA synthesis. With increased agitation intensity, cell viability decreased as a result of increased cell death. However, increased agitation induced the viable cells of the culture to a higher proliferative state relative to a control culture. The fraction of viable cells of the high-agitation culture (250 rpm) in S phase was higher (up to 45%) and in G1 phase was lower (up to 50%) compared with the viable cells of the control culture (80 rpm). The DNA synthesis rate per viable S-phase cell of the high-agitation culture was confirmed by recovery experiments, which were conducted to measure the apparent specific growth rate and the cell cycle kinetics of the high-agitation culture upon reduction in the agitation rate from 250 rpm back to 80 rpm. The apparent specific growth rate of the test culture, calculated for the first 12 h of the recovery period, was greater than the apparent specific growth rate of the control culture. Furthermore, the proliferative state of the viable cells of the test culture, which had become higher relative to the control culture during the high agitation period, gradually approached the level of the control culture during recovery. Results also show that the magnitude of the agitation intensity; the culture agitated at 250 rpm attained a greater proliferative state than a parallel culture agitated at 235 rpm. The 250-rpm culture had a higher fraction of S-phase and a lower fraction of G1-phase cells than the 235-rpm culture. The DNA sunthesis rate per viable S-phase cell of the 250-rpm culture was greater than of the 235-rpm culture. © 1992 John Wiley & Sons, Inc.Keywords
This publication has 18 references indexed in Scilit:
- A physical characterization of GAP A3 hybridoma cells: Morphology, geometry, and mechanical propertiesBiotechnology & Bioengineering, 1991
- Cell-cycle-dependent protein accumulation by producer and nonproducer murine hybridoma cell lines: A population analysisBiotechnology & Bioengineering, 1991
- Heat shock proteins and cell proliferationFEBS Letters, 1991
- Microscopic Visualization of Insect Cell‐Bubble Interactions. II: The Bubble Film and Bubble RuptureBiotechnology Progress, 1991
- Fluid-mechanical damage of animal cells in bioreactorsTrends in Biotechnology, 1991
- Cell cycle‐ and growth phase‐dependent variations in size distribution, antibody productivity, and oxygen demand in hybridoma culturesBiotechnology & Bioengineering, 1990
- Damage mechanisms of suspended animal cells in agitated bioreactors with and without bubble entrainmentBiotechnology & Bioengineering, 1990
- Scale-up engineering in animal cell technology: Part IITrends in Biotechnology, 1988
- The in vitro bioassay of hormones using cultured mammalian cellsJournal of Biotechnology, 1988
- Shear sensitivity of cultured hybridoma cells (CRL-8018) depends on mode of growth, culture age and metabolite concentrationJournal of Biotechnology, 1988