Decoupling cell growth and product formation in Chinese hamster ovary cells through metabolic control

Altamirano, C; Cairo, J.J.; Godia, F.

Keywords: acid, proteins, growth, animals, glucose, cells, culture, cell, acids, ammonia, metabolism, activator, division, time, carbon, tissue, article, carbohydrate, galactose, techniques, plasminogen, animal, factors, lactic, utilization, amino, cho, Rate, nonhuman, Cells,, Cultured, griseus, Cricetinae, Cricetulus

Abstract

The development of a strategy for the culture of Chinese hamster ovary (CHO) cells producing tissue plasminogen activator (t-PA) is investigated. This strategy is based on the replacement of the main carbon source, glucose, by another compound that is slowly metabolizable, particularly galactose. The introduction of this change allows for acute change in cell behavior at various levels. Cell growth is stopped after this nutrient shift, and the cells can be kept in long-duration culture at a low growth rate and high viability as compared with a culture strategy based solely on glucose utilization. Moreover, the capability of cells to produce recombinant proteins (t-PA in this work) can be maintained over the entire period of galactose feeding. From the metabolic point of view, use of a slowly metabolizable carbon source (galactose) introduces important changes in the production of lactate, ammonia, and some amino acids. The use of this metabolic shift enables the generation of biphasic processes, with a first phase with cell growth on glucose and a second stationary phase on galactose, which is particularly suited to perfusion systems.© 2001 John Wiley & Sons, Inc.

Más información

Título según SCOPUS: Decoupling cell growth and product formation in Chinese hamster ovary cells through metabolic control
Título de la Revista: BIOTECHNOLOGY AND BIOENGINEERING
Volumen: 76
Número: 4
Editorial: Wiley
Fecha de publicación: 2001
Página de inicio: 351
Página final: 360
Idioma: English
URL: http://www.scopus.com/inward/record.url?eid=2-s2.0-0035829827&partnerID=q2rCbXpz
DOI:

10.1002/bit.10096

Notas: SCOPUS