Control of Culture Environment for Improved Polyethylenimine-Mediated Transient Production of Recombinant Monoclonal Antibodies by CHO Cells

Контроль условий культивирования для повышения эффективности опосредованного полиэтиленимином транзиентного получения рекомбинантных моноклональных антител клетками CHO
D.J. Galbraith, A. Sasha Tait, Andrew J. Racher, John Birch, David C. James
2006-06-02

CHO cellsLR3-IGFMild hypothermiaPEI-mediated transient transfectionRecombinant monoclonal antibodies
In this study we describe optimization of polyethylenimine (PEI)-mediated transient production of recombinant protein by CHO cells by facile manipulation of a chemically defined culture environment to limit accumulation of nonproductive cell biomass, increase the duration of recombinant protein production from transfected plasmid DNA, and increase cell-specific production. The optimal conditions for transient transfection of suspension-adapted CHO cells using branched, 25 kDa PEI as a gene delivery vehicle were experimentally determined by production of secreted alkaline phosphatase reporter in static cultures and recombinant IgG4 monoclonal antibody (Mab) production in agitated shake flask cultures to be a DNA concentration of 1.25 microg 10(6) cells(-1) mL(-1) at a PEI nitrogen:DNA phosphate ratio of 20:1. These conditions represented the optimal compromise between PEI cytotoxicity and product yield with most efficient recombinant DNA utilization. Separately, both addition of recombinant insulin-like growth factor (LR3-IGF) and a reduction in culture temperature to 32 degrees C were found to increase product titer 2- and 3-fold, respectively. However, mild hypothermia and LR3-IGF acted synergistically to increase product titer 11-fold. Although increased product titer in the presence of LR3-IGF alone was solely a consequence of increased culture duration, a reduction in culture temperature post-transfection increased both the integral of viable cell concentration (IVC) and cell-specific Mab production rate. For cultures maintained at 32 degrees C in the presence of LR3-IGF, IVC and qMab were increased 4- and 2.5-fold, respectively. To further increase product yield from transfected DNA, the duration of transgene expression in cell populations maintained at 32 degrees C in the presence of LR3-IGF was doubled by periodic resuspension of transfected cells in fresh media, leading to a 3-fold increase in accumulated Mab titer from approximately 13 to approximately 39 mg L(-1). Under these conditions, Mab glycosylation at Asn297 remained essentially constant and similar to that of the same Mab produced by stably transfected GS-CHO cells. From these data we suggest that the efficiency of transient production processes (protein output per rDNA input) can be significantly improved using a combination of mild hypothermia and growth factor(s) to yield an extended "activated hypothermic synthesis".
1
At 32 degrees C with LR3-IGF, integral viable cell concentration increased 4-fold and cell-specific Mab production increased 2.5-fold.
2
LR3-IGF alone extended culture duration, whereas reduced temperature increased both integral viable cell concentration and cell-specific monoclonal antibody production.
3
LR3-IGF supplementation and post-transfection culture at 32 degrees C increased recombinant antibody titer 2-fold and 3-fold individually, while together producing an 11-fold increase.
4
Optimal PEI-mediated transient transfection of suspension-adapted CHO cells used 1.25 microg DNA per 10(6) cells per mL at a PEI nitrogen:DNA phosphate ratio of 20:1.
5
Periodic resuspension in fresh medium doubled transgene-expression duration and further increased accumulated monoclonal antibody titer approximately 3-fold.

Suspension-adapted CHO cells producing recombinant monoclonal antibodies by PEI-mediated transient transfection in chemically defined culture

Effects of culture-environment manipulation—including LR3-IGF supplementation, mild hypothermia, and periodic resuspension—on transgene expression duration, viable cell accumulation, cell-specific Mab production, and recombinant antibody titer

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2006-06-02
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D.J. Galbraith
A. Sasha Tait
Andrew J. Racher
John Birch
David C. James
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