Cell cycle phase dependent productivity of a recombinant Chinese hamster ovary cell line
暂无分享,去创建一个
[1] Mohamed Al-Rubeai,et al. Flow Cytometry Applications in Cell Culture , 2020 .
[2] S. Sharfstein,et al. Hyperosmotic Stress in Murine Hybridoma Cells: Effects on Antibody Transcription, Translation, Posttranslational Processing, and the Cell Cycle , 2008, Biotechnology progress.
[3] P. Bork,et al. Co-evolution of transcriptional and post-translational cell-cycle regulation , 2006, Nature.
[4] Gavin Sherlock,et al. Cell cycle: Complex evolution , 2006, Nature.
[5] C. Smales,et al. The cold-shock response in cultured mammalian cells: harnessing the response for the improvement of recombinant protein production. , 2006, Biotechnology and bioengineering.
[6] Jussi Taipale,et al. Identification of pathways regulating cell size and cell-cycle progression by RNAi , 2006, Nature.
[7] S. R. Fox,et al. A detailed understanding of the enhanced hypothermic productivity of interferon‐γ by Chinese‐hamster ovary cells , 2005, Biotechnology and applied biochemistry.
[8] Kelvin H Lee,et al. Cytochalasin D can improve heterologous protein productivity in adherent Chinese hamster ovary cells. , 2005, Biotechnology and bioengineering.
[9] Gyun Min Lee,et al. Effect of culture pH on erythropoietin production by Chinese hamster ovary cells grown in suspension at 32.5 and 37.0 degrees C. , 2005, Biotechnology and bioengineering.
[10] Gyun Min Lee,et al. Effect of low culture temperature on specific productivity, transcription level, and heterogeneity of erythropoietin in Chinese hamster ovary cells. , 2003, Biotechnology and bioengineering.
[11] W. Miller,et al. Characterization of hybridoma cell responses to elevated pCO(2) and osmolality: intracellular pH, cell size, apoptosis, and metabolism. , 2002, Biotechnology and bioengineering.
[12] F. Gòdia,et al. Decoupling cell growth and product formation in Chinese hamster ovary cells through metabolic control. , 2001, Biotechnology and bioengineering.
[13] G. Kretzmer,et al. Increased productivity of recombinant tissular plasminogen activator (t-PA) by butyrate and shift of temperature: a cell cycle phases analysis , 2001, Cytotechnology.
[14] C. Hoy,et al. Multiple cell culture factors can affect the glycosylation of Asn-184 in CHO-produced tissue-type plasminogen activator. , 2000, Biotechnology and bioengineering.
[15] Mohamed Al-Rubeai,et al. Relationship between cell size, cell cycle and specific recombinant protein productivity , 2000, Cytotechnology.
[16] Sugiyono,et al. Regulated autocrine growth of CHO cells , 2000, Cytotechnology.
[17] J. Piret,et al. Limitations to the amplification and stability of human tissue-type plasminogen activator expression by Chinese hamster ovary cells. , 2000, Biotechnology and bioengineering.
[18] T. Warner. Enhancing therapeutic glycoprotein production in Chinese hamster ovary cells by metabolic engineering endogenous gene control with antisense DNA and gene targeting. , 1999, Glycobiology.
[19] M. Al‐Rubeai,et al. Use of cell cycle analysis to characterise growth and interferon-γ production in perfusion culture of CHO cells , 1999, Cytotechnology.
[20] J E Bailey,et al. Influence of low temperature on productivity, proteome and protein phosphorylation of CHO cells. , 1999, Biotechnology and bioengineering.
[21] Jeno M. Scharer,et al. Descriptive parameter evaluation in mammalian cell culture , 1998, Cytotechnology.
[22] M. Fussenegger,et al. A novel cytostatic process enhances the productivity of Chinese hamster ovary cells. , 1997, Biotechnology and bioengineering.
[23] N. Toyoda,et al. Changes in ovarian expression of tissue-type plasminogen activator and plasminogen activator inhibitor type-1 messenger ribonucleic acids during ovulation in rat. , 1997, Endocrine journal.
[24] D. James,et al. Posttranslational processing of recombinant human interferon‐γ in animal expression systems , 1996, Protein science : a publication of the Protein Society.
[25] T. Cartwright. Animal cells as bioreactors: References , 1994 .
[26] Z. Darżynkiewicz,et al. CD4 engagement induces Fas antigen‐dependent apoptosis of T cells in vivo , 1994, European journal of immunology.
[27] M. Gu,et al. Foreign gene expression (β‐galactosidase) during the cell cycle phases in recombinant CHO cells , 1993, Biotechnology and bioengineering.
[28] A. Bull,et al. The effect of the dilution rate on CHO cell physiology and recombinant interferon‐γ production in glucose‐limited chemostat culture , 1993, Biotechnology and bioengineering.
[29] E. Papoutsakis,et al. Damaging agitation intensities increase DNA synthesis rate and alter cell‐cycle phase distributions of CHO cells , 1992, Biotechnology and bioengineering.
[30] M S Croughan,et al. Reversible removal and hydrodynamic phenomena in CHO microcarrier cultures. , 1990, Biotechnology and bioengineering.
[31] H. Stockinger,et al. Cell cycle-dependent DHFR and t-PA production in cotransfected, MTX-amplified CHO cells revealed by dual-laser flow cytometry. , 1990, Experimental cell research.
[32] F. Castellino,et al. Appearance of plasminogen activator activity during a synchronous cycle of a rat adenocarcinoma cell line, PA-III. , 1987, Experimental cell research.
[33] G. Stein,et al. Recombinant DNA and Cell Proliferation , 1984 .
[34] A J Sinskey,et al. Large‐scale Production of Mammalian Cells and Their Products: Engineering Principles and Barriers to Scale‐up , 1983, Annals of the New York Academy of Sciences.
[35] Z. Werb,et al. Regulation of protein secretion in Chinese hamster ovary cells by cell cycle position and cell density. Plasminogen activator, procollagen fibronectin. , 1982, Experimental cell research.
[36] R. Schimke,et al. S phase-specific synthesis of dihydrofolate reductase in Chinese hamster ovary cells. , 1981, Proceedings of the National Academy of Sciences of the United States of America.
[37] D. Loskutoff,et al. Intracellular plasminogen activator activity in growing and quiescent cells , 1978, Journal of cellular physiology.
[38] J. Bertino,et al. Quantitation of dihydrofolate reductase in individual parental and methotrexate-resistant murine cells. Use of a fluorescence activated cell sorter. , 1978, The Journal of biological chemistry.
[39] John Paul,et al. Tissue culture: Methods and applications: Ed. by Paul F. Kruse, Jr and M. K. Patterson, Jr. 1973. New York and London: Academic Press. Pp. xxvii and 868; 264 text figs. £10.15. , 1974 .
[40] J. Smith,et al. Do cells cycle? , 1973, Proceedings of the National Academy of Sciences of the United States of America.
[41] M. Kimble,et al. Cell cycle-dependent expression of the CHO2 antigen, a minus-end directed kinesin-like motor in mammalian cells , 2005, Protoplasma.
[42] D. Kompala,et al. Foreign protein expression from S phase specific promoters in continuous cultures of recombinant CHO cells , 2004, Cytotechnology.
[43] I. Chevalot,et al. Production of a membrane-bound proteins, the human gamma-glutamyl transferase, by CHO cells cultivated on microcarriers, in aggregates and in suspension , 2004, Cytotechnology.
[44] P. Gray,et al. Enhanced productivity of G1 phase Chinese hamster ovary cells using the GADD153 promoter , 2004, Biotechnology Letters.
[45] Mohamed Al-Rubeai,et al. Modulation of Cell Cycle for Enhancement of Antibody Productivity in Perfusion Culture of NS0 Cells , 2003, Biotechnology progress.
[46] Sónia Sá Santos,et al. Cell Growth Arrest by Nucleotides, Nucleosides and Bases as a Tool for Improved Production of Recombinant Proteins , 2003, Biotechnology progress.
[47] G Stephanopoulos,et al. Rapamycin reduces hybridoma cell death and enhances monoclonal antibody production. , 2001, Biotechnology and bioengineering.
[48] M. Moo-young,et al. Hybridoma growth and productivity: effects of conditioned medium and of inoculum size , 1999, Cytotechnology.
[49] S. Ueda,et al. Recombinant porcine follicle stimulating hormone produced in baculovirus-insect cells induces rat ovulation in vivo and gene expression of tissue plasminogen activator in vitro. , 1998, Research in veterinary science.
[50] J. Scharer,et al. Thickness shear mode acoustic assay for plasminogen activators , 1998 .
[51] Y. Chisti,et al. Tissue-type plasminogen activator: characteristics, applications and production technology. , 1996, Biotechnology advances.
[52] M. Tuite,et al. Protein folding in the secretory pathway of animal cells. , 1995 .
[53] Y. Assaraf,et al. Characterization by flow cytometry of fluorescein-methotrexate transport in Chinese hamster ovary cells. , 1989, Cytometry.
[54] L. Johnson. 2 – Expression of Dihydrofolate Reductase and Thymidylate Synthase Genes in Mammalian Cells , 1984 .
[55] H. J. Phillips. Dye Exclusion Tests for Cell Viability , 1973 .