| 1. |
Kost, T. A., Condreay, J. P., and Jarvis, D. L. (2005) Baculovirus as versatile vectors for protein expression in insect and
mammalian cells. Nat. Biotechnol.
23, 567–575.
|
| |
| 2. |
Ikonomou, L., Schneider, Y.-J., and Agathos, S. N. (2003) Insect cell culture for industrial production of recombinant proteins.
Appl. Microbiol. Biotechnol.
62, 1–20.
|
| |
| 3. |
Smith, G. E., Summers, M. D., and Fraser, M. J. (1983) Production of human beta interferon in insect cells infected with a
baculovirus expression vector. Mol. Cell. Biol.
3, 2156–2165.
|
| |
| 4. |
Pennock, G. D., Shoemaker, C., and Miller, L. K. (1984) Strong and regulated expression of Escherichia coli beta-galactosidase in insect cells with a baculovirus vector. Mol. Cell. Biol.
4, 399–406.
|
| |
| 5. |
Vaughn, J. L., Goodwin, R. H., Tompkins, G. J., and McCawley, P. (1977) The establishment of two cell lines from the insect
Spodoptera frugiperda (Lepidoptera; Noctuidae). In Vitro
13, 213–217.
|
| |
| 6. |
Hink, W. F. (1970) Established insect cell line from the cabbage looper, Trichoplusia ni. Nature
226, 466–467.
|
| |
| 7. |
Granados, R. R., Guoxun, L., Derksen, A. C. G., and McKenna, K. A. (1994) A new insect cell line from Trichoplusia ni (BTI-Tn-5B1-4) susceptible to Trichoplusia ni single enveloped nuclear polyhedrosis virus. J. Invertebr. Pathol.
64, 260–266.
|
| |
| 8. |
Granados, R. R. (1994) Cell line isolated from larval midgut tissue of Trichoplusia ni. US Patent 5,298,418.
|
| |
| 9. |
Davis, T. R., Wickham, T. J., McKenna, K. A., Granados, R. R., Shuler, M. L., and Wood, H. A. (1993) Comparative recombinant
protein production of eight insect cell lines. In Vitro Cell. Dev. Biol. Animal
29, 388–390.
|
| |
| 10. |
Grace, T. D. C. (1962) Establishment of four strains of cells from insect tissues grown in vitro. Nature
195, 788–789.
|
| |
| 11. |
Gardiner, G. R. and Stockdale, H. (1975) Two tissue culture media for production of lepidopteran cells and nuclear polyhedrosis
virus. J. Invertebr. Pathol.
25, 363–370.
|
| |
| 12. |
Weiss, S. A., Smith, G. C., Kalter, S. S., and Vaughn, J. L. (1981) Improved method for the production of insect cell cultures
in large volume. In Vitro
17, 495–502.
|
| |
| 13. |
Maiorella, B., Inlow, D., Shauger, A., and Harano, D. (1988) Large-scale insect cell-culture for recombinant protein production.
Bio/Technology
6, 1406–1410.
|
| |
| 14. |
Hink, W. F. (1991) A serum-free medium for the culture of insect cells and production of recombinant proteins. In Vitro Cell. Dev. Biol.
27, 397–401.
|
| |
| 15. |
Weiss, S., Grefrath, P., Whitford, W., Pfohl, J., Fike, R., and Jayme, D. (1990) Growth of insect cells in a serum-free medium
and production of recombinant proteins using various bioreactors. In Vitro Cell. Dev. Biol.
26, 30A.
|
| |
| 16. |
Godwin, G., Danner, D., and Gorfien, S. (1995) Express Five™ SFM: a new serum-free medium for growth of BTI-TN-5B1-4 cells
and expression of recombinant proteins. Focus
17, 58–60.
|
| |
| 17. |
Godwin, G., Belisle, B., DeGiovanni, A., Khler, J., Gong, T., and Wojchowski, D. (1990) Serum-free growth and recombinant
EPO expression in Spodoptera frugiperda (Sf-9) insect cells. In Vitro Cell. Dev. Biol.
26, 19A.
|
| |
| 18. |
Barnett, B. B. (1998) Insect cell culture technology. Art to Science
17, 1–7.
|
| |
| 19. |
Ikonomou, L., Bastin, G., Schneider, Y.-J., and Agathos, S. N. (2001) Design of an efficient medium for insect cell growth
and recombinant protein production. In Vitro Cell. Dev. Biol. Anim.
37, 549–559.
|
| |
| 20. |
Schlaeger, E.-J., Foggetta, M., Vonach, J. M., and Christensen, K. (1993) SF-1, a low cost culture medium for the production
of recombinant proteins in baculovirus infected insect cells. Biotechnol. Tech.
7, 183–188.
|
| |
| 21. |
Schlaeger, E.-J. (1996) Medium design for insect cell culture. Cytotechnology
20, 57–70.
|
| |
| 22. |
Donaldson, M. S. and Shuler, M. L. (1998) Low-cost serum-free medium for the BTI Tn5B1-4 insect cell line. Biotechnol. Prog.
14, 573–579.
|
| |
| 23. |
Jan, D. C.-H., Jones, S. J., Emery, A. N., and Al-Rubeai, M. (1994) Peptone, a low-cost growth promoting nutrient for intensive
animal cell culture. Cytotechnology
16, 17–26.
|
| |
| 24. |
O’Reilly, D. R., Miller, L. K., and Luckow, V. A. (1992) Baculovirus Expression Vectors: A Laboratory Manual. W.H. Freeman and Company, New York.
|
| |
| 25. |
Weiss, S. A., Godwin, G. P., Gorfien, S. F., and Whitford, W. G. (1995) Insect cell culture in serum-free media, in Baculovirus Expression Protocols, (Richardson, C. D., ed.), Humana Press, Totowa, NJ, pp. 79–95.
|
| |
| 26. |
Frank, M. B. (1998) Insect cell culture and baculovirus infections, in Molecular Biology Protocols, (Frank, M. B., ed.), http://omrf.ouhsc.edu/~frank/baculpro.html, Oklahoma City, OK.
|
| |
| 27. |
Dee, K. U., Shuler, M. L., and Wood, H. A. (1997) Inducing single-cell suspension of BTI-TnB1-4 insect cells: 1. The use of
sulfated polyanions to prevent cell aggregation and enhance recombinant protein production. Biotechnol. Bioeng.
54, 191–205.
|
| |
| 28. |
Franek, F., Hohenwarter, O., and Katinger, H. (2000) Plant protein hydrolysates: preparation of defined peptide fractions
promoting growth and production in animal cell cultures. Biotechnol. Prog.
16, 688–692.
|
| |
| 29. |
Reiter, M., Mundt, W., Dorner, F., Grillberger, L., and Mitterer, A. (2001) Patent WO 01/23527 awarded to Baxter Aktiengesellschaft,
Austria.
|
| |
| 30. |
Jesionowski, G. A. and Ataai, M. M. (1997) An efficient medium for high protein production in the insect cell/baculovirus
expression system. Biotechnol. Prog.
13, 355–360.
|
| |
| 31. |
Chan, L. C. L., Greenfield, P. F., and Reid, S. (1998) Optimising fed-batch production of recombinant proteins using the baculovirus
expression vector system. Biotechnol. Bioeng.
59, 178–188.
|
| |
| 32. |
Kim, J. H., Kim, E. J., and Park, T. H. (2000) Fed-batch culture of insect cells with exponential feeding of amino acid and
yeastolate solution. Bioprocess Eng. 23, 367–370.
|
| |
| 33. |
Bédard, C., Kamen, A., Tom, R., and Massie, B. (1994) Maximization of recombinant protein yield in the insect cell/baculovirus
system by one-time addition of nutrients to high-density batch cultures. Cytotechnology
15, 129–138.
|
| |
| 34. |
Bédard, C., Perret, S., and Kamen, A. A. (1997) Fed-batch culture of Sf-9 cells supports 3 × 107 cells per ml and improves baculovirus-expressed recombinant protein yields. Biotechnol. Lett.
19, 629–632.
|
| |
| 35. |
Nguyen, B., Jarnagin, K., Williams, S., Chan, H., and Barnett, J. (1993) Fed-batch culture of insect cells: a method to increase
the yield of recombinant human nerve growth factor (rhNGF) in the baculovirus expression system. J. Biotechnol.
31, 205–217.
|
| |
| 36. |
Wu, J. and Lee, K. D. (1998) Growth promotion by yeastolate and related components on insect cells. Biotechnol. Tech.
12, 67–70.
|
| |
| 37. |
Eriksson, U. and Häggström, L. (2005) Yeast extract from Express Five serum-free medium contains factors at about 35 kDa,
essential for growth of Trichoplusia ni insect cells. Biotechnol. Lett.
27, 1623–1627.
|
| |
| 38. |
Lynn, D. E. (1996) Development and characterization of insect cell lines. Cytotechnology
20, 3–11.
|
| |
| 39. |
Ogonah, O. W., Freedman, R. B., Jenkins, N., Patel, K., and Rooney, B. C. (1996) Isolation and characterization of an insect
cell line able to perform complex N-linked glycosylation on recombinant proteins. Bio/Technology
14, 197–202.
|
| |
| 40. |
Pant, U., Athawale, S. S., Sudeep, A. B., and Banerjee, K. (1997) A new cell line from larval ovaries of Spodoptera litura. In Vitro Cell. Dev. Biol.
33, 161–163.
|
| |
| 41. |
McKenna, K. A., Hong, H., van Numen, E., and Granados, R. R. (1998) Establishment of new Trichoplusia ni cell lines in serum-free medium for baculovirus and recombinant protein production. J. Invertebr. Pathol.
71, 82–90.
|
| |
| 42. |
McIntosh, A. H., Christian, P. D., and Grasela, J. J. (1999) The establishment of heliothine cell lines and their susceptibility
to two baculoviruses. In Vitro Cell. Dev. Biol.
35, 94–97.
|
| |
| 43. |
Lin, G. Y., Li, G. X., Granados, R. R., and Blissard, G. W. (2001) Stable cell lines expressing baculovirus P35: resistance
to apoptosis and nutrient stress, and increased glycoprotein secretion. In Vitro Cell. Dev. Biol.
37, 293–302.
|
| |
| 44. |
Bédard, C., Tom, R., and Kamen, A. (1993) Growth, nutrient consumption, and end-product accumulation in Sf-9 and BTI-EAA insect
cell cultures: insights into growth limitation and metabolism. Biotechnol. Prog.
9, 615–624.
|
| |
| 45. |
Öhman, L., Ljunggren, J., and Häggström, L. (1995) Induction of a metabolic switch in insect cells by substrate-limited fed
batch cultures. Appl. Microbiol. Biotechnol.
43, 1006–1013.
|
| |
| 46. |
Drews, M., Paalme, T., and Vilu, R. (1995) The growth and nutrient utilization of the insect cell line Spodoptera frugiperda Sf9 in batch and continuous culture. J. Biotechnol.
40, 187–198.
|
| |
| 47. |
Bhatia, R., Jesionowski, G., Ferrance, J., and Ataai, M. M. (1997) Insect cell physiology. Cytotechnology
24, 1–9.
|
| |
| 48. |
Doverskog, M., Han, L., and Häggström, L. (1998) Cystine/cysteine metabolism in cultured Sf9 cells: influence of cell physiology.
Cytotechnology
26, 91–102.
|
| |
| 49. |
Drews, M., Doverskog, M., Öhman, L., et al. (2000) Pathways of glutamine metabolism in Spodoptera frugiperda (Sf9) insect cells: evidence for the presence of the nitrogen assimilation system, and a metabolic switch by H-1/N-15 NMR.
J. Biotechnol.
78, 23–37.
|
| |
| 50. |
Rhiel, M., Mitchell-Logean, C. M., and Murhammer, D. W. (1997) Comparison of Trichoplusia ni BTI-Tn-5B1-4 (High Five™) and Spodoptera frugiperda Sf-9 insect cell line metabolism in suspension cultures. Biotechnol. Bioeng.
55, 909–920.
|
| |
| 51. |
Benslimane, C., Elias, C. B., Hawari, J., and Kamen, A. (2005) Insights into the central metabolism of Spodoptera frugiperda (Sf9) and Trichoplusia ni BTI-Tn-5B1-4 (Tn-5) insect cells by radiolabelling studies. Biotechnol. Prog.
21, 78–86.
|
| |
| 52. |
Ferrance, J. P., Goel, A., and Ataai, M. M. (1993) Utilization of glucose and amino acids in insect cell cultures: quantifying
the metabolic flows within the primary pathways and medium development. Biotechnol. Bioeng.
42, 697–707.
|
| |
| 53. |
Mendonça, R. Z., Palomares, L. A., and Ramirez, O. T. (1999) An insight into insect cell metabolism through selective nutrient
manipulation. J. Biotechnol.
72, 61–75.
|
| |
| 54. |
Reuveny, S., Kemp, C. W., Eppstein, L., and Shiloach, J. (1992) Carbohydrate metabolism in insect cell cultures during cell
growth and recombinant protein production. Ann. NY Acad. Sci.
665, 230–237.
|
| |
| 55. |
Öhman, L., Alarcon, M., Ljunggren, J., Ramqvist, A.-K., and Häggström, L. (1996) Glutamine is not an essential amino acid
for Sf-9 insect cells. Biotechnol. Lett.
18, 765–770.
|
| |
| 56. |
Radford, K. M., Reid, S., and Greenfield, P. F. (1997) Substrate limitation in the baculovirus expression vector system. Biotechnol. Bioeng.
56, 32–44.
|
| |
| 57. |
Montgomery, D. C. and Runger, G. C. (1999) Applied Statistics and Probability for Engineers. John Wiley and Sons, Inc., New York.
|
| |
| 58. |
Marteijn, R. C. L., Jurrius, O., Dhont, J., de Gooijer, C. D., Tramper, J., and Martens, D. E. (2003) Optimization of a feed
medium for fed-batch culture of insect cells using a genetic algorithm. Biotechnol. Bioeng.
81, 269–278.
|
| |
| 59. |
Holland, J. H. (1992) Adaptation in Natural and Engineered Systems: An Introductory Analysis With Applications to Biology, Control and Artificial
Intelligence. MIT Press, Cambridge, MA.
|
| |
| 60. |
Weuster-Botz, D. (2000) Experimental design for fermentation media development: statistical design or global random search?
J. Biosci. Bioeng.
90, 473–483.
|
| |