Hydrodynamic effects on animal cells grown in microcarrier cultures
暂无分享,去创建一个
[1] Y. Sano,et al. MASS TRANSFER COEFFICIENTS FOR SUSPENDED PARTICLES IN AGITATED VESSELS AND BUBBLE COLUMNS , 1974 .
[2] P. C. Hiemenz,et al. Principles of colloid and surface chemistry , 1977 .
[3] Joel Weisman,et al. Suspension of slurries by mechanical mixers , 1960 .
[4] C. Glatz,et al. Isoelectric precipitation of soy protein. II. Kinetics of protein aggregate growth and breakage , 1983, Biotechnology and bioengineering.
[5] N. Stathopoulos,et al. Shear stress effects on human embryonic kidney cells in Vitro , 1985, Biotechnology and bioengineering.
[6] R. Kuboi,et al. Fluid and particle motion in turbulent dispersion—II , 1974 .
[7] J. Folkman,et al. Role of cell shape in growth control , 1978, Nature.
[8] C F Dewey,et al. The dynamic response of vascular endothelial cells to fluid shear stress. , 1981, Journal of biomechanical engineering.
[9] Sheldon Penman,et al. Protein synthesis requires cell-surface contact while nuclear events respond to cell shape in anchorage-dependent fibroblasts , 1980, Cell.
[10] D. Kilburn,et al. Homogeneous cultivation of animal cells for the production of virus and virus products , 1969, Biotechnology and bioengineering.
[11] Daniel I. C. Wang,et al. Human interferon production with diploid fibroblast cells grown on microcarriers , 1979, Biotechnology and bioengineering.
[12] J. Clark,et al. OPTIMIZING CULTURE CONDITIONS FOR THE PRODUCTION OF ANIMAL CELLS IN MICROCARRIER CULTURE , 1981, Annals of the New York Academy of Sciences.
[13] M. Kamiwano,et al. Turbulent Flow in a Stirred Vessel , 1967 .
[14] J. Lumley,et al. A First Course in Turbulence , 1972 .
[15] J. C. van Suijdam,et al. Influence of engineering variables upon the morphology of filamentous molds , 1981 .
[16] J. E. Shannon,et al. The measurement of proliferation in tissue cultures by enumeration of cell nuclei. , 1951, Journal of the National Cancer Institute.
[17] R. Spier,et al. The production of foot‐and‐mouth disease virus from BHK 21 C 13 cells grown on the surface of DEAE sephadex A50 beads , 1976, Biotechnology and bioengineering.
[18] R. Luecke,et al. Mechanisms of Deaggregation for Clay-Polymer Flocs in Turbulent Systems , 1980 .
[19] A. L. Wezel. Growth of Cell-strains and Primary Cells on Micro-carriers in Homogeneous Culture , 1967, Nature.
[20] David G. Thomas. Turbulent disruption of flocs in small particle size suspensions , 1964 .
[21] Robert K. Finn,et al. A model system for evaluating shear in the design of stirred fermentors , 1966 .
[22] T. M. Hollis,et al. Effects of shearing stress on aortic histamine synthesis. , 1974, Experimental and molecular pathology.
[23] James M. Church,et al. Statistical Theories of Turbulence in Predicting Particle Size in Agitated Dispersions , 1960 .
[24] W. Tolbert,et al. The large-scale cultivation of mammalian cells. , 1983, Scientific American.
[25] Th.N. Zwietering. Suspending of solid particles in liquid by agitators , 1958 .
[26] L. A. Cutter. Flow and turbulence in a stirred tank , 1966 .
[27] James Y. Oldshue,et al. Fluid Mixing Technology , 1983 .
[28] A. Ben-Ze'ev,et al. Altered translatability of messenger RNA from suspended anchorage-dependent fibroblasts: Reversal upon cell attachment to a surface , 1978, Cell.
[29] K. Mosbach,et al. Preparation of Immobilized animal cells , 1980, FEBS letters.
[30] J Meier,et al. A mechanistic analysis of the inoculum requirement for the cultivation of mammalian cells on microcarriers , 1985, Biotechnology and bioengineering.
[31] S. Nagata. Mixing: Principles and Applications , 1975 .
[32] D. L. Fry. Acute Vascular Endothelial Changes Associated with Increased Blood Velocity Gradients , 1968, Circulation research.
[33] A J Sinskey,et al. PRODUCTION OF CELL‐DERIVED PRODUCTS: VIRUS AND INTERFERON * , 1981, Annals of the New York Academy of Sciences.
[34] R. Kuboi,et al. FLUID AND PARTICLE MOTION IN TURBULENT DISPERSION--1. MEASUREMENT OF TURBULENCE OF LIQUID BY CONTINUAL PURSUIT OF TRACER PARTICLE MOTION , 1974 .
[35] W. R. Schowalter,et al. Simple shear flow round a rigid sphere: inertial effects and suspension rheology , 1970, Journal of Fluid Mechanics.
[36] Raghunath V. Chaudhari,et al. Three phase slurry reactors , 1980 .
[37] I. Giaever,et al. Cell growth on liquid microcarriers. , 1983, Science.
[38] J. M. Deforrest,et al. Relationship between low intensity shear stress, aortic histamine formation, and aortic albumin uptake. , 1980, Experimental and molecular pathology.
[39] A. Freeman,et al. Factors affecting cell attachment, spreading, and growth on derivatized microcarriers. I. Establishment of working system and effect of the type of the amino‐charged groups , 1983, Biotechnology and Bioengineering.
[40] W. Thilly,et al. Continuous cell propagation using low‐charge microcarriers , 1981 .
[41] Daniel I. C. Wang,et al. Optimization of growth surface parameters in microcarrier cell culture , 1979 .
[42] L V McIntire,et al. Flow effects on prostacyclin production by cultured human endothelial cells. , 1985, Science.
[43] A. B. Metzner,et al. Agitation of viscous Newtonian and non-Newtonian fluids , 1961 .