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Biomedical subjects

H EAGLE

Publications and source records attributed to H EAGLE.

At least 19 recordsLinked to original sources

METABOLIC CONTROLS IN CULTURED MAMMALIAN CELLS.

A number of apparently unrelated factors are known to have a profound effect on the metabolism of cultured mammalian cells; and some of these may be operative as metabolic controls in the whole animal as well. The more complete exploration of (i) homotypic and heterotypic cellular interactions, (ii) the spontaneous transformations sometimes observed in cultured cells, (iii) the mode of action of cytotoxic agents, (iv) the multiple metabolic effects of viral infection, and (v) the conditions necessary for the maintenance of specialized function in cultured cells, can be expected to throw light on the basic mechanisms underlying such complex processes as differentiation, senescence, and cancer.

Amino Acids↗

The population-dependent requirement by cultured mammalian cells for metabolites which they can synthesize.

At least seven compounds synthesized by cultured cells in amounts which should suffice for sustained growth have nevertheless proved under certain conditions necessary for survival (asparagine, cystine, glutamine, homocystine inositol, pyruvate, serine). In every instance so far examined, that requirement has been population-dependent, disappearing at cell densities sufficiently large to bring the concentration in the medium and in the cellular pool to metabolically effective levels before the cells died of the specific deficiency. At population densities of less than 100 cells per ml, serine was required by all cultured cells so far studied. With more exigent strains, such as the RT6 strain of rabbit fibroblast and the P388 mouse leukemia, the serine requirement disappeared only at populations in excess of 50,000 and 150,000 cells per ml, respectively. The requirement for pyruvate by the latter cell as an alternative to serine also disappeared at that population density. In a cystine-free medium there were population-dependent requirements for cystine, homocystine, or serine, depending on the experimental conditions. With methionine and glucose as cystine precursors, the critical population density permitting cellular survival and growth was in excess of 200,000 cells/ml. The provision of homocystine as an intermediate reduced the critical population density to 10,000 to 60,000 cells/ml; with the further provision of serine, the critical cell concentration permitting growth was reduced to 50 to 500 cells/ml. Cells adapted to glutamic acid, and capable of utilizing it as a substitute for glutamine, nevertheless required exogeneous glutamine at cellular densities of less than 50,000 cells per ml. In some experiments, the provision of asparagine reduced the critical population density to 10,000 cells/ml, presumably because of its glutamine-sparing action. Inositol is required by most cell lines, despite their demonstrated capacity to synthesize it from glucose. With at least one cell line (HeLa), sustained growth was occasionally achieved in an inositol-free medium if the population density was maintained in excess of 240,000 cells/ml. The possible implications of these findings with respect to the loss of specific organ functions in dispersed cell culture are discussed.

Animals↗

A simplified chemostat for the growth of mammalian cells: characteristics of cell growth in continuous culture.

A simplified technique has been described for the continuous growth of mammalian cells in suspension culture. The cell population density increased as the rate of input of fresh medium was decreased, and the average generation time was concommittantly prolonged. At relatively high input rates, the population remained stabilized for an indefinite period, but at low flow rates, there was sometimes a cyclical variation in population density. The factor limiting growth rate at input rates of approximately 0.2 volumes per day was not the exhaustion of the medium; but in some experiments a non-dialyzable material appeared which inhibited cell growth.

Animals↗

Requirements for growth of single human cells.

A minimal growth medium supplemented with dialyzed serum, which sufficed for the propagation of a wide variety of human cell strains in heavily inoculated monolayer and suspension cultures, did not permit the regular or optimal growth of small numbers of HeLa, HeLa S3, conjunctiva, or KB cells deriving from suspension cultures. At threshold concentrations of serum, the plating efficiency of single cells was greatly reduced as compared with their plating efficiency in a medium containing dialyzed serum instead of whole serum, and the clones which did develop grew at a slower rate. The nutritional deficiency could be overcome by adding the seven amino acids which are ordinarily not nutritionally essential. In most of the experiments serine alone sufficed.

Amino Acids↗

The amino acid requirements of monkey kidney cells in first culture passage.

Monkey kidney cells tested in their first culture passage, 24 hours after their isolation from the animal host, required the same 13 amino acids for survival and growth as cell lines serially propagated in culture for years. Under the conditions of the present experiments, arginine, cystine, glutamine, histidine, and tyrosine proved necessary, over and above the 8 amino acids required for nitrogen balance in man. With the serially propagated lines, glutamic acid substituted for glutamine only at extremely high and non-physiological levels. In the monkey kidney cell cultures, however, glutamic acid and glutamine were interchangeable, mole for mole; and aspartic acid and asparagine were also effective as glutamine substitutes. Glycine was growth-stimulatory for monkey kidney cells in primary culture, and the cells grown in a glycine-deficient medium usually failed to survive subculture.

Amino Acids↗