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Biomedical subjects

R L Warters

Publications and source records attributed to R L Warters.

61 records · Page 4Linked to original sources

Radionuclide toxicity in cultured mammalian cells: elucidation of the primary site of radiation damage.

Synchronized suspension cultures of Chinese hamster ovary cells (CHO) were labeled with various doses of 3H-thymidine or 125I-iododeoxyuridine to evaluate the cytocidal effects of intranuclear radionuclide decay. Damage produced by radionuclide decay outside the cell nucleus was studied on cells exposed to 125I labeled, monovalent concanavalin A. After labeling, the cells were resynchronized in G1-phase and incubated for 36 h at 4 degrees C to permit dose accumulation. Cell lethality was evaluated by the standard colony assay. Based on radionuclide incorporation data, cellular dimensions, and subcellular radionuclide distributions, the cumulative dose to whole cells, cell nuclei, and cellular cytoplasm was calculated from the known decay properties of 3H and 125I. As expected, DNA associated 125I (LD50: 60 decays/cell; 45 rad) was much more toxic to CHO cells than 3H (LD50: 1350 decays/cell; 380 rad) 380 rad) or external X-irradiation (LD50: 330 rad). In contrast, membrane associated 125I was surprisingly non-toxic (LD50: 19 600 decays/cell). At 19 600 decays/cell the dose to the cell membrane was approximately 52 krad and the overlap dose into the cytoplasm was about 2470 rad. Even at these high dose levels, membrane damage or cytoplasmic damage apparently did not contribute significantly to radiation induced cell death. With 19 600 decays on the plasma membrane the CHO nuclei received an overlap dose of about 410 rad. As can be seen from the LD50 data for 3H and X-rays, a nuclear dose of 410 rad should be sufficient to account for 50% cell death. These findings indicate that, although intranuclear decay by electron capture is extremely destructive, identical decay events in the plasma membrane cause only minimal cell damage. This parallels our earlier studies on 67Ga labeled leukemia cells which showed that electron capture decay in the cytoplasm is also highly ineffective in killing mammalian cells. It therefore appears that radiation-induced cell lethality in dividing mammalian cells results primarily from nuclear damage. Cytoplasmic or membrane contributions to radiation-induced cell death, if any, must be minimal. By implication, these findings refute the enzyme release hypothesis and similar theories designed to explain mitotic death in terms of cytoplasmic or membrane damage rather than nuclear damage.

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Centrifugal cytology. III. The utilization of centrifugal cytology for the preparation of fixed stained dispersions of cells separated by bovine serum albumin bouyant density centrifugation.

This paper describes the modification of Centrifugal Cytology for the preparation of permanent, fixed, stained dispensions for both light and scanning electron microscopy of cells which have been isolated on bovine serum albumin (BSA) boyant density gradients. The principal problem with BSA gradient fractions is that the albumin which is present even after dilution is precipitated by the glutaraldehyde fixative. This problem has been solved by the layering of an intermediate D2O solution under the BSA and subsequent removal of the BSA solution and the underlaying with D2O containing glutaraldehyde. A special layering machine facilitates and expedites these operations. This technique has also been applied to BSA-seperated guinea pig and chicken bone marrow cells, as well as Ehrlich ascites tumor cells, hen and human blood cells. The number of celll present in each area of the slide is maintained at a constant value by utlizing a table of dilution factors. This table was generated by a computer program which calculates the concentration of cells present in the rractions and divides it by the number of celll desired.

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