PubMed Health⌕ Search

Biomedical subjects

C Basilico

Publications and source records attributed to C Basilico.

At least 145 records · Page 8Linked to original sources

SV40-transformed cells with temperature-dependent serum requirements.

We have isolated temperature-sensitive SV40-transformed 3T3 cells which are unable to grow in low or depleted serum at the nonpermissive temperature. At 39 degrees C, these cells do not grow in 1 percent serum, but they grow if the serum concentration is raised to 10 percent. At 32 degrees they grow in both serum concentrations. This phenotype seems to be due to a cellular mutation, as the virus rescued from these cells is wild-type. We tested whether other characteristics of transformed cells were expressed in a temperature sensitive way. While high saturation density is ts in these cells, other parameters of transformation are expressed at both temperatures. In addition, when these cells are incubated in low serum at 39 degrees C, they keep synthesizing DNA and lose viability very fast, while under the same conditions normal 3T3 cells remain viable for long times and are unable to initiate DNA synthesis. These cells therefore do not appear to revert to a normal phenotype at the high temperature, and they are more likely to represent transformed cell variants with a temperature-dependent serum requirement.

Animals↗

Temperature-sensitive cell mutations that inhibit adenovirus 2 replication.

Five temperature-sensitive growth mutants of the hamster cell line BHK-21 were tested for the ability to support adenovirus 2 multiplication at 39 degrees and 33 degrees. Wild-type BHK-21 and mutants ts 422E and ts BCH yielded comparable amounts of virus at 33 degrees and 39 degrees, whereas in three other mutants, ts T22, ts T23, and ts AF8, virus production at 39 degrees was reduced to about 1% of that at 33 degrees. Virus yield in the three mutants was not reduced because of a delay in virus production; for all cells tested maximal virus yield at 39 degrees was obtained by 40-50 hr after infection. Normal yields of infectious virus were not obtained from ts AF8 even with a very high multiplicity of infection. In contrast, the virus yield from ts T22 and ts T23 was multiplicity-dependent. Shiftup experiments demonstrated that in ts AF8, a cell cycle mutant which at 39 degrees becomes arrested in G1, virus multiplication was thermosensitive for the first 40 hr of infection. In ts T22 and ts T23, the thermosensitivity was only for the first 3-4 hr of the infection. In all three mutants viral DNA synthesis was reduced by at least 95% at the higher temperature. The cell function specified by the ts AF8 mutation seems to be required for the early period of adenovirus 2 replication, after virus entry into the cell but before the onset of viral DNA replication.

Adenoviridae↗

Transformation by polyoma virus alters expression of a cell mutation affecting cycle traverse.

A temperature-sensitive mutant of hamster BHK 21/13 cells, tsAF8, which at 39 degrees becomes arrested in the G1 (G0) phase of the cell cycle, is phenotypically altered with respect to temperature sensitivity after transformation with polyoma virus. Polyoma transformation does not produce reversion to a non-temperature-sensitive phenotype but causes increased entry into S and increased rate of cell death at the nonpermissive temperature, compared to untransformed tsAF8 cells. The increased frequency of cells synthesizing DNA is not accompanied by an increased frequency of mitosis, since most of the polyoma-transformed tsAF8 cells that synthesize DNA at the nonpermissive temperature do not divide. At the permissive temperature, polyoma-transformed tsAF8 cells, unlike tsAF8, also lose viability when exposed to other methods of arresting cells in G1. The most likely explanation for this phenomenon is that polyoma virus transformation interferes with the cellular response to this mutation as well as to other conditions that cause cell cycle arrest in G1.

Animals↗

Simian virus 40 integration sites in the genome of virus-transformed mouse cells.

To gain information on the specificity of simian virus 40 (SV40) integration in the genome of transformed cells, mouse 3T3 cells were transformed by a temperature-sensitive (ts) SV40 mutant, using high multiplicity of infection (MOI). Transformed cells were superinfected with wild-type (wt) virus at high MOI. Clones were isolated and fused with permissive BSC-1 cells to promote virus rescue. All rescued viruses were of the ts type only. When the high-MOI transformants were infected with 3H-labeled wt SV40, the amount of radioactivity associated with their nuclear fraction was found to be similar to that of 3T3 cells. 3T3 cells were then transformed by ts SV40 at low MOI and superinfected by wt virus at high MOI. Upon fusion with BSC-1 cells, most clones produced both ts and wt virus. These results suggest that the number of stable SV40 integration sites in the 3T3 genome is limited, since they can be saturated by transformation at high MOI. When the MOI is low, the sites are not saturated and a subsequent infection can lead to integration.

Cell Fusion↗

Mutant of polyoma virus with impaired adsorption to BHK cells.

A mutant of polyoma virus PY235 has an impaired adsorption to guinea pig red blood cells and BHK-21 hamster cells. Adsorption to 3T3 mouse cells is much less inhibited. These altered adsorption properties are responsible for the apparent inability of PY235 to cause cell transformation or hemagglutination.

Adsorption↗

Surface changes in temperature-sensitive Simian virus 40-transformed cells.

A binding assay that shows consistent differences in the amounts of tritium-labeled concanavalin A that bind to normal and virally transformed cells was used to study the kinetic changes of cell surface in SV40-transformed 3T3 cells that express the transformed phenotype in a temperature-sensitive manner (tsSV3T3 cells). The increase in concanavalin A binding, which paralleled the appearance of the characteristics of transformed cells, was dependent on the synthesis of cellular DNA. In agreement with the results of binding studies, exponentially growing tsSV3T3 cells agglutinated at much lower lectin titers (concanavalin A as well as wheat-germ agglutinin) at 32 degrees than at 39 degrees .

Agglutination↗

A temperature-sensitive mutation affecting 28S ribosomal RNA production in mammalian cells.

We have characterized a temperature-sensitive (ts) mutant of the hamster cell line BHK 21 that appears to have a defect in the processing of ribosomal RNA precursors at 39 degrees . Mutant ts 422E grows at a normal rate at 33 degrees , but upon shift to 39 degrees growth stops after about one cell doubling. The appearance of 28S rRNA and large ribosomal subunits in the cytoplasm of ts 422E at 39 degrees is inhibited by about 95%, when compared to wild-type BHK cells. Production of 18S rRNA and small ribosomal subunits is unaffected. Shift-up experiments show that the defect in 28S rRNA production can be detected as early as 2-3 hr after the shift to 39 degrees . Synthesis of the larger rRNA precursor is normal at high temperature, but the processing appears to be arrested after the formation of 32S rRNA. 32S rRNA accumulates to some extent in the nucleoli of ts 422E. ts 422E cells appear to have a single mutation, directly affecting the conversion of 32S to 28S rRNA. The reduced amount of 28S rRNA in the cytoplasm of ts 422E cells at 39 degrees seems therefore responsible for their inability to grow at this temperature.

Animals↗

Temperature-sensitive simian virus 40-transformed cells: phenomena accompanying transition from the transformed to the "normal" state.

Temperature-sensitive simian virus (SV 40)-transformed 3T3 cells (tsSV3T3), which express the transformed phenotype when growing at 32 C but not at 39 C, were used to study changes in growth behavior during shift-up or shift-down experiments. In cultures of tsSV3T3 cells which had reached or were beyond monolayer density at 32 C, DNA synthesis reached very low levels within 24 to 48 h after shift-up. When cells which had been allowed to grow to high densities at 32 C were shifted to 39 C, not only cell growth stopped, but within two to three days the cultures shed a large number of cells into the medium. These cells were nonviable, and shedding stopped only when the number of cells attached had been reduced to that characteristic of the saturation density at 39 C. The remaining attached cells were viable and after the shift to 32 C were again able to grow from the monolayer to high cell densities. This behavior has been compared with that of normal 3T3 and wild-type SV3T3 cells under different conditions. We have also isolated new tsSV3T3 lines, using cells which had been infected with non-mutagenized wild-type SV40. This further demonstrates that the temperature sensitivity of these lines is due to a cellular rather than a viral mutation.

Animals↗

Mutation causing temperature-sensitive expression of cell transformation by a tumor virus (SV40-3T3 mouse cells-growth control).

A procedure has been devised to isolate 3T3 mouse fibroblasts transformed by simian virus 40 (SV40) that express their transformed phenotype at low (32 degrees C) but not at high (39 degrees C) temperature. Three parameters typical of malignant growth in vitro: (a) high saturation density in culture, (b) ability to form colonies on monolayers of normal 3T3 cells, and (c) lack of contact inhibition of DNA synthesis, are temperature sensitive. These phenotypic changes are fully reversible. The serum requirement for growth appears to be largely unchanged by temperature. These cells seem to owe their behavior to a cellular, rather than to a viral, alteration since after fusion of the temperature-sensitive transformed cells with permissive monkey cells, a procedure that leads to rescue (i.e., multiplication of the virus), wild-type SV40 virus is produced.

Animals↗

Multiplication of polyoma virus in mouse-hamster somatic hybrids: a hybrid cell line which produces viral particles containing predominantly host deoxyribonucleic acid.

The multiplication of polyoma virus in a mouse-hamster (3T3 x BHK) somatic hybrid line (10A), which, although permissive for viral multiplication, produces very low amounts of virus, has been studied. In this cell line, the efficiency of productive infection is high, but the yield of infectious virus is on the order of 0.5% of that of 3T3 cells. The amount of viral deoxyribonucleic acid (DNA) synthesized by these cells upon infection is about 5% of that of 3T3 cells. An examination of the virus produced in hybrid 10A revealed that it was only one-tenth as infectious as the virus grown in 3T3. Although the viral DNA synthesized in the infected 10A cells is normal, the DNA extracted from purified virus grown in 10A consists of approximately 10% of normal, supercoiled polyoma DNA molecules and of approximately 90% linear DNA molecules with a sedimentation coefficient of 14 to 16S. These DNA molecules appear to be of cellular origin but contain a limited amount of viral DNA sequences. The host DNA-containing particles are not infectious but appear to possess some biological activity; they give rise to a weak complementation effect, and part of them are able to induce T-antigen synthesis. In addition, the host DNA present in these particles is predominantly that which has been synthesized after infection. The correlation between the block in viral DNA synthesis in this cell line and the abnormal encapsidation of host DNA is discussed.

Animals↗