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T Graf

Publications and source records attributed to T Graf.

At least 145 records · Page 8Linked to original sources

Myeloblasts transformed by the avian acute leukemia virus E26 are hormone-dependent for growth and for the expression of a putative myb-containing protein, p135 E26.

Avian leukemia virus E26 contains the myb oncogene and transforms erythroid and myeloid hematopoietic cells in vivo and in vitro. E26-transformed nonproducer myeloblasts but not avian erythroleukemia virus (AEV)-transformed erythroblasts nor MC29-transformed macrophages were shown to be dependent for growth on factor(s) present in supernatants from Concanavalin A-stimulated chicken spleen cells. The same factor enhanced the synthesis of p135 E26, the candidate transforming protein of E26, but did not induce the synthesis of the transforming proteins of AEV and MC29 viruses nor that of helper virus-derived structural proteins. P135 E26 was shown to contain sequences related to the viral gag gene as well as sequences which may be related to the myb gene product. P135 E26 might constitute the first example of a viral onc protein whose synthesis is regulated directly or indirectly by an exogenous hematopoietic growth factor.

Animals↗

Erythroblast cell lines transformed by a temperature-sensitive mutant of avian erythroblastosis virus: a model system to study erythroid differentiation in vitro.

A continuous chicken erythroblast cell line transformed by the temperature-sensitive mutant ts34 of avian erythroblastosis virus was developed. This cell line, designated HD3, could be induced to terminally differentiate by shift to the nonpermissive temperature. The differentiated cells resembled erythrocytes as judged by morphology, expression of hemoglobin as determined by benzidine staining and radioimmunoassay, and by the expression of differentiation-specific cell surface antigens. Terminal differentiation was dependent on an erythropoietin-like activity present in anemic chicken serum. In contrast, induction of differentiation in the same cells by butyric acid was erythropoietin independent and did not lead to the formation of erythrocytes. In addition, we found that the responsiveness to temperature inducibility and to butyric acid could be dissociated in variant sublines of HD3 and that both types of differentiation inducers appear to act via different pathways.

Alpharetrovirus↗

Hormone-dependent terminal differentiation in vitro of chicken erythroleukemia cells transformed by ts mutants of avian erythroblastosis virus.

Chicken erythroblast cell strains and a cell line transformed by ts mutants of avian erythroblastosis virus (AEV) terminally differentiate when shifted to the nonpermissive temperature (42 degrees C). The differentiated cells resemble mature erythrocytes with respect to morphology and ultrastructure, expression of differentiation-specific cell-surface antigens, pattern of protein synthesis and hemoglobin content. Terminal differentiation is dependent on conditions favoring the differentiation of normal erythroid progenitor cells, including an erythropoietin-like factor. Colonies of ts AEV cells grown at 42 degrees C semisolid medium resemble erythrocyte colonies derived from normal erythroid progenitor cells. The colonies obtained were comparable in size or slightly larger than the late erythroid precursor (CFU-E) colonies. These results suggest that AEV-transformed cells are blocked at a stage of differentiation that is more advanced than that of the uninfected target cells. ts AEV cells are irreversibly committed to terminal differentiation within 20 to 30 hr after shift to 42 degrees C.

Alpharetrovirus↗

Temperature-sensitive changes in the structure of globin chromatin in lines of red cell precursors transformed by ts-AEV.

Chicken bone marrow cells infected in vitro with a temperature-sensitive avian erythroblastosis virus fall to produce hemoglobin at 36 degrees C. When the product or products of the transforming gene (erb) are inactivated by a temperature shift to 42 degrees C in culture, several different cloned lines of cells infected with the temperature-sensitive avian erythroblastosis virus begin to make hemoglobin. This shift in phenotype correlates with an increase in hemoglobin mRNA specific to both adult and embryonic alpha and beta globin. The switch is accompanied by the acquisition of DNAase I-hypersensitive sites in one cell line (clone 2); however, a hypothetically more mature line (clone 3) has already acquired globin DNAase-hypersensitive sites but does not express hemoglobin until the temperature shift. Several (but not all) specific restriction sites associated with both the alpha and beta domains become unmethylated after the switch from 36 degrees C to 42 degrees C. The magnitude of these methylation switches is small compared with changes that occur in these genes during normal avian erythropoiesis. The results suggest that changes in chromosomal structure precede transcription and are not a consequence of transcription. Since (presumptive) precursor cloned lines can be established with some, but not all, of the structural properties of active globin chromatin, it is likely that many of these properties can be independently established and are not obligatorily related.

Alpharetrovirus↗

Transformation of both erythroid and myeloid cells by E26, an avian leukemia virus that contains the myb gene.

E26 and avian myeloblastosis virus are replication-defective avian retroviruses that contain the myb oncogene and cause leukemia in chickens with short periods of latency. Animals infected with E26 develop erythroleukemia and also contain low numbers of transformed myeloid cells, while avian myeloblastosis virus induces a purely myeloid leukemia. In both cases the type of leukemia induced is independent of the subgroup of the helper virus used. E26-transformed erythroid and myeloid cells can each be propagated selectively from explanted leukemic cells with media supplemented with factors that promote the growth either of normal chicken erythroid precursors or of myeloid progenitor cells. E26 also induces the outgrowth of transformed cells from bone marrow cells infected in vitro. These cells are also either erythroid or myeloid, depending on the culture conditions employed. Most of the erythroid cells transformed by E26 are erythroblast-like, but a significant number are more mature, including erythrocyte-like cells as well as some cells that appear to be aberrant in differentiation. Both erythroid and myeloid E26-transformed cells produce infectious virus and express P135 E26, the putative (gag-myb-x) transforming protein of the virus. Thus E26 is a virus that is capable of generating factor-dependent transformed cells in two different hematopoietic lineages.

Animals↗

Expression of a chicken lysozyme recombinant gene is regulated by progesterone and dexamethasone after microinjection into oviduct cells.

We transferred a chicken lysozyme gene recombinant by microinjection into primary cultures of chicken oviduct cells. The recombinant gene is a fusion between the lysozyme promoter, including 1.4 kb of upstream sequences, and the coding region of the gene for SV40 T antigen (plys-T). The expression of plys-T is stimulated by the steroid hormones progesterone and dexamethasone, but not by estradiol. The number of oviduct cells expressing coinjected or separately injected control genes is not increased by steroids. A deletion mutant lacking the lysozyme sequences between -161 and +15 does not express T antigen, indicating that transcription of plys-T starts within the lysozyme promoter region. By screening different cell types we found that microinjected plys-T is expressed in chicken oviduct cells but not in chicken macrophages or fibroblasts or in rat II fibroblasts.

Animals↗

Recovery of myc-specific sequences by a partially transformation-defective mutant of avian myelocytomatosis virus, MC29, correlates with the restoration of transforming activity.

Avian myelocytomatosis virus MC29 transforms fibroblasts and macrophages in vitro. Recently we isolated three deletion mutants of MC29 that have a decreased ability to transform macrophages while retaining their capacity to transform fibroblasts. One of these mutants, MC29 td10H, on passage through chicken embryo cultures gave rise to a recovered virus MC29 10H B1, which has regained the ability to transform macrophages efficiently. Immunoprecipitation analysis of MC29 10H B1-infected cells revealed a 108,000-dalton gag-myc polyprotein as opposed to the 90,000-dalton protein of MC29 td10H or the 110,000-dalton polyprotein of wtMC29. Tryptic peptide mapping studies demonstrated that the 108,000-dalton protein had acquired v-myc peptides that were lost from the td10H 90,000-dalton polyprotein and two novel peptides. Restriction enzyme analysis of the MC29 10H B1 proviral DNA also showed that myc sequences had been acquired. These results suggest that MC29 td10H has recombined with c-myc sequences to generate a recovered virus, MC29 10H B1.

Animals↗

Interferon inhibits establishment of fibroblast infection with avian retroviruses.

Pretreatment of chick embryo fibroblasts (CEF) with low doses of homologous interferon (16 u/ml) drastically inhibits cell transformation by, and replication of Rous sarcoma virus (RSV). Treatment of chick cells with 16 u/ml of interferon before de novo infection with a transformation defective (td) mutant-RSV, also resulted in a reduction of extracellular virus particles. This was determined by infectivity titrations, virus associated reverse transcriptase (RT) activity and measurement of metabolically radioactively labelled virus particles. The viral proteins pr 180, pr 76, p 27, p 19 and p 12 were still synthesized in interferon-treated cells in an unaltered form, although at slightly reduced levels. No difference in the pattern of structural proteins could be detected between virus particles harvested from cells treated with interferon and from control cells. In contrast to de novo infected cells, concentrations of interferon as high as 200 u/ml had no influence on the reversible transformation of cloned fibroblasts infected with a temperature sensitive mutant of RSV. In addition, fibroblasts infected with td-SR-RSV-D before addition of interferon showed only a marginal effect on formation of infectious virus even after treatment with 200-500 u/ml of interferon. This was not caused by interferon-resistance of the td-SR-RSV-D infected cells since viral protein synthesis by superinfecting Vesicular stomatitis virus (VSV) was as sensitive to interferon as in cells not preinfected with retrovirus. Our results support the notion that exogenous infection of fibroblasts with avian retrovirus is inhibited by interferon during an early phase of the replication cycle.

Animals↗

Expression of embryonic haemoglobin in tsAEV-transformed embryonic erythroid cells during temperature-induced differentiation.

Cells prepared from 1-day-old chick blastoderms were infected with a temperature-sensitive mutant of avian erythroblastosis virus (tsAEV). Clonal strains of transformed erythroblasts were isolated from the infected blastoderm cells. By shift to the nonpermissive temperature, these cells could be induced to differentiate into erythrocyte-like cells which expressed embryonic haemoglobins. Embryonic haemoglobins could not be detected in tsAEV-transformed erythroblasts from adult bone marrow when induced to differentiate under the same conditions. In contrast to normal primitive erythrocytes, tsAEV-infected embryonic erythroblasts differentiated in vitro expressed also adult haemoglobin. These results suggest an influence of the haematopoietic environment on the switch from embryonic to adult erythrocytes.

Alpharetrovirus↗

Cell transformation by avian defective leukaemia viruses.

A comparative study of seven independently isolated defective leukaemia viruses has been carried out. Phenotypic analysis of the chicken bone marrow cells transformed in vitro allowed the separation of these seven viruses into three groups based on the differentiation phenotype of the transformed cell. Nucleic acid hybridization studies revealed that these seven viruses had acquired cellular sequences. Interestingly, these studies also showed that the viruses within the same biological grouping had acquired related sequences. This indicates that viruses that have acquired the same or similar cellular sequences have very similar oncogenic capabilities. Analysis of proteins expressed in cells transformed by these viruses demonstrated that the cellular sequences were usually inserted within the gene for the viral core proteins, gag. Therefore the cellular sequences are expressed as a gag-related fusion protein which has an amino-terminal region derived from the gag gene and a carboxy-terminal half derived from the cellular sequences. Two exceptions to this are discussed. The general conclusion from these studies is that defective leukaemia viruses transform cells by virtue of acquired host cellular sequences. The ability of these viruses to transform cells and the target cell specificity of the transformation depends on these cellular sequences.

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