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Growth-related alterations induced in chick embryo fibroblasts by src-gene deletion mutants of the Schmidt-Ruppin strain of Rous sarcoma virus.

Certain tdSRD viruses induce multilayered cell foci, agar colony formation, and increased density of cellular populations in line-15 chick embryo fibroblasts. These alterations in cellular growth properties are distinct from oncogenic transformation. Available evidence favors the idea that transformation-defective focus formation is caused by one or more of the replicative viral genes, but which of the three-gag, pol, or env-is involved, remains to be determined.

Animals↗

Immune response to the src gene product in mice bearing tumors induced by injection of avian sarcoma virus-transformed mouse cells.

A single subcutaneous injection of 10(7) live cells of the highly tumorigenic avian sarcoma virus (Schmidt-Ruppin strain, subgroup D)-transformed BALB/c line into BALB/c mice resulted in the production of an antiserum specific for the avian sarcoma virus gene product pp60src. All sera taken from mice 3 weeks after injection of tumor cells contained antibodies to pp60src. Immunoprecipitation experiments showed that all sera precipitated pp60src from Schmidt-Ruppin-infected chicken cells, but only a portion of these sera precipitated pp60src from chicken cells infected with other strains of avian sarcoma virus, i.e., Prague and Bratislava-77. Analysis of the cross-reactivity patterns of these antisera demonstrated a minimum of three to four antigenic determinants on pp60src. The findings reported here should facilitate the production of monoclonal antibodies to pp60src, which in turn will provide highly specific probes for further investigations into the structure and function of this protein.

Animals↗

[A member of the SRC gene family, the c-erbB-1 gene, is closely related to the EGF receptor gene].

An avian erythroblastosis virus, AEV-H, induces both erythroblastosis and sarcomas in susceptible chickens. Since AEV-H carries the v-erbB as a sole oncogene, the erbB gene was suggested to be responsible for the induction of these tumors. Analysis of the amino acid sequence predicted from the nucleotide sequence of the v-erbB gene revealed that the gene product has a domain characteristic for tyrosine kinase. Recently in has been suggested has the v-erbB protein is a part of the chicken EGF (epidermal growth factor) receptor. Using antibody against either v-erbB protein or EGF receptor, we also demonstrated close similarity between the two proteins. Further studies on human genomic DNA revealed that the c-erbB-1 gene, a proto-oncogene of the v-erbB gene, is the EGF receptor gene. We were also able to identify the c-erbB-2 gene that seems to code for a EGF receptor-like protein with a domain for tyrosine kinase. Finally, we would like to show that cell lines established from human squamous cell carcinom are frequently associated with amplification of the c-erbB-1/EGF receptor gene.

Alpharetrovirus↗

Selective effect of Rous sarcoma virus src gene expression on contractile protein synthesis in chick embryo myotubes.

Myogenic precursor cells were infected with a temperature-sensitive mutant of Rous sarcoma virus and maintained at the permissive temperature for transformation. Following subculture, a population of cells was produced which failed to differentiate at the permissive temperature but produced a high proportion of myotubes in sister cultures shifted to the nonpermissive temperature. The myotube-containing cultures were further enriched for this cell type by the addition of 1-beta-D-arabinofuranosylcytosine to kill replicating mononucleated cells. This myotube population was suitable for testing the effect of viral-transforming gene expression in a postmitotic, terminally differentiated cell which expresses relatively low levels of the cellular homologue of the viral-transforming gene and is resistant to infection by the virus. The consequence of shifting these Rous sarcoma virus-infected myotube cultures to the permissive temperature was assessed in terms of protein synthesis. The total rate of incorporation of exogenous radioactive leucine, supplied at a concentration which saturated the intracellular pool, was similar between cultures held at the two temperatures, suggesting that the absolute rate of total protein synthesis was not affected by expression of viral-transforming gene. In contrast, the rate of synthesis of eight proteins the expression of which is specific for myotubes was suppressed reversibly. The rate of synthesis of five other proteins which are not selectively concentrated in myotubes was either unaffected or stimulated. Thus. the expression of viral-transforming gene in myotubes leads to differential effects on developmentally regulated proteins without inducing several properties of the transformed state classically observed for fibroblastic cells.

Animals↗

Molecular cloning and characterization of the chicken gene homologous to the transforming gene of Rous sarcoma virus.

Four molecular clones containing DNA homologous to the Rous sarcoma virus transforming gene (src) have been isolated from a random library of normal chicken DNA. The four clones are distinct overlapping isolates, which together span approximately 33 kb of cellular DNA. The clones locus appears to represent the major region of chicken DNA homologous to src, since src-containing restriction fragments of this locus account for the fragments detected by hybridization of src-specific probe to restriction digests of total chicken DNA. Analysis of the cloned chicken src locus by restriction and heteroduplex mapping indicates that the locus contains 1.6-1.9 kb of DNA homologous to the viral src gene. The chicken DNA sequences homologous to viral src are interrupted by five or six nonhomologous regions, totaling approximately 6 kb, which presumably represent introns in the cellular src gene.

Animals↗

Src proteins/src genes: from sponges to mammals.

The genome of marine sponge Suberites domuncula, a member of the most ancient and most simple metazoan phylum Porifera, encodes at least five genes for Src-type proteins, more than, i.e., Caenorhabditis elegans or Drosophila melanogaster (two in each). Three proteins, SRC1SD, SRC2SD and SRC3SD, were fully characterized. The overall homology (identity+similarity) among the three S. domuncula Srcs (68-71%) is much lower than the sequence conservation between orthologous Src proteins from freshwater sponges (82-85%). It is therefore very likely that several src genes/proteins were already present in the genome of Urmetazoa, the hypothetical metazoan ancestor. We have identified in the S. domuncula expressed sequence tags (ESTs) database further Src homology 2 (SH2) and 3 (SH3) domains that are unrelated to protein tyrosine kinases (PTKs). Src-related SH2 and SH3 domains from different species are much more conserved than SH2 and SH3 domains from different proteins in the same organism (S. domuncula), supporting the view that the common, ancestral src gene was already a multidomain protein composed of SH3, SH2 and tyrosine kinase (TK) domains. Two S. domuncula src genes were fully sequenced: src1SD gene has six and src2SD gene only one intron in front of SH2 domain, located at the same position in both genes. All vertebrate src genes, from fish to human, originated from the same ancestral gene, because they all have 10 introns at conserved positions. However, src genes in invertebrates have fewer introns that are located at different positions. Only the intron in front of the SH2 domain is present at the absolutely conserved position (and phase) in all known src genes, indicating that at least this intron was already present in the ancestral gene, common to all Metazoa. Our results also suggest that TK domain in this ancestral src was encoded on a single exon.

Amino Acid Sequence↗

Detection of the viral sarcoma gene product in cells infected with various strains of avian sarcoma virus and of a related protein in uninfected chicken cells.

Genetic analyses have defined a single gene (src) as that portion of the avian sarcoma virus (ASV) genome which encodes the protein directly responsible for ASV-induced neoplastic transformation. We have recently identified the polypeptide product of the src gene of the Schmidt-Ruppin (SR) strain of ASV, a 60,000-dalton phosphoprotein designated pp60(src), and have further determined that pp60(src) acts as a protein kinase. Essential to the identification and characterization of the pp60(src) protein of SR-ASV was the use of serum (TBR serum) from rabbits bearing SR-ASV-induced tumors. TBR serum was, however, strain specific, recognizing pp60(src) from SR-ASV-transformed cells only. We report here that sera from marmosets bearing tumors induced by the Bryan or SR strains of ASV (TBM sera) contain antibody which precipitates the transforming gene product from cells transformed by the SR, Bryan, Prague, or Bratislava strains of ASV. In contrast, rabbits bearing tumors induced by either the Bratislava or Bryan strains of ASV, or hamsters with SR-ASV-induced tumors did not produce antibody to pp60(src) from any strain of ASV. The 60,000-dalton polypeptides immunoprecipitated with TBM serum from cells transformed by each of the above virus strains are phosphoproteins. One-dimensional peptide mapping by limited proteolysis revealed that the pp60(src) proteins are structurally very similar, but not identical. Furthermore, all of the viral pp60(src) proteins have an associated phosphotransferase activity. In addition to detecting the viral src proteins, TBM serum was able to immunoprecipitate an antigenically related protein from normal uninfected avian cells.

Animals↗

Construction of plasmids for expression of Rous sarcoma virus transforming protein, p60src, in Escherichia coli.

We have constructed plasmids that direct the synthesis of the Rous sarcoma virus transforming gene (src) product (p60src) in Escherichia coli. A 203-base-pair lac promoter-operator DNA encoding the first eight amino acids of beta-galactosidase was ligated to the 5' end of the src gene from the Prague A strain of Rous sarcoma virus (PrA-RSV) which had been cloned in pBR325. Antiserum, from a tumor-bearing rabbit, directed against pp60src was used to screen bacteria containing the recombinant plasmid for a protein of approximately 60,000 daltons, and several colonies producing a protein immunologically related to pp60src were detected. Partial proteolytic cleavage analysis revealed that the src-related protein produced in bacteria is structurally similar to pp60src immunoprecipitated from PrA-RSV-infected chicken cells. Partially purified src protein from E. coli can be phosphorylated in vitro by the catalytic subunit of cAMP-dependent protein kinase. Tryptic phosphopeptide analysis demonstrated that the catalytic subunit phosphorylated a serine-containing tryptic peptide in the bacterial src protein that comigrated with the phosphoserine-containing tryptic peptide of pp60src immunoprecipitated from 32P-labeled PrA-RSV-infected chicken cells.

Avian Sarcoma Viruses↗

Identification of a Rous sarcoma virus transformation-related protein in normal avian and mammalian cells.

Avian sarcoma viruses (ASV) contain a gene (src) whose protein product mediates sarcomagenic transformation. This product is a 60,000-Mr phosphoprotein designated pp60src. We have found that normal uninfected frog, chicken, rat, and human cells contain a 60,000-Mr phosphoprotein related to the product of the ASV src gene and have designated that protein pp60. A phosphoprotein of similar size was not detectable in Drosophila cells. The pp60 proteins were detected by immunoprecipitation with rabbit antitumor serum containing broad spectrum antibodies to pp60src. Peptide maps of [35S]methionine-labeled pp60 and pp60src indicated major similarities as well as some differences in amino acid composition. Peptide maps of the 32P-labeled proteins demonstrated that the phosphopeptides of all endogenous pp60 molecules tested were identical. However, some differences were noted between the phosphopeptide patterns of pp60 and viral pp60src. The kinase activity associated with pp60src was measured in the immunocomplex and resulted in the transfer of radioactive phosphorus from [gamma-32P]ATP to the immunoglobulin heavy chain as well as to an 80,000-Mr phosphoprotein. The pp60 of chicken, rat, and human origin also contained an associated kinase activity. These results are consistent with the notion that the pp60 molecules are the protein products of endogenous sarc sequences found in vertebrate cells.

Amino Acid Sequence↗

Transcriptional downregulation of the retina-specific QR1 gene by pp60v-src and identification of a novel v-src-responsive unit.

The embryonic avian neuroretina (NR) is part of the central nervous system and is composed of various cell types: photoreceptors and neuronal and Müller (glial) cells. These cells are derived from proliferating neuroectodermal precursors which differentiate after terminal mitosis and become organized in cell strata. Proliferation of differentiating NR cells can be induced by infection with Rous sarcoma virus (RSV) and requires the expression of a functional v-src gene. To understand the mechanisms involved in the regulation of neural cell growth and differentiation, we studied the transcriptional regulation of QR1, a gene specifically expressed in postmitotic NR cells. Transcription of this gene is detected primarily in Müller cells and is strongly downregulated by the v-src gene product. Moreover, QR1 expression takes place only during the late phase of retinal development and is shut off abruptly at hatching. We have isolated a promoter region(s) of the QR1 gene that confers v-src responsiveness. By transfection of QR1-CAT constructs into quail NR cells infected with the temperature-sensitive mutant of RSV, PA101, we have identified a v-src-responsive region located between -1208 and -1161 upstream of the transcription initiation site. This sequence is able to form two DNA-protein complexes, C1 and C2. Formation of complex C2 is specifically induced in cells expressing an active v-src product, while formation of C1 is detected mainly in nonproliferating quail NR cells upon pp60v-src inactivation. C1 is also a target for regulation during development. We have identified the DNA binding site for the C1 complex, a repeated GCTGAC sequence, and shown that mutations in this element abolish binding of this factor as well as transcription of the gene at the nonpermissive temperature. Neither formation of C1 nor that of C2 seems to involve factors known to be targeted in the pp60v-src cascade. Our data suggest that C1 could be a novel target for both developmental control and oncogene-induced cell growth regulation.

Actins↗