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env Gene of chicken RNA tumor viruses: extent of conservation in cellular and viral genomes.

The env gene of avian sarcoma-leukosis viruses codes for envelope glycoproteins that determine viral host range, antigenic specificity, and interference patterns. We used molecular hybridization to analyze the natural distribution and possible origins of the nucleotide sequences that encode env; our work exploited the availability of radioactive DNA (cDNA(gp)) complementary to most or all of env. env sequences were detectable in the DNAs of chickens which synthesized an env gene product (chick helper factor positive) encoded by an endogenous viral gene and also in the DNAs of chickens which synthesized little or no env gene product (chick helper factor negative). env sequences were not detectable in DNAs from Japanese quail, ring-necked pheasant, golden pheasant, duck, squab, salmon sperm, or calf thymus. The detection of sequences closely related to viral env only in chicken DNA contrasts sharply with the demonstration that the transforming gene (src) of avian sarcoma viruses has readily detectable homologues in the DNAs of all avian species tested [D. Stehelin, H. E. Varmus, J. M. Bishop, and P. K. Vogt, Nature (London) 260: 170-173, 1976] and in the DNAs of other vertebrates (D. Spector, personal communication). Thermal denaturation studies on duplexes formed between cDNA(gp) and chicken DNA and also between cDNA(gp) and RNAs of subgroup A to E viruses derived from chickens indicated that these duplexes were well matched. In contrast, cDNA(gp) did not form stable hybrids with RNAs of viruses which were isolated from ring-necked and golden pheasants. We conclude that substantial portions of nucleotide sequences within the env genes of viruses of subgroups A to E are closely related and that these genes probably have a common, perhaps cellular, evolutionary origin.

Alpharetrovirus↗

Spontaneous conversion of nontransformed avian sarcoma virus-infected rat cells to the transformed phenotype.

Normal rat kidney (NRK) fibroblasts were infected with the Schmidt-Ruppin strain (SR-D) of avian sarcoma virus (ASV) and cloned 20 h after infection without selection for the transformed phenotype. Most infected clones initially exhibited the flat, nontransformed morphology that is characteristic of uninfected NRK cells. In long-term culture, however, the majority of the SR-D NRK clones began segregating typical ASV-transformed cells. Transforming ASV could be rescued by fusion with chicken embryo fibroblasts from most of the infected clones tested. Three predominantly flat, independently infected clones were further analyzed by subcloning 8 to 10 weeks after infection. Most flat progeny subclones derived at random from two of these "parental" SR-D NRK clonal lines did not yield virus upon fusion with chicken embryo fibroblasts, although a nondefective transforming ASV was repeatedly recovered from the parental clones. This observation suggested that most, but not all, daughter cells in these SR-D NRK clones lost the ASV provirus after cloning. The progeny of the third independent parental cell clone, c17, gave rise to both flat and transformed subclones that carried ASV. In this case, ASV recovery by fusion and transfection from the progeny subclones was equally efficient regardless of the transformation phenotype of the cells. The 60,000-dalton phosphoprotein product of the ASV src gene was, however, expressed at high level only in the transformed variants. The results of a Luria-Delbruck fluctuation analysis and of Newcombe's respreading test indicated that the event leading to the spontaneous conversion to the transformed state occurred at random in dividing cultures of these flat ASV NRK cells at a rate predicted for somatic mutation.

Animals↗

Catalytic activity and transformation potential of v-Src require arginine 385 in the substrate binding pocket.

Tyrosine kinase are important mediators of signal transduction in eukaryotic cells. In order to better understand the mechanism of catalysis we studied a set of mutants of the prototype tyrosine kinase, the c-Src protein, a homologue of the Rous Sarcoma virus oncogene. Based on an X-ray structure of cAMP-dependent protein kinase (cAPK) we mutated an arginine residue conserved in subdomain VI of all known kinases to a non-charged residue. This residue coordinates phosphate of the autophosphorylation site located in subdomain VII of cAPK and this interaction has been proposed to be crucial for substrate binding. The mutant R385A of c-Src had low kinase activity towards exogenous substrates yet was able to autophosphorylate at tyrosine 416. When introduced into an activated v-src gene the R385A mutation totally blocked cell transformation. Our data suggest that the function of the conserved arginine 385 is to coordinate the phosphate of the autophosphorylation site and to provide in this way a stable template for substrate binding.

3T3 Cells↗

[Studies on the changes in calcium fluxes in ts-RSV LA 90 cells transformation].

To study the role of Ca2+ fluxes and [Ca2+]i in cell transformation by the v-src gene, ts-RSV LA 90 cells was used in this experiment. Ca2+ fluxes across the plasma membrane was measured with radioisotopes. The relative [Ca2+]i in LA 90 cells loaded Indo-1AM was measured by computer-based Optical Multichannel Analyzer connected with fluorescence microscopy. It was observed that changes in rate of Ca2+ fluxes across the plasma membrane are one of the earliest detectable changes of LA 90 cells transformation. Rates of Ca2+ fluxes in transformed LA 90 cells (40 degrees C) is higher than that in normal LA 90 cells (33 degrees C) and rates of Ca2+ fluxes increased in 25 minutes when LA 90 cells shifted from nonpermissive (40 degrees C) to permissive (33 degrees C) temperature. TMB-8 inhibited increases in rate of Ca2+ efflux induced by pp 60 v-src, and increase in rate of Ca2+ efflux in normal LA 90 cells was stimulated by calf serum. The rate of Ca2+ efflux was related to the changes in temperature. The increase in rate of Ca2+ influx induced by pp 60 v-src could be blocked by verapamil. The rate of Ca2+ influx was not affected by the changes in temperature. The increase in relative [Ca2+]i induced by pp 60 v-src is one of the early events in the transformation process. The level of [Ca2+]i in transformed LA 90 cells was about 2-3 times as much as that in normal LA 90 cells.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

An N-terminal peptide from p60src can direct myristylation and plasma membrane localization when fused to heterologous proteins.

The src gene product, p60src, of Rous sarcoma virus (RSV) is a tyrosine-specific protein kinase which is associated with the plasma membrane of infected cells. Myristic acid is bound in an amide linkage to glycine 2 of p60src. Of the N-terminal 30 kilodaltons of p60src, only amino acids 1-14 are required for myristylation, and myristylation of p60src may be required for its membrane association, and for cell transformation. To test the hypothesis that the first 14 amino acids of p60src contain a recognition sequence for myristylation, we have fused the DNA sequence coding for these amino acids to either the fps gene of the F36 derivative of Fujinami sarcoma virus (FSV), or to the chimpanzee alpha-globin gene. We report here that although the fusion proteins were myristylated, the parental proteins were not, and unlike the non-myristylated F36 p91fps which was not bound to the plasma membrane, the myristylated fusion protein was bound, like p60src. We conclude that the first 14 amino acids of p60src contain a sequence which is sufficient for myristylation, and which may direct proteins to the plasma membrane.

Amino Acid Sequence↗

Inhibition by quercetin of the release of density dependent-inhibition of cell growth in RSV-transformed chicken cells.

The expression of src gene in dense cultures of chick embryo fibroblasts (CEF) infected by a thermosensitive mutant (NY68) of RSV released density-dependent inhibition of growth and induced in these cells a large increase in DNA, RNA and protein synthesis. This stimulation of cellular metabolism was abolished in the presence of quercetin. Furthermore, quercetin added to the culture medium also inhibited the stimulation of pp60src kinase due to the expression of transformation.

Animals↗

The purified product of the transforming gene of avian sarcoma virus phosphorylates tyrosine.

The product of the avian sarcoma virus transforming gene (src) is a phosphoprotein of 60,000 daltons (pp60src) which is responsible for the oncogenic potential of the virus. Recent findings indicate that this protein possesses an affiliated protein kinase activity. We have determined by hydrodynamic measurements and gel filtration that this kinase activity tracks with a highly asymmetric molecule of 60,000 daltons, strengthening the idea that pp60src alone (as opposed to a complex) possesses the enzymatic activity. To more fully characterize the properties of this kinase activity, we undertook its purification by two independent methods. In each case, a protein related to pp60src was extensively purified from contaminating cellular proteins. The yields from one of the procedures were sufficient to induce high titer monospecific antibodies against pp60src in mice. We have shown that purified pp60src is able to phosphorylate several protein substrates other than IgG. The conclusion that pp60src possesses the responsible enzymatic activity was strengthened by demonstrating that a temperature-sensitive conditional mutation in src affected the thermal stability of the purified protein. It has recently been shown that the protein kinase activity affiliated with pp60src phosphorylates tyrosine residues on IgG. We have examined the target specificity of the purified protein on several substrates other than IgG, and show that in every case, the phosphorylation occurs exclusively at a tyrosine residue; it therefore appears that tyrosine phosphorylatin is not an artifact of phosphorylation in th immunoprecipitate, but instead represents the general substrate specificity of pp60src.

Alpharetrovirus↗

Functional domains of the pp60v-src protein as revealed by analysis of temperature-sensitive Rous sarcoma virus mutants.

Four temperature-sensitive (ts) Rous sarcoma virus src gene mutants with lesions in different parts of the gene represent three classes of alteration in pp60src. These classes are composed of mutants with (i) heat-labile protein kinase activities both in vitro and in vivo (tsLA27 and tsLA29), (ii) heat-labile kinases in vivo but not in vitro (tsLA33), and (iii) neither in vivo nor in vitro heat-labile kinases (tsLA32). The latter class indicates the existence of structural or functional pp60src domains that are required for transformation but do not grossly affect tyrosine kinase activity.

Amino Acids↗

The amino-terminal region of pp60c-src has a modulatory role and contains multiple sites of tyrosine phosphorylation.

The c-src gene product from either platelet-derived growth factor treated cells or from polyomavirus-infected cells migrates anomalously on gels, displays enhanced kinase activity, and contains additional sites of tyrosine phosphorylation within its amino-terminus. To probe the importance of these post-translational modifications, each of the five amino-terminal tyrosine residues (residues 90, 92, 131, 136, and 149) was altered to phenylalanine using site-directed mutagenesis. Except for the 136F variant, the mutants displayed enhanced kinase activity, albeit at a low level shown insufficient to induce focus formation in NIH3T3 cells. Mutagenesis of residues adjacent to tyrosines 90 and 92 also resulted in variants with enhanced kinase activity indicating that the region and not the tyrosines per se, may be involved in regulating this activity. Fingerprinting analysis demonstrated that the enhanced kinase activity brought about by these mutations occurred through a mechanism which appears to be independent of the phosphorylation state of Tyr 416 and possibly Tyr 527. Upon treatment of cells with vanadate both amino-terminal variants and transforming mutants of pp60c-src displayed a slower migrating form, designated p60+. Hence, the appearance of these p60+ proteins may be elicited either by mutations that enhance the transforming activity of pp60c-src or by perturbations within the amino-terminal region of the enzyme. The retarded mobility of p60+ was shown to be due in part to additional tyrosine phosphorylations residing at its amino-terminus. The demonstration that p60+ could be resolved into multiple bands and that amino-terminal fragments containing phosphorylated tyrosine residues were obtained regardless of which of the five tyrosines in the region was altered to phenylalanine indicates that there are multiple sites of tyrosine phosphorylation within the amino-terminal region of pp60c-src.

Amino Acid Sequence↗

Tyrosine phosphorylation and src family kinases control keratinocyte cell-cell adhesion.

In their progression from the basal to upper differentiated layers of the epidermis, keratinocytes undergo significant structural changes, including establishment of close intercellular contacts. An important but so far unexplored question is how these early structural events are related to the biochemical pathways that trigger differentiation. We show here that beta-catenin, gamma-catenin/plakoglobin, and p120-Cas are all significantly tyrosine phosphorylated in primary mouse keratinocytes induced to differentiate by calcium, with a time course similar to that of cell junction formation. Together with these changes, there is an increased association of alpha-catenin and p120-Cas with E-cadherin, which is prevented by tyrosine kinase inhibition. Treatment of E-cadherin complexes with tyrosine-specific phosphatase reveals that the strength of alpha-catenin association is directly dependent on tyrosine phosphorylation. In parallel with the biochemical effects, tyrosine kinase inhibition suppresses formation of cell adhesive structures, and causes a significant reduction in adhesive strength of differentiating keratinocytes. The Fyn tyrosine kinase colocalizes with E-cadherin at the cell membrane in calcium-treated keratinocytes. Consistent with an involvement of this kinase, fyn-deficient keratinocytes have strongly decreased tyrosine phosphorylation levels of beta- and gamma-catenins and p120-Cas, and structural and functional abnormalities in cell adhesion similar to those caused by tyrosine kinase inhibitors. Whereas skin of fyn-/- mice appears normal, skin of mice with a disruption in both the fyn and src genes shows intrinsically reduced tyrosine phosphorylation of beta-catenin, strongly decreased p120-Cas levels, and important structural changes consistent with impaired keratinocyte cell adhesion. Thus, unlike what has been proposed for oncogene-transformed or mitogenically stimulated cells, in differentiating keratinocytes tyrosine phosphorylation plays a positive role in control of cell adhesion, and this regulatory function appears to be important both in vitro and in vivo.

Animals↗

Role of the mitogenic property and kinase activity of p60src in tumor formation by Rous sarcoma virus.

Expression of the src gene of Rous sarcoma virus in chicken embryo neuroretinal cells results in morphological transformation and sustained proliferation of this normally resting cell population. PA101 and PA104 are two mutants of Rous sarcoma virus which induce neuroretinal cell proliferation in the absence of morphological transformation. Their mitogenic property is temperature sensitive, and they both encode p60src proteins with low kinase activity. To study the role of the mitogenic function and protein kinase activity of p60src in tumorigenesis, we investigated the oncogenicity of PA101 and PA104. Both mutants were less tumorigenic than wild-type virus when injected into chicks. Tumorigenicity was further assayed by inoculating infected chicken embryo fibroblasts and neuroretinal cells onto the chorioallantoid membrane of embryonated duck eggs. This system provides a nonpermissive and immunodeficient environment for xenogenic cell grafting and allows the study of cell tumorigenicity within a temperature range of 37 to 39.5 degrees C. Chicken embryo fibroblasts and neuroretinal cells infected with PA101 were as tumorigenic as wild type-infected cells at 37 degrees C, but tumor development was significantly reduced at 39.5 degrees C. In contrast, both cell types infected with PA104 displayed sharply reduced tumorigenicity. Cell cultures derived from PA101 tumors induced on the chorioallantoid membrane were similar to the corresponding cells maintained in vitro in terms of morphology, production of plasminogen activator, relative amounts of phosphotyrosine in total cellular proteins, and phosphorylation of 34,000-molecular-weight protein. These results indicate that the expression of the mitogenic function of src does not account per se for cell tumorigenicity and that tumor formation is compatible with low levels of p60src protein kinase activity.

Animals↗

Phosphotyrosine-containing proteins and expression of transformation parameters in cells infected with partial transformation mutants of Rous sarcoma virus.

We have examined the phosphorylation state of five proteins known to become phosphorylated on tyrosine during transformation by Rous sarcoma virus by using cells infected with a panel of partially transforming mutant viruses. Situations of viral mutant and growth temperature were found in which phosphorylation of some proteins occurred more extensively than that of others, indicating that mutations in the src gene had affected the specificity of pp60src for some of its substrates as well as affecting the activity of the enzyme. To obtain insight into the biological functions of these phosphorylations, comparisons were made between the degree of phosphorylation of these proteins and the expression of various indicators of the transformed phenotype. The data suggest that phosphorylation of proteins l, p, and q (Mr of 46,000, 39,000 and 28,000, respectively) is not sufficient to induce changes in adhesiveness, hexose transport or morphology. The phosphorylation of protein p or l or total phosphotyrosine content correlated well with the production of plasminogen activator, and the phosphorylation of proteins l and q correlated well with increased hexose transport. However, even when good correlations were observed, significant exceptions were sometimes noted. It thus remains possible that some phosphorylations on tyrosine observed in Rous sarcoma virus-transformed cells are not causally related to the expression of the measured parameters of transformation.

Animals↗

Characterization of partially activated p60c-src in chicken embryo fibroblasts.

Previous studies identified the amino acid changes involved in the activation of p60c-src and revealed that the activation accompanies an alteration of its tyrosine-phosphorylation site. We show here that p60c-src that had been converted to transforming protein by amino acid substitution of the c-src gene either at position 63, 95 and 96, or 338 (J. Kato, T. Takeya, C. Grandori, H. Iba, J. B. Levy, and H. Hanafusa, Mol. Cell. Biol. 6:4155-4160, 1986) and encoded in a Rous sarcoma virus variant was phosphorylated on both Tyr-416 and Tyr-527 in chicken embryo fibroblasts. The results obtained from protease V8 analysis, tryptic peptide mapping, and fractionation with nonionic detergent indicated that the p60 of each variant was present in two forms in the population of the virus-infected cells; one was phosphorylated on Tyr-416, and the other was phosphorylated on Tyr-527. On the other hand, colonies isolated in soft agar contained exclusively p60 of which only Tyr-416 was phosphorylated. These results implied that the limited population of p60 was activated in these Rous sarcoma virus variant-infected chicken embryo fibroblasts and that the activated p60 was concentrated in transformed cells. Furthermore, these two forms of p60 differed in their affinity for the detergent-insoluble cellular matrix in spite of their identical primary amino acid sequences, suggesting that the effect of alteration of the tyrosine phosphorylation site was coupled with the degree of stability of this association.

Animals↗

Enhanced activity of a large conductance, calcium-sensitive K+ channel in the presence of Src tyrosine kinase.

Large conductance, calcium-sensitive K(+) channels (BK(Ca) channels) contribute to the control of membrane potential in a variety of tissues, including smooth muscle, where they act as the target effector for intracellular "calcium sparks" and the endothelium-derived vasodilator nitric oxide. Various signal transduction pathways, including protein phosphorylation can regulate the activity of BK(Ca) channels, along with many other membrane ion channels. In our study, we have examined the regulation of BK(Ca) channels by the cellular Src gene product (cSrc), a soluble tyrosine kinase that has been implicated in the regulation of both voltage- and ligand-gated ion channels. Using a heterologous expression system, we observed that co-expression of murine BK(Ca) channel and the human cSrc tyrosine kinase in HEK 293 cells led to a calcium-sensitive enhancement of BK(Ca) channel activity in excised membrane patches. In contrast, co-expression with a catalytically inactive cSrc mutant produced no change in BK(Ca) channel activity, demonstrating the requirement for a functional cSrc molecule. Furthermore, we observed that BK(Ca) channels underwent direct tyrosine phosphorylation in cells co-transfected with BK(Ca) channels and active cSrc but not in cells co-transfected with the kinase inactive form of the enzyme. A single Tyr to Phe substitution in the C-terminal half of the channel largely prevented this observed phosphorylation. Given that cSrc may become activated by receptor tyrosine kinases or G-protein-coupled receptors, these findings suggest that cSrc-dependent tyrosine phosphorylation of BK(Ca) channels in situ may represent a novel regulatory mechanism for altering membrane potential and calcium entry.

Animals↗

Effect of orthovanadate on commitment of avian myoblasts transformed with Rous sarcoma virus to myogenic differentiation.

Myogenic differentiation of quail myoblasts transformed with a temperature-sensitive mutant of Rous sarcoma virus (QM-RSV cells) depends on the temperature: at 35.5 degrees C, the permissive temperature for the virus, the transformed myoblasts proliferate, without fusion, but at 41 degrees C, the nonpermissive temperature, they become committed to myogenic differentiation until about 10 h and then myoblast fusion occurs within 24 h. This temperature dependency of the differentiation reaction is derived from protein kinase activity of src gene product. Thus, at 41 degrees C, the differentiation proceeds with dephosphorylation of the proteins. For further clarification of relationship between the protein phosphorylation and the control of differentiation, the events during differentiation were examined using inhibitors of tyrosine kinase and phosphatase, respectively. To examine the role of phosphotyrosyl protein phosphatases in skeletal muscle differentiation, these cells were treated with sodium orthovanadate, a potent inhibitor of the enzyme. The treatment with the drug inhibited myoblast fusion and creatine kinase activity of the cells at 41 degrees C, with inhibition of tyrosine dephosphorylation. Moreover, the treatment of the cells with vanadate for 12 h at 41 degrees C, followed by the removal of the drug resulted in myoblast fusion after the lag time about 12 h. On the other hand, herbimycin A was needed to acquire the fusion commitment at 35.5 degrees C. These results are suggestive evidence to reflect that tyrosine dephosphorylation is a key step in commitment of QM-RSV cells to myogenic differentiation. Examination of the tyrosine phosphorylated proteins indicated that vanadate mainly inhibited the dephosphorylations of 70-, 58-, and 38-kDa proteins, suggesting that these proteins may be closely associated with the steps involved in commitment to myogenic differentiation.

Animals↗

Transformation parameters and pp60src localization in cells infected with partial transformation mutants of Rous sarcoma virus.

Rous sarcoma virus (RSV)-induced transformation is mediated by the action of the viral src gene product pp60src. This transforming protein is found at several cytoplasmic locations, including the adhesion plaques of RSV-transformed cells. In these studies, we have focused on the adhesion plaque location of pp60src and determined whether any of the induced transformation parameters correlate with the presence of pp60src in the adhesion plaques. A series of partial transformation mutants of RSV that induce distinct transformation phenotypes were used, and infected chicken embryo cells were examined for (i) intracellular pp60src location, (ii) vinculin localization, (iii) abundance of phosphotyrosine on vinculin, (iv) integrity of stress fibers, and (v) expression of cell surface fibronectin. The results indicate that, among the limited number of mutants studied here, the presence of pp60src in adhesion plaques is independent of growth in soft agar and the increased phosphorylation of vinculin on tyrosine, but it does correlate with the loss of cell surface fibronectin. An elevated abundance of phosphotyrosine on vinculin is insufficient to cause stress fiber dissolution and is independent of the loss of fibronectin from the extracellular matrix. However, the increased relative amount of phosphotyrosine on vinculin is related to the ability of the cells to grow in soft agar. The adhesion plaque binding and tyrosine-specific kinase activities seem to represent two independent functions of pp60src.

Animals↗

A murine recombinant retrovirus containing the src oncogene transforms erythroid precursor cells in vitro.

A murine retrovirus (MRSV) containing the src gene of Rous sarcoma virus has been shown to cause an erythroproliferative disease in mice (S. M. Anderson and E. M. Scolnick, J. Virol. 46:594-605, 1983). We now demonstrate that this same virus can transform erythroid progenitor cells in vitro. Infection of fetal liver cells or spleen and bone marrow cells from phenylhydrazine-treated adult mice gave rise to colonies of erythroid cells which grew in methylcellulose under conditions not favorable for the growth of normal erythroid cells. The presence of pp60src in the transformed erythroid cells was demonstrated by an immune complex protein kinase assay. The time course of appearance and subsequent differentiation of erythroid colonies indicated that the target cell for MRSV was a 6- to 8-day burst-forming unit. Differentiation of the erythroid progenitors was not blocked by the presence of pp60src, and the cells retained sensitivity to the hormone erythropoietin. In fact, the transformed cells exhibited increased hormone sensitivity since the number, the size, and the extent of hemoglobinization of the colonies were all increased by the addition of small amounts of erythropoietin. MRSV was not susceptible to restriction by the Fv-2 locus, as MRSV could transform hematopoietic cells from C57BL/6 mice. These results indicate that (i) the erythroid proliferation observed in vivo is caused by a direct effect of MRSV on erythroid progenitors and (ii) the transformed erythroid precursors acquire a growth advantage over uninfected cells without losing the ability to differentiate and respond to physiologic regulators.

Animals↗

Dissection of the antigenic determinants expressed on the cell surface of RSV-transformed fibroblasts by monoclonal antibodies.

Fusion of P3/X63-Ag8 mouse myeloma cells with splenocytes obtained from mice hyperimmunized with a BHK hamster fibroblast line transformed by an env-strain of Rous sarcoma virus (RSV) resulted in the production of antibody-secreting hybridomas. Seven hybrid clones secreted antibodies binding to RSV-transformed BHK fibroblasts but not to the parental control non-transformed line. The antibodies produced by three of these clones did identify antigenic determinants expressed also on BHK cells transformed by SV 40. The antibodies produced by four other clones reacted specifically with cells transformed by RSV but not with cells productively infected by the transformation-defective Rous-associated virus-1; one of these reacted with RSV-transformed hamster cells only, three others identified antigenic determinants common to RSV-transformed cells of different animal species. These data give further support to the idea that RSV-transformed cells express a cell-surface antigen, specific for transformation, the expression of which is controlled by the transforming src gene, and that the specificities carried on it follow a complex pattern, arising from the interaction between antigenic determinants of cellular and viral origin.

Animals↗