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T Curran

Publications and source records attributed to T Curran.

At least 199 records · Page 11Linked to original sources

Stimulation and inhibition of growth by EGF in different A431 cell clones is accompanied by the rapid induction of c-fos and c-myc proto-oncogenes.

Stimulation of quiescent fibroblasts to growth by polypeptide growth factors is accompanied by the rapid induction of c-fos and c-myc proto-oncogenes. In contrast to fibroblasts, A431 cells respond to epidermal growth factor (EGF) with a decreased growth rate. Here we report that, in spite of its growth inhibitory effect, EGF rapidly induces transient expression of c-fos mRNA, followed by the synthesis of nuclear c-fos protein. In addition, EGF treatment resulted in elevated levels of c-myc expression. Practically identical results were obtained with variant A431 clones that are resistant to the inhibitory effect of EGF on cell proliferation. These observations suggest that in A431 cells c-fos and c-myc induction is a primary consequence of growth factor-receptor interaction. Indeed, efficient induction of both genes was also observed with cyanide bromide-cleaved EGF, which has previously been shown to be non-mitogenic but able to trigger early events induced by EGF. We observed strong induction of c-fos and to a lesser extent of c-myc also by TPA, and by the calcium ionophore A23187, indicating an important role for kinase C in proto-oncogene activation by growth factors.

Calcimycin↗

Extended life span and tumorigenicity of nonestablished mouse connective tissue cells transformed by the fos oncogene of FBR-MuSV.

We have analyzed the transforming potential of two fos oncogene products in nonestablished cultures of mouse connective tissue cells: p55fos of FBJ-MuSV and p75gag-fos of FBR-MuSV. Although both proteins induced morphological transformation and colony formation at low cell density in a G418 resistance selection assay, p75gag-fos exhibited more pronounced transforming potential than p55fos. In addition, p75gag-fos-transformed cells overcame crisis with a high probability and were tumorigenic in syngenic mice. These properties of the FBR-MuSV appear to be linked to structural alterations in the p75gag-fos oncogene product. Polyoma virus large T protein complemented the transforming potential of fos, in that it not only increased the probability of establishment of fos-transformed cells but also enhanced fos-induced morphological transformation. Our results suggest that different oncogenes affect morphological transformation, low cell density growth, establishment, and tumorigenicity to various degrees.

Animals↗

Removal of a 67-base-pair sequence in the noncoding region of protooncogene fos converts it to a transforming gene.

Transformation of fibroblasts by protooncogene fos (c-fos) requires the linkage of viral long terminal repeat (LTR) sequences and interruption of 3'-noncoding sequences. We have identified an A + T-rich stretch of 67 nucleotides, located 627-693 base pairs downstream from the coding domain and 123-189 base pairs upstream from the putative poly(A) addition site, removal of which confers transforming activity to the c-fos gene. A novel regulation of the expression of the c-fos gene is proposed, which may be functional in vivo to prevent the gene from becoming an oncogene.

Animals↗

Deletion of the gag region from FBR murine osteosarcoma virus does not affect its enhanced transforming activity.

Both FBJ murine osteosarcoma virus (FBJ-MSV) and FBR-MSV induce transformation in tissue culture and osteogenic sarcomas in mice. In tissue culture, however, FBR-MSV induces larger foci with a shorter latency than those induced by FBJ-MSV. Transformation is dependent on expression of the fos oncogene in FBJ-MSV and of a gag-fos fusion protein in FBR-MSV. We have determined that the gag sequences can be deleted from FBR-MSV without affecting the high transforming activity of this virus in comparison to FBJ-MSV. The resultant virus, designated FBJ/R-MSV, has a protein coding region that is half the size of that of FBR-MSV and about one-third smaller than that of FBJ-MSV. Thus, FBJ/R-MSV will provide a useful tool for studying the transforming activity of the fos oncogene.

Animals↗

Viral and cellular fos proteins are complexed with a 39,000-dalton cellular protein.

The structure of viral and cellular fos gene products and their association with a 39,000-dalton cellular protein (p39) were investigated by using antisera raised against synthetic peptides. The first peptide, termed M, corresponded to amino acids 127 to 152 of the v-fos sequence, a region which is identical in c-fos. The second peptide, termed V, corresponded to the nine C-terminal amino acids of v-fos; this region is not present in c-fos. Rabbit antisera were purified by affinity chromatography against their respective peptides before being used for immunoprecipitation. M peptide antisera precipitated p55v-fos and p55c-fos, whereas V peptide antisera precipitated only p55v-fos. This observation confirms the prediction from nucleotide sequence analysis that these proteins are distinct at their C termini. p39 was precipitated in association with p55v-fos and p55c-fos by M and V peptide antisera. However, V peptide antisera did not precipitate p39 from cells expressing p55c-fos, even though the presence of p39 in such cells was demonstrated with M peptide antisera. Denaturation of cell lysates completely abolished the precipitation of p39, whereas the precipitation of p55v-fos was unaffected. Taken together, the data demonstrate that p39 exists in a complex with p55.

Amnion↗

Transient induction of c-fos and c-myc in an immediate consequence of growth factor stimulation.

Treatment of serum-deprived fibroblasts with serum or growth factors results in an immediate induction of the c-fos and c-myc proto-oncogenes. Maximal levels of c-fos mRNA are detected 30 minutes after treatment and maximal levels of c-myc mRNA are detected 60 minutes after treatment. The c-fos protein is expressed at high levels for about two hours following induction, yet the cell morphology remains normal. Thus, either an extended period of c-fos expression is required for cellular transformation, or the highly modified form of the fos protein, present in stimulated cells, is biochemically different from the transforming protein and is therefore not capable of inducing transformation. In this system, growth factor treatment results in mitogenesis. However, c-fos and c-myc are also induced in A431 cells, and in subclones derived from A431 cells, treated with epidermal growth factor (EGF). No correlation was found between the effects of EGF on A431 cell proliferation and the induction of c-fos and c-myc. Interestingly, the strongest inducer of c-fos in A431 cells was the calcium ionophore A23187. Induction occurred in almost 100% of the treated cells without prior serum deprivation or growth arrest. Treatment of HL60 cells with 12-0 tetra decanoylphorbol-13-acetate (TPA), which promotes macrophage-like differentiation, also induced c-fos with a time course similar to that observed in mitogen-treated fibroblasts. Thus, in HL60 cells, c-fos induction is associated with differentiation. In normal macrophages c-fos and c-myc can also be induced by CSF-1. However, the kinetics of induction are entirely different from those in growth factor-stimulated fibroblasts. Taken together, the data suggest a more general role for c-fos and c-myc in the transduction of growth factor signals received at the cell membrane, within the nucleus.

Animals↗

The viability of young and old baboon red cells stored in the liquid state at 4 C.

Baboons were given intravenous injections of 50-70 microCi of 59Fe citrate to label young and old red cells. Blood subsequently collected from these animals was stored at 4 C in ACD, CPD, or CPDA-1 for up to 36 days. The 59Fe-labelled young and old red cells from the stored blood samples were labelled in vitro with 51Cr and 99mTc and then separated by counterflow centrifugation-elutriation into 7 fractions which differed in red cell volume. 59Fe-labelled young red cells were found in the fractions with the larger red cell volumes; 59Fe-labelled old red cells were found in the fractions with the smaller red cell volumes. 51Cr and 99mTc labelled young and old red cells in the 7 fractions in a similar manner. When salivary antigens were used to identify ABO compatible baboons, rapid removal of the donor red cells from the circulation was seen in 7 of the 15 homologous transfusions. This prompted us to assess compatibility from the survival of 51Cr-labelled donor red cells. In transfusions in which compatibility was identified from 51Cr T50 values of 8 days or greater, 24-hour posttransfusion survival values were similar for the 59Fe young and old red cells. Our data show that in vivo aging of red cells is a different process from that occurring with in vitro deterioration of red cells during liquid storage at 4 C.

Animals↗

FBR murine osteosarcoma virus. I. Molecular analysis and characterization of a 75,000-Da gag-fos fusion product.

The FBR murine osteosarcoma virus complex induces bone tumors with a similar latency and pathology to those induced by the FBJ virus complex. FBR murine sarcoma virus ( FBR -MSV) has been isolated from its helper virus(es) by the establishment of transformed nonproducer cells. These cells were found to express a 75,000-Da protein (P75) which was antigenically related to the p55 oncogene product of the FBJ murine osteosarcoma virus ( FBJ -MSV). P75 also contained antigenic determinants of murine leukemia virus (MLV) gag gene p15, p12, and p30 proteins, and is therefore a gag- fos fusion protein ( P75gag - fos ). P75gag - fos is a phosphoprotein and is found primarily in the nucleus. Only a single species of RNA, of 3.3 kb, was identified in FBR -MSV-transformed nonproducer cells using both fos and MLV probes, which suggested that P75gag - fos was expressed from genome-sized RNA. Chromosomal DNA from one nonproducer cell line was found to contain a single EcoRI restriction fragment of 12 kb pairs (kbp) which encompassed the FBR -MSV provirus. This DNA fragment was molecularly cloned into bacteriophage Charon 30 (lambda FBR -1), and a 7.5-kbp HindIII restriction fragment containing the entire provirus was subsequently subcloned into pBR322 ( pFBR -1). DNA from pFBR -1 was capable of inducing morphological transformation of mouse and rat fibroblasts in tissue culture. In addition, transfected cells expressed the FBR -MSV P75gag - fos protein.

Animals↗

FBR murine osteosarcoma virus. II. Nucleotide sequence of the provirus reveals that the genome contains sequences acquired from two cellular genes.

The complete nucleotide sequence of the FBR proviral DNA has been determined. The provirus of 3791 nucleotides (specifying a genome of 3284 bases) encodes a single gag- fos fusion product of 554 amino acids. The fos portion of the gene lacks the sequences which code for the first 24 and the last 98 amino acids of the 380-amino acid mouse c- fos gene product. In addition, the coding region has sustained three in-frame deletions, one in the p30gag portion, and two in the fos region, as compared to the sequences of AKR-MLV and the c- fos gene, respectively. The gene product terminates in sequences, termed v-fox, that are present in uninfected mouse DNA at loci unrelated to the c- fos gene. The c-fox gene(s) is expressed as an abundant class of polyadenylated RNA in normal mouse tissues.

Amino Acid Sequence↗

c-fos protein can induce cellular transformation: a novel mechanism of activation of a cellular oncogene.

The FBJ murine osteosarcoma virus (FBJ-MuSV) induces tumors in vivo and transformation in vitro. Transformation is due to the expression of a single viral protein (p55v-fos) which is encoded by sequences derived from mouse genetic material. The homologous cellular gene (c-fos) does not transform cultured cells after introduction by transfection. We show that even though the c-fos protein is completely different from the v-fos protein at its C terminus, it is capable of transforming cultured fibroblasts. However, activation of the transforming potential of the c-fos gene requires two manipulations--a transcriptional enhancer sequence must be linked to the gene and an interaction at the 3' end of the gene, which inhibits transformation, must be disrupted. Our studies show that normal cellular protein can induce transformation when expressed in an inappropriate cell type.

Animals↗

Viral and cellular fos proteins: a comparative analysis.

The FBJ murine osteosarcoma virus (FBJ-MuSV) induces osteosarcomas in mice and transforms fibroblasts in vitro. It contains an oncogene termed v-fos derived from a normal cellular gene by recombination with an associated helper virus. The product of the v-fos gene is a 55,000 dalton protein, p55v-fos. This protein was found in the nuclei of cells containing amplified levels of the v-fos gene, and also in the nuclei of virus-transformed cells. The c-fos protein was localized in the nuclei of normal mouse amnion cells and in the nuclei of cells transformed by a recombinant plasmid that expresses the c-fos gene product. However, p55c-fos undergoes more extensive post-translational modification in the nucleus than p55v-fos. Immunofluorescence data indicate that the level of p55c-fos in normal mouse amnion cells is similar to that found in fibroblasts transformed by the v-fos or c-fos proteins.

Amnion↗

Analysis of FBJ-MuSV provirus and c-fos (mouse) gene reveals that viral and cellular fos gene products have different carboxy termini.

The complete nucleotide sequence of the FBJ-MuSV proviral DNA and the cellular homolog (c-fos) of its oncogene (v-fos) have been determined. The 4026 nucleotide long FBJ-MuSV proviral DNA contains two long terminal repeats, a substitution of 1639 nucleotides of mouse cellular DNA (v-fos) and the 3' end of the env gene derived from FBJ-MuLV. The sequences of the parental FBJ-MuLV and the cellular c-fos (mouse) gene share five of five nucleotides at the 5' end and ten of 11 nucleotides at the 3' end of the v-fos substitution. When compared with the v-fos sequences, the c-fos gene contains four discontinuous regions, three of which are flanked by sequences characteristic of introns. Direct sequence analysis of c-fos (mouse) RNA by primer extension demonstrates that the fourth discontinuity is due to a 104 bp deletion in the v-fos gene. As a consequence of the deletion, the predicted v-fos and c-fos gene products differ at their C termini.

Amino Acid Sequence↗

Complete nucleotide sequence of a human c-onc gene: deduced amino acid sequence of the human c-fos protein.

The complete nucleotide sequence of the c-fos(human) gene, the human cellular homolog of the oncogene (v-fos) of Finkel-Biskis-Jinkins murine osteosarcoma virus, has been determined. The c-fos(human) gene contains four discontinuous regions when compared with the v-fos gene. Three of the discontinuities are flanked by sequences characteristic of introns, while the fourth discontinuity is due to a deletion of 104 base pairs in the v-fos gene. As a consequence of the deletion, the predicted c-fos(human) and v-fos gene products differ at their carboxyl termini. Transcripts of 2.2 kilobases from the c-fos(human) gene have been identified in human cells. The sizes of these transcripts are in close agreement with the size expected from the nucleotide sequence after removal of introns.

Amino Acid Sequence↗

Structure of the FBJ murine osteosarcoma virus genome: molecular cloning of its associated helper virus and the cellular homolog of the v-fos gene from mouse and human cells.

The 8.2-kilobase (kb) unintegrated circular DNA form of the FBJ murine leukemia virus (FBJ-MLV) was linearized by cleavage at the single HindIII site, molecularly cloned into bacteriophage Charon 30, and subsequently subcloned into pBR322 (pFBJ-MLV-1). Both FBJ-MLV virion RNA and pFBJ-MLV-1 DNA were used to investigate the arrangement of helper virus sequences in the FBJ murine osteosarcoma virus genome (FBJ-MSV) by heteroduplex formation with cloned FBJ-MSV proviral DNA. The results showed that the FBJ-MSV genome contained 0.8 kb of helper virus sequence at its 5' terminus and 0.98 kb at its 3' terminus. Approximately 6.8 kb of helper virus sequence had been deleted, and 1.7 kb of unrelated sequence was inserted into the FBJ-MSV genome. This substituted region contains v-fos, the transforming gene of FBJ-MSV. Using a probe specific for v-fos, we have cloned homologous sequences (c-fos) from mouse and human chromosomal DNA. Heteroduplex analysis of FBJ-MSV DNA with these recombinant clones showed that both the c-fos(mouse) and the c-fos(human) sequences hybridized to the entire 1.7-kb v-fos region. However, five regions of homology of 0.27, 0.26, 0.14, 0.5, and 0.5 kb were separated by four regions of nonhomology of 0.76, 0.55, 0.1, and 0.1 kb from 5' to 3' with respect to the FBJ-MSV genome. The size of these sequences showed striking similarity in both c-fos(mouse) and c-fos(human).

Animals↗

Candidate product of the FBJ murine osteosarcoma virus oncogene: characterization of a 55,000-dalton phosphoprotein.

Sera from rat bearing tumors induced by inoculation of FBJ murine osteogenic sarcoma virus (FBJ-MSV) nonproducer rat cells precipitate two proteins with molecular weights of 55,000 (p55) and 39,000 (p39) from FBJ-MSV-transformed cells. These proteins cannot be precipitated from uninfected cells or cells transformed by other strains of murine sarcoma virus, nor can they be precipitated by sera specific for the viral structural proteins. A methionine tryptic peptide mapping analysis showed that p55 and p39 have little or no homology and that they are not related to the helper virus gag and env gene products. p55 could also be detected among the in vitro translation products of 70S RNA from FBJ murine leukemia virus plus FBJ-MSV virions but not among those from FBJ murine leukemia virus alone. This suggests that p55 is encoded by the FBJ-MSV genome, whereas p39, which was not detected among the in vitro translation products, may not be virus encoded. Another difference between p55 and p39 is that p55 is phosphorylated, with most of the phosphate on a serine residue(s), whereas p39 is phosphorylated to a much lesser extent, if at all. No protein kinase activity was associated with p55 and p39 immune complexes under standard conditions. Our data suggest that p55 is a strong candidate for the FBJ-MSV oncogene product.

Animals↗

FBJ murine osteosarcoma virus: identification and molecular cloning of biologically active proviral DNA.

A 12.0-kilobase EcoRI restriction fragment containing FBJ murine osteosarcoma virus (FBJ-MSV) proviral DNA was identified in FBJ-MSV-transformed nonproducer rat cells and molecularly cloned in bacteriophage Charon 30 (lambda FBJ-1). A 5.8-kb HindIII fragment containing the entire FBJ-MSV proviral DNA was isolated from lambda FBJ-1 and subsequently subcloned in plasmid pBR322 (pFBJ-2). The DNA from recombinant plasmid pFBJ-2 was able to induce morphological transformation of rat fibroblasts in tissue culture. Transfected cells contained the p55 and p39 antigens specific for cells transformed by FBJ-MSV (T. Curran and N. M. Teich, J. Virol. 42:114-122, 1982). The organization of the FBJ-MSV provirus was analyzed by restriction endonuclease mapping, and a region of nonhomology with the helper virus was delineated. Sequences specific for this region (presumably the viral fos gene) were subcloned and used as a probe to identify related sequences present in the normal genomes of cells from a variety of mammalian species (cellular fos). A single-size (3.4 kilobases long) class of RNA hybridizing to the viral fos probe was identified in FBJ-MSV-transformed cells.

Animals↗

Topography of the N400: brain electrical activity reflecting semantic expectancy.

When subjects read an semantically unexpected word, the brain electrical activity shows a negative deflection at about 400 msec in comparison with the response to an expected word. In order to study the brain systems related to this effect we mapped it with a dense (64-channel) electrode array and two reference-independent measures, one estimating the average potential gradients and the other radial current density. With these measures, the event-related brain potential (ERP) begins at about 70 msec with the P1, reflecting bilateral current sources over occipitoparietal areas. A strongly left-lateralized N1 then follows, peaking at about 180 msec, accompanied by an anterior positivity, the P2. A separate posterior positive pattern then emerges that seems to repeat the topography of the P1. Next, at about 350 msec, the ERP for the congruous word develops a P300 or LPC, characterized by a diffuse positivity over the superior surface of the head and several negativities over inferior regions. This superior source/inferior sink pattern of the LPC is greater over the left hemisphere. In contrast, the ERP for the incongruous word in this interval displays the N400 as a period in which topographic features are absent. At about 400 msec the ERP for the incongruous word begins to develop an LPC, which then remains relatively symmetric over the two hemispheres.

Analysis of Variance↗