The 5.2-kilobase (kb) RNA genome of avian carcinoma virus MH2 has the genetic structure 5'-delta gag (0.2 kb)- mht (1.2 kb)-myc (1.4 kb)-c (0.4 kb)-poly(A) (0.2 kb)-3'. delta gag is a partial retroviral core protein gene, mht and myc are cell-derived MH2-specific sequences, and c is the 3'-terminal retroviral vector sequence. Here we have determined the nucleotide sequence of 3.5 kb from the 3' end of delta gag to the 3' end of molecularly cloned proviral MH2 DNA, in order to elucidate the genetic structure of the virus and to compare it with other mht - and myc-containing oncogenic viruses as well as with the chicken proto-myc gene. The following results were obtained: (i) delta gag- mht forms a hybrid gene with a contiguous reading frame of 2682 nucleotides that terminates with a stop codon near the 3' end of mht . The 3' 969 nucleotides of mht up to the stop codon are 80% sequence related to the onc-specific raf sequence of murine sarcoma virus 3611 (94% homologous at the deduced amino acid level). (ii) The myc sequence is preceded by an RNA splice acceptor site shared with the cellular proto-myc gene, beyond which it is colinear up to a 3'-termination codon and 40 noncoding nucleotides with the myc sequences of avian retrovirus MC29 and chicken proto-myc. Thus, myc forms, together with a 5' retroviral exon, a second MH2-specific gene. (iii) myc is followed by the 3'-terminal c region of about 400 nucleotides, which is colinear with that of Rous sarcoma virus except for a substitution near the 5' end of the long terminal repeat. It is concluded that MH2 contains two genes with oncogenic potential, the delta gag- mht gene, which is closely related to the delta gag-raf transforming gene of MSV 3611, and the myc gene, which is related to the transforming gene of MC29. Furthermore, it may be concluded that the cellular proto-onc genes, which on sequence transduction become viral onc genes, are a small group because among the 19 known onc sequences, 5 are shared by different taxonomic groups of viruses of which the mht /raf homology is the closest determined so far.
Also flagged:antibodiesbone-Gla proteinosteonectinchloramineantibodybone-Gla
Journal Article1984-05-01No SnippetsStenner DD, Romberg RW, Tracy RP, Katzmann JA, Riggs BL, Mann KG.
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Hybridoma technology was used for preparation of murine monoclonal antibodies of high titer against bone-Gla protein and osteonectin. A procedure of immunization and hybridization similar to that already described [Katzmann, J.A., Nesheim, M.E., Hibbard, L.S. & Mann, K.G. (1981) Proc. Natl. Acad. Sci. USA 78, 162-166; and Foster, W.B., Katzmann, J.A., Miller, R.S., Nesheim, M.E. & Mann, K.G. (1982) Thromb. Res. 28, 649-661] was used. However, in contrast to earlier studies, mice were immunized with an unfractionated protein mixture that had been extracted from bone under nondenaturing conditions. The extract was labeled with 125I by the chloramine-T method. After fusion and initial hybrid growth, screening was accomplished by a solid-phase radioimmunoassay with total 125I-labeled bovine bone protein extract as the tracer. The identities of antibody-bound 125I-labeled proteins were assessed by dissolution of the solid-phase immune complex in NaDodSO4 and subsequent electrophoresis and autoradiography. Clones producing specific antibody to a single protein were selected by limiting dilution. The identity of the proteins against which the specific antibodies were produced was confirmed by immunoprecipitation, electrophoresis, and autoradiography. From two fusions, 30 positive hybrids to bone-Gla protein were identified; 7 of these were subcloned and 1 has been expanded as an ascites tumor. One hybrid population was positive for osteonectin, a Mr 15,000 peptide, and for bone-Gla protein. By limiting dilution, the osteonectin clone was selected and subsequently expanded as an ascites tumor. Titration curves made using the respective 125I-labeled purified proteins show the ascites tumors to be producing antibody of high titer (I50 = 10(-6) for anti-bone-Gla protein and (I50 = 10(-5) for antiosteonectin. Both of the antibovine antibodies are cross-reactive with the corresponding human protein. Immobilized specific anti-bone-Gla protein has been used to isolate human bone-Gla protein from an EDTA extract of human cortical bone. Thus, this method offers the possibility of developing a complete library of monoclonal antibodies against these and other bone-specific proteins.
…monocytes from treatedhemochromatosispatients was normal.…
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Transferrin-iron uptake by peripheral blood monocytes was studied in vitro to test the hypothesis that the relative paucity of mononuclear phagocyte iron loading in hereditary hemochromatosis results from a defect in uptake of iron from transferrin. Monocytes from nine control subjects and 17 patients with hemochromatosis were cultured in the presence of 59Fe-labelled human transferrin. There was no difference in 59Fe uptake between monocytes from control subjects and monocytes from patients with hemochromatosis who had been treated by phlebotomy and who had normal body iron stores. However, 59Fe uptake by monocytes from iron-loaded patients with hemochromatosis was significantly reduced compared with either control subjects or treated hemochromatosis patients. It is likely that this was a secondary effect of iron loading since iron uptake by monocytes from treated hemochromatosis patients was normal. Assuming that monocytes in culture reflect mononuclear phagocyte iron metabolism in vivo, this study suggests that the relative paucity of mononuclear phagocyte iron loading in hemochromatosis is not related to an abnormality in transferrin-iron uptake by these cells.
Also flagged:antithrombin IIIglucosylceramidelipoproteinslipoprotein
Journal Article1984-05-01✓ 2 SnippetsChatterjee S, Bell WR, Kwiterovich PO.
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Abstract)
…the distribution ofantithrombin-IIIand glucosylceramide (Glc-Cer)…
Abstract)
…does not impairantithrombin-IIIactivity.…
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We have investigated the distribution of antithrombin-III and glucosylceramide (Glc-Cer) in human plasma, plasma lipoproteins and lipoprotein-deficient plasma. Antithrombin III activity was measured employing immunochemical and biological assays. Glc-Cer was quantified by gas liquid chromatography (GLC). Whole plasma contained 145 micrograms antithrombin III/ml plasma, all of which was associated with the lipoprotein-deficient plasma (d greater than 1.25 g/ml). Whereas, most if not all the plasma GlcCer was associated with plasma low density lipoproteins (LDL) (d-1.022-1.055 g/ml) and high density lipoproteins (HDL) (d-1.063-1.25). GlcCer was not found in the lipoprotein-deficient plasma. We conclude that GlcCer on lipoproteins does not contribute to antithrombin III activity. Moreover, the absence of GlcCer in lipoprotein-deficient plasma does not impair antithrombin-III activity.