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Biomedical subjects

R Slomski

Publications and source records attributed to R Slomski.

30 records · Page 2Linked to original sources

Immunity to murine leukemia induced in susceptible mice by transfected mouse fibroblasts.

A cultured cell line of mouse fibroblasts was transfected with DNA from murine leukemia cells expressing a previously characterized tumor-associated antigen. Antigen-positive cells were used as immunogens in an immunotherapy protocol to determine if they stimulated resistance to the malignant proliferation of the leukemia in susceptible mice. For the experiments, LM(TK-) mouse fibroblasts, a thymidine kinase-deficient mouse cell line, were cotransfected with DNA from ASL-1 murine leukemia cells and the plasmid pSV2neo conferring resistance to Geneticin. Integration of the plasmid into cellular DNA was confirmed by restriction digest blot analysis. A/J mice, highly susceptible to the malignant proliferation of passively transferred ASL-1 leukemia cells, were immunized with the transfected cells. Animals receiving two prior injections of antigen-positive transfected cells and then challenged with an injection of viable ASL-1 cells survived longer than animals in the unprotected control group or in the group receiving immunizations with LM(TK-) cells transfected with plasmid only (p less than 0.01). Some of the mice appeared to have rejected the tumor and lived more than 80 days. One group of protected animals rechallenged with a second injection of ASL-1 cells, 40 days after the first, survived for more than 50 additional days, without evidence of recurrent disease.

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Leukemia X fibroblast hybrid cells prolong the lives of leukemic mice.

ASL-1 leukemia X LM(TK-) fibroblast hybrid cells prolong the livers of leukemic (A/JXC3H/HeJ)F1 mice. The hybrid cells, like the fibroblast cells used in forming the hybrid, have lost malignant growth properties in immunocompetent recipients and are rejected. Mice receiving hybrid cells along with ASL-1 cells exhibit immunity toward the leukemia cells; approximately 50% of the animals injected with 10(6) or more hybrid cells along with ASL-1 cells survive more than 60 days; animals in the control group injected with leukemia cells alone invariably die in shorter intervals. The immunity generated is persistent for at least 6 months. Some leukemic mice receiving doses of combination chemotherapy which are insufficient to cure them of the disease survive for prolonged and at times indefinite periods if they are injected with hybrid cells. The immunity generated in mice receiving hybrid cells is directed toward a leukemia-associated antigen of leukemia cells expressed by hybrid cells as well. In mixed lymphocyte culture a heightened stimulation of spleen cells from hybrid cell-injected mice toward ASL-1 cells is observed.

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Surface antigens of immunoprotective leukaemia x fibroblast hybrid cells which have lost malignant properties in histocompatible mice differ from the malignant parental cells.

Somatic hybrids of ASL-1 leukaemia cells and LM(TK-) fibroblast cells, established mouse cell lines, are rejected by immunocompetent histocompatible mice; however, they grow progressively in nude mice and proliferate indefinitely in vitro. Mice rejecting such hybrid cells exhibit immunity toward ASL-1 leukaemia cells, used as one of the parents in forming the hybrid. In histocompatible recipients, ASL-1 cells are highly malignant, but LM(TK-) cells are rejected. Several distinguishing characteristics in the properties of the surface antigens of the three cell types are described. ASL-1 cells and hybrid cells but not LM(TK-) cells form an antigenically cross-reactive leukaemia-associated antigen; however, it is not detected on the surface membranes of ASL-1 cells taken directly from leukaemic mice. The antigen becomes apparent after short-term culture of the cells. Serum from leukaemic animals, unlike specific antibodies, has no effect upon the expression of the leukaemia-associated antigen of either hybrid or ASL-1 cells. Hybrid cells form a 'second' antigen, foreign to F1 mice, which can be distinguished from the leukaemia-associated antigen of ASL-1 cells. It is not detected on either parental cell. The leukaemia-associated antigen of ASL-1 cells is more readily digested by each of three proteases used than the analogous antigen of hybrid cells. The heightened immunogenic properties of hybrid cells is reflected by the observation that spleen cells from mice injected with hybrid cells undergo extensive proliferation in short-term in vitro culture, with or without an added specific stimulus.

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Estimation of the number of genes specifying the heavy chain of mouse thymus leukemia antigens.

We have investigated the number of structural genes present in ASL-1 cells, a murine leukemia cell line which encodes the heavy chain of thymus leukemia (TL) antigens, a protein which is similar to the Class I histocompatibility antigens. TL-specific messenger RNA was purified from polysomes of ASL-1 cells by immunoprecipitation, and this messenger RNA translated in vitro to produce a Mr 42,000 protein which comigrated on acrylamide gel with nonglycosylated TL heavy chain. A 32P-labeled complementary DNA (cDNA) was synthesized by reverse transcription of the TL-specific messenger RNA as template. Analysis of reassociation kinetics of the 32P-TL-cDNA with DNA from ASL-1 cells showed that the kinetics was indistinguishable from that obtained using a DNA encoding a single-copy gene (C mu). An analysis was performed in which DNA from ASL-1 cells was subjected to digestion with each of three restriction enzymes and hybridized with 32P-TL-cDNA according to the Southern "blot" technique. Two bands formed hybrids with the 32P-TL-cDNA with each of three restriction enzymes used. These data are consistent with the presence of a small number of structural genes for the TL heavy chain in the genome of ASL-1 leukemia cells.

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Small nuclear RNAs synthesis in PHA-stimulated and nonstimulated human peripheral blood lymphocytes.

Five fractions of small nuclear RNAs (snRNAs) were identified in nuclei of human peripheral blood lymphocytes. They have been designated as: H, G', D, C and A (nomenclature according to Weinberg) in order to decreasing electrophoretic mobility. Their synthesis was observed from the first day of treatment with mitogen and was continued with different intensity during four days of culture. In nonstimulated lymphocytes exclusively A and G' fractions were detected but no (14C)-uridine incorporation was observed.

Cells, Cultured↗

Isolation and cell-free translation of messenger ribonucleic acids specifying thymus-leukemia antigens.

Messenger ribonucleic acid (mRNA) for thymus-leukemia antigens, membrane-associated glycoproteins of murine leukemia cells, was obtained from polysomes of murine leukemia cells forming thymus-leukemia antigens. Polysomes forming thymus-leukemia antigens were recovered by immunoprecipitation using alloantibodies specific for the 1,2,3 determinants of the thymus-leukemia antigen complex before they were extracted with phenol-detergent. Poly(adenylic acid)-containing RNA [poly(A)-RNA] was fractionated by oligo[deoxythymidylate] [oligo(dT)]-cellulose chromatography. The mRNA obtained had a sedimentation coefficient of approximately 17 S in agreement with the predicted size necessary for forming proteins specifying thymus-leukemia antigens. In a wheat germ system, the polypeptides formed upon addition of mRNA for thymus-leukemia antigens consisted of a major product with a molecular weight of 42,000. It was larger than the nonglycosylated heavy chain molecule of 40,000 daltons formed by the cells themselves. On the cell surface thymus-leukemia antigens exist as glycosylated molecules of 47,000 daltons associated with a light-chain equivalent to beta 2-microglobulin. Molecules of 40,000 daltons were isolated from the cells cultured in the presence of tunicamycin, an inhibitor of de novo glycosylation, and by treating thymus-leukemia heavy chains with endo-beta-N-acetylglucosaminidase H.

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Studies of interaction of immune RNA with normal spleen cells.

Normal mouse spleen cells incorporate in vitro radioactively labeled immune RNA. At saturation, 10(6) cells incorporate about 6 X 10(16) daltons of this RNA. Immune RNA is incorporated in two times greater amounts than control RNA. Maximum incorporation is observed in the first few minutes of incubation. Immune RNA incorporated by spleen cells is present both in cytoplasm and nuclei. Protamine sulphate has stimulatory effect on immune RNA incorporation. Actinomycin D does not affect incorporation of immune RNA.

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Nuclear RNA in the mouse spleen at the peak of primary immune response.

Electrophoretic studies on nuclear RNA extracted from the spleens of immunized mice are reported. RNA was extracted by the phenol-detergent procedure from the purified nuclei of spleen cells at the peak of primary immune response after a single immunization with sheep red blood cells. The kinetics of labeling in vivo with 32P-orthophosphate indicate an accelerated biosynthesis of the ribosomal RNA precursors, 28S, 18S, 5S and 4S fractions of nuclear RNA in the spleens of immunized mice.

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Cytoplasmic RNA in the mouse spleen at the peak of primary immune response.

Results of studies on the synthesis of different fractions of cytoplasmic RNA in the spleens of immunized mice at the peak of primary immune response are reported. RNA was extracted by the phenol-detergent procedure from the cytoplasm of spleen cells of mice immunized with sheep red blood cells. The kinetics of labeling in vivo with 32P-orthophosphate indicate an accelerated biosynthesis and transport from nucleus to cytoplasm of 28S, 18S and 4S fractions of RNA.

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Induction of antibody synthesis in vitro by immunogenic RNA.

Spleen cells (SpC) from nonimmunized CFW mice were converted into antibody plaque-forming cells (PFC) by incubation with RNA extracted from livers and spleens of immunized mice (4 days after a single intravenous injection of 0.2 ml of 5% sheep red blood cells (SRBC). RNA was extracted by the phenol-detergent procedure only when sensitization determined by the technique of Jerne showed at least one PFC per 1,500 SpC. Immunogenic activity of RNA from lives of immunized mice was identical with that of RNA from spleens. Immunogenic RNA was inactivated by RNase but not by DNase or pronase, indicating that induction of antibody synthesis requires intact RNA. Newly synthesized antibodies were specific for the SRBC injected antigen; plaques did not occur when other RBC were used in place of SRBC for the in vitro test. The influence of antibiotics on this phenomenon is also discussed.

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Molecular genetic analysis of 67 patients with Duchenne/Becker muscular dystrophy.

A total of 56 Duchenne muscular dystrophy (DMD) patients and 11 Becker muscular dystrophy (BMD) patients was analyzed by extended "multiplex" amplification of the DMD/BMD gene; deletions were found in 60% of these patients. The data obtained were used to test the frameshift hypothesis and to compare the distribution of familial versus isolated cases. A significant correlation was found between deletions and isolated cases. Additional experiments were performed in order to determine the deletion breakpoints more precisely. These data are a prerequisite for carrier analysis in the respective families by detection or exclusion of aberrant cDNA fragments derived from ectopic lymphocyte RNA. This diagnostic technique is illustrated by 5 examples.

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