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The interaction of beta 2-microglobulin (beta 2m) with mouse class I major histocompatibility antigens and its ability to support peptide binding. A comparison of human and mouse beta 2m.

The function of major histocompatibility complex (MHC) class I molecules is to sample peptides derived from intracellular proteins and to present these peptides to CD8+ cytotoxic T lymphocytes. In this paper, biochemical assays addressing MHC class I binding of both peptide and beta 2-microglobulin (beta 2m) have been used to examine the assembly of the trimolecular MHC class I/beta 2m/peptide complex. Recombinant human beta 2m and mouse beta 2ma have been generated to compare the binding of the two beta 2m to mouse class I. It is frequently assumed that human beta 2m binds to mouse class I heavy chain with a much higher affinity than mouse beta 2m itself. We find that human beta 2m only binds to mouse class I heavy chain with slightly (about 3-fold) higher affinity than mouse beta 2m. In addition, we compared the effect of the two beta 2m upon peptide binding to mouse class I. The ability of human beta 2m to support peptide binding correlated well with its ability to saturate mouse class I heavy chains. Surprisingly, mouse beta 2m only facilitated peptide binding when mouse beta 2m was used in excess (about 20-fold) of what was needed to saturate the class I heavy chains. The inefficiency of mouse beta 2m to support peptide binding could not be attributed to a reduced affinity of mouse beta 2m/MHC class I complexes for peptides or to a reduction in the fraction of mouse beta 2m/MHC class I molecules participating in peptide binding. We have previously shown that only a minor fraction of class I molecules are involved in peptide binding, whereas most of class I molecules are involved in beta 2m binding. We propose that mouse beta 2m interacts with the minor peptide binding (i.e. the "empty") fraction with a lower affinity than human beta 2m does, whereas mouse and human beta 2m interact with the major peptide-occupied fraction with almost similar affinities. This would explain why mouse beta 2m is less efficient than human beta 2m in generating the peptide binding moiety, and identifies the empty MHC class I heavy chain as the molecule that binds human beta 2m preferentially.

Amino Acid Sequence↗

Replication of mouse-tropic and xenotropic strains of murine leukemia virus in human x mouse hybrid cells.

The replication of mouse-tropic and xenotropic strains of murine leukemia virus in human x mouse hybrid cells was investigated. NB-tropic strains of the leukemia virus replicated efficiently in several hybrid lines, including those that contained a complete complement of human chromosomes and many mouse chromosomes. In lines with only a few mouse chromosomes, NB-tropic viruses failed to replicate. N- and B-tropic viruses replicated in human x N-type and human x B-type cells, respectively. The N- and B-tropic viruses replicating in these hybrid cells retained their original tropism. The viral restrictive functions of the mouse Fv-1 locus were expressed in the hybrid cells, restricting the replication of N- and B-tropic strains in human x B-type and human x N-type mouse cells, respectively. In contrast to mouse-tropic viruses, AT-124 virus, a xenotropic strain, replicated in human but not in mouse cells or in hybrid cells containing a complete complement of human chromosomes and near complete complement of mouse chromosomes However, hybrid lines with only a few mouse chromosomes supported AT-124 replication. Thus, human genes in hybrid cells do not restrict the replication of mouse or xenotropic murine leukemia virus strains, while mouse genes in such cells restrict xenotropic leukemia virus replication and, as determined by the mouse Fv-1 phenotype, mouse-tropic murine leukemia virus. These results indicate that exogenously applied mouse-tropic and xenotropic oncornaviruses exhibit different patterns of restriction in human-mouse hybrid cells and that such hybrid cells may be used for genetic analysis of oncornavirus replication.

Animals↗

Early neurogenesis and teratogenesis in whole mouse embryo cultures. Histochemical, immunocytological and ultrastructural study of the premigratory neuronal-glial units in normal mouse embryo and in mouse embryos influenced by cocaine and retinoic acid.

Yolk sacs of postimplantation mouse embryos were cultured in a mixture of human and rat sera. The central nervous system of these cultured normal embryos was studied from the stage of 5-9 somites (approximately 8.5 postcoital days) to 20-21 somites (approximately 9.5 postcoital days) and compared with in vivo embryos at the same stages. This developmental period covers most of the neural tube closure, the early premigratory differentiation of the neuroectodermal epithelium, and the glial commitment of a population of germinative cells. The neuronal and glial elements of the in vitro cultivated embryos were found to be identical to the corresponding neural tissue in in vivo embryos (light and electron microscopic comparisons); the morphological identity between the in vivo and in vitro embryos was confirmed by morphometry and by stainings revealing the differentiation of the glial elements and precursors. The study of the neuronal-glial units in this material revealed that the fascicular organization of the radial glial cells occurs before the stage of 20 somites. When submitted to a single low dose of retinoic acid at the 7-somite stage, the expression of the epitope recognized by radial cell 2 (RC2), a glial marker, is delayed in the in vitro embryos 12-16 hours, but the glycogen and the other glial parameters mature in time. The in vitro embryos exposed to cocaine at the 7-somite stage displayed a prosencephalon remaining deprived of almost all glial cytological features during the entire culture period, although the other developmental parameters evolved normally. This in vitro whole embryo model seems to be a powerful tool for studying early neurogenesis and teratogenesis.

Animals↗

Inhibition of migration of mouse macrophages by tuberculin-sensitive mouse lymphocytes and by mouse migration inhibitory factor.

The guinea pig migration inhibition technique, an accepted in vitro correlate of delayed hypersensitivity, has been adapted to a murine system. Peritoneal exudate cells from CF-1 mice vaccinated with viable cells of the H37Ra strain of Mycobacterium tuberculosis were inhibited in vitro by purified protein derivative (PPD) or whole H37Ra microorganisms. Peritoneal exudate cells from the inbred C57Bl/6 mice immunized with H37Ra cells also were inhibited in vitro by PPD or whole H37Ra microorganisms. Migration inhibitory factor (MIF) was produced by splenic lymphocytes from the H37Ra-immunized C57Bl/6 mice when incubated with either antigen. Intravenous injection of PPD or viable H37Ra organisms into H37Ra mice resulted in MIF production in vitro by splenic lymphocytes without further antigenic stimulation. Peritoneal exudate cells from nonimmunized C57Bl/6 mice and supernatant fluids from cultures of lymphocytes from nonimmunized C57Bl/6 mice were not inhibited in the presence of antigen. The production of MIF by splenic lymphocytes from immunized C57Bl/6 mice depended upon the conditions under which the lymphocytes were cultured, the time of exposure to antigen (3 days), the use of a higher concentration of PPD for stimulation of lymphocytes than that required for guinea pig cells, and also the use of cells from a highly inbred mouse strain.

Animals↗

Experimental Borrelia burgdorferi infections in the white-footed mouse, deer mouse, and fulvous harvest mouse detected by needle aspiration of spirochetes.

Three methods were tested for recovering Borrelia burgdorferi from live mice onto BSK II culture medium. Four laboratory-reared Peromyscus leucopus were inoculated intraperitoneally with the JD-1 isolate of Borrelia burgdorferi. Borrelia burgdorferi spirochetes were recovered from 13 of 20 (65%) samples taken by needle aspiration between days 7 and 40 post-inoculation (PI) and from 1 of 16 samples of skin obtained by ear punch biopsy during the same sampling period. Spirochetes were not recovered from culture media inoculated with mouse blood. The use of needle aspirates for recovering spirochetes was compared among three species of mice: P. leucopus, P. maniculatus, and Reithrodontomys fulvescens. Spirochetes were isolated from 14 of 15 aspiration samples from four P. maniculatus, 12 of 20 from three P. leucopus, and 15 of 20 from four R. fulvescens taken between days 7 and 48 PI. Spirochetes were isolated from only one aspiration sample between days 80 and 95 PI from any of the mice tested. Needle aspiration was an efficient method for repeated recovery of B. burgdorferi from live, experimentally infected mice. We also document R. fulvescens as an experimental host for B. burgdorferi. Based on their susceptibility to infection, all species of mice tested herein may play a role in the epidemiology of Lyme disease where their distribution is compatible with endemic transmission.

Animals↗

Molecular basis of the inhibition of beta s-chain-dependent polymerization by mouse alpha-chain. Semisynthesis of chimeras of human and mouse alpha-chains.

The transgenic mouse models expressing beta s-globin genes do not fully exhibit the sickling phenotype, primarily as a result of the inhibition of beta s-chain-dependent polymerization by the mouse alpha-chains. The mouse alpha-chain differs from the human alpha-chain at 19 sequence locations. Of these, only alpha 78 and alpha 116 are the known hemoglobin (Hb) S polymer contact sites. To define whether the inhibition of polymerization by the mouse alpha-chain is solely a consequence of the differences at these two sites or additional sites of sequence differences are also involved, we have constructed chimeric alpha-chains by employing the alpha-globin semisynthetic reaction (Sahni, G., Cho, Y. J., Iyer, K. S., Khan, S. A., Seetharam, R., and Acharya, A. S. (1989) Biochemistry 28, 5456-5461). Mouse alpha 1-30 was spliced with human alpha 31-141 using endoproteinase Glu-C to generate a chimeric alpha-globin (alpha MH) containing eight of the 19 sequence differences of mouse alpha-globin. Similarly, human alpha 1-30 was spliced with mouse alpha 31-141 to generate another chimeric alpha-globin (alpha HM) containing 11 sequence differences. The respective chimeric globins were purified, reconstituted with heme and beta s-chain into tetrameric hemoglobin, and the tetramers were purified by ion-exchange chromatography. The inhibitory potential of the chimeric alpha MH-chain on the polymerization is 10-fold lower than that of the mouse alpha-chain. The absence of the alpha 31-141 region of the mouse alpha-chain relieves only a portion of the inhibition. The inhibitory potential of alpha MH contributed by the mouse alpha 1-30 segment is significant although none of the sequence differences in this segment are located at any of the implicated polymer contact sites. The chimeric alpha HM-chain also inhibits the polymerization, but the extent of inhibition is again lower (4-fold) than that of the full-length mouse alpha-chain. The results demonstrate that the inhibitory potential of mouse alpha-chains involves the sequence differences from both the alpha 1-30 and alpha 31-141 regions. Besides, since the sum of the inhibitory potential of either of these chimeric alpha-chains is lower than that of the intact mouse alpha-chains, we speculate that conformational changes that require the copresence of sequence differences in both portions of the mouse alpha-chain also contribute to the inhibitory propensity of the mouse alpha-chain.

Animals↗

Analyses of deoxycytidylate deaminase molecular forms in human-mouse and monkey-mouse somatic cell hybrids.

Disc polyacrylamide gel electrophoresis (disc PAGE) analyses have revealed that mouse, human, and monkey cytosal deoxycytidylate (dCMP) deaminases differ in electrophoretic mobility, so that mixtures of mouse and human, mouse and monkey and human and monkey enzymes can be separated. To learn whether the genes for dCMP deaminase and thymidine (dT) kinase are genetically linked, disc PAGE analyses of cytosol fractions from human-mouse and monkey-mouse somatic cell hybrids were carried out. The interspecific somatic cell hybrids were derived from the fusion of cytosol dT kinase deficient mouse cells with cytosol dT kinase-positive human and monkey cells: they contained mostly mouse chromosomes and a few primate chromosomes, including the determinant for primate cytosol dT kinase. The disc PAGE analyses demonstrated that the human-mouse and monkey-mouse somatic cell hybrids contained a dCMP deaminase activity with an electrophoretic mobility characteristic of mouse dCMP deaminase. Enzymes with electrophoretic mobilities characteristic of human and monkey dCMP deaminases were not demonstrable. these findings suggest that primate cytosol dT kinase and dCMP deaminase are coded on different chromosomes, or that the formation in hybird cells of an active primate dCMP deaminase is suppressed. Chick-mouse somatic cell hybrids containing chick but not mouse cytosol dT kinase were also analyzed, but it was not possible to establish whether the enzyme was of murine or avian origin because of the similarity in electrophoretic mobility between the chick and mouse enzymes. Human and mouse cells contained low levels of mitochondrial dCMP deaminase activity. In contrast to dT kinase isozymes, however, mitochondrial and cytosol dCMP deaminases were electrophoretically indistinguishable.

Aminohydrolases↗

Mouse allergen-specific immunoglobulin G4 and risk of mouse skin test sensitivity.

BACKGROUND: High serum levels of cat-specific IgG and IgG4 are associated with protection against allergic sensitization to cat, but whether this association applies to other animal allergens remains unclear. OBJECTIVE: To determine if high levels of mouse-specific IgG and IgG4 are associated with a decreased risk of mouse skin test sensitivity. METHODS: Two hundred and sixty workers of a mouse facility underwent skin prick testing and completed a questionnaire. Serum levels of mouse-specific IgG and IgG4 were quantified by solid-phase antigen binding assays. Room air samples were collected and airborne Mus m 1 was quantified by ELISA. RESULTS: Forty-nine participants had a positive skin prick test to mouse. Mouse-specific IgG was detected in 219 (84%) participants and IgG4 was detected in 72 (28%) participants. A detectable mouse-specific IgG4 level was associated with an increased risk of mouse skin test sensitivity (odds ratios (OR) 6.4, 95% confidence intervals (CI) 3.3-12.4). Mouse-specific IgG and IgG4 were both positively correlated with mouse allergen exposure (r(s)=0.31, P=0.0001, and r(s)=0.27, P=0.0006, respectively). The odds of skin test sensitivity peaked at moderate levels of IgG4, but decreased at the highest levels of mouse-specific IgG4. In contrast, the odds of skin test sensitivity increased monotonically with IgG levels. CONCLUSIONS: A detectable level of mouse-specific IgG4 is associated with an increased risk of skin test sensitivity to mouse. However, the highest IgG4 levels appear to be associated with an attenuated risk of mouse skin test sensitivity, suggesting that induction of high levels of IgG4 through natural exposure may protect against the development of allergic sensitization.

Adult↗

Cytotoxic activity of normal mouse serum on mouse tumor cells in vitro.

Cytotoxic effects of normal mouse serum on mouse tumor cells were investigated in vitro. When FE melanoma cells of C57BL/6 mouse origin, were cultured in medium containing 1% fetal calf serum (FCS) and 10-30% C57BL/6 mouse serum, number of viable FE cells markedly decreased after a little increase in their number, indicating cell death of FE cells in culture with mouse serum. Phase-contrast microscopic examination showed appearance of fatty degeneration in FE cells after 24 h, and an increase in cell death after 48 h. Electron microscopic examination, and agarose gel electrophoresis of DNA at 72 h of culture showed that their cell death occurred as necrosis. This cytotoxic effect of mouse serum was also found in culture of combinations of C57BL/6 mouse serum and C57BL/6 mouse melanoma cells (G6 cells), and BALB/c mouse serum and various BALB/c mouse tumor cells (G-5 and G-1 liver tumor cells, and Colon 26 cells). Furthermore, sera of BALB/c and B10D2 mice also showed the cytotoxic effect on FE cells. The cytotoxic effect of mouse serum was not ascribed to complement activity because all mouse sera were treated at 56 degrees C for 30 min before use, and this heat treatment completely abolished complement activity, and because serum of C5-deficient mice also showed the cytotoxic effect. This cytotoxic activity was stable at heat treatment at 100 degrees C for 10 min, and was in a serum fraction of molecular weights more than 30,000 dalton. The present results show that normal mouse serum has a factor(s) inducing fatty degeneration and necrosis of mouse tumor cells.

Animals↗

Isolation and expression of a mouse CB1 cannabinoid receptor gene. Comparison of binding properties with those of native CB1 receptors in mouse brain and N18TG2 neuroblastoma cells.

The predominant animal model in which the pharmacology of cannabinoids is studied is the mouse. Nonetheless, the structure and functional expression of the mouse cannabinoid receptor (CB1) gene have not been reported. We have cloned and expressed the gene for the mouse CB1 receptor and compared its properties with those of native mouse CB1 receptors in brain and N18TG2 neuroblastoma cells. The mouse CB1 gene was isolated from a mouse 129 strain genomic library. Sequence analysis of a 6-kb BamHI fragment of the mouse CB1 genomic clone indicates 95% nucleic acid identity between mouse and rat (99.5% amino acid identity) and 90% nucleic acid identity (97% amino acid identity) between mouse and human. Examination of the 5' untranslated sequence of the mouse CB1 genomic clone revealed a splice junction site approximately 60 bp upstream from the translation start site, indicating the possibility of splice variants of the CB1 receptors. The coding region of the mouse CB1 receptor was stably expressed in 293 cells, and binding by [3H]SR 141716A and [3H]CP-55,940 was determined. The Bmax and Kd values obtained with [3H]SR 141716A (921 +/- 58 fmol/mg and 0.73 +/- 0.13 nM, respectively) were similar to those of native mouse CB1 receptors in brain (Bmax of 1.81 +/- 0.44 pmol/mg, Kd of 0.16 +/- 0.01 nM) and N18TG2 cells (Bmax of 197 +/- 29 fmol/mg, Kd of 0.182 +/- 0.08 nM). The mouse CB1 receptor genomic clone will be a useful tool for studying the function and regulation of the CB1 receptor in mice.

Animals↗

Cloned mouse interferon-gamma inhibits the growth of Rickettsia prowazekii in cultured mouse fibroblasts.

The effect of treating cultured mouse fibroblasts (L929 cells) with cloned mouse interferon-gamma on the growth of Rickettsia prowazekii within the fibroblasts was studied. Within 48 h after infection, rickettsiae were cleared from a substantial proportion of the initially infected cells and rickettsial growth was inhibited in those cells that remained infected, when L929 cells were treated with cloned mouse interferon-gamma both before and after infection. When L929 cells were treated with cloned mouse interferon-gamma either only before or only after infection with rickettsiae, rickettsial growth was markedly inhibited but rickettsiae were not cleared from many cells. Addition of cycloheximide to L929 cells markedly suppressed the antirickettsial activity of the interferon, and cloned mouse interferon-gamma did not induce antirickettsial activity in human foreskin fibroblasts. The antirickettsial effects of cloned mouse interferon-gamma were similar to those induced by crude mouse lymphokines prepared from concanavalin A-stimulated mouse spleen cells. Equivalent amounts (units) of cloned mouse interferon-gamma produced by Chinese hamster ovary cells or by Escherichia coli caused equivalent inhibition of rickettsial growth in mouse fibroblasts. However, at high concentrations of interferon-gamma, treatment of rickettsia-infected fibroblasts with equivalent amounts (units) of interferon-gamma, as crude mouse lymphokines or cloned mouse interferon-gamma, resulted in slightly greater inhibition of rickettsial growth by the crude lymphokines. Most of the antirickettsial activity of crude mouse lymphokines can be explained by the interferon-gamma that is present in these preparations. Interferon-gamma, by virtue of its ability to inhibit rickettsial growth and effect the clearance of rickettsia from nonprofessional phagocytes, may play a crucial role in the elimination of rickettsiae from the infected host.

Animals↗

Interaction of polyoma and mouse DNAs. IV. Time course and extent of integration of polyoma DNA into mouse DNA during lytic infection.

The time course of covalent binding of polyoma viral DNA to mouse DNA was followed in mouse embryo cells that had been grown prior to infection in the presence of 5-bromodeoxyuridine. Density-labeled (HL) mouse DNA was separated from free polyoma DNA by CsCl isopycnic centrifugation. Polyoma DNA sequences present in HL mouse DNA were detected by hybridization with radioactive cRNA synthesized in vitro. In reconstruction experiments, the limit of detection was found to be, on the average, about 0.5 genome equivalent (g.e.) of polyoma DNA per cell. To find conditions for the isolation of HL mouse DNA and for its complete separation from free polyoma DNA, cultures infected at 4 degrees C were used. HL mouse DNA extracted with sodium dodecyl sulfate and high salt concentrations (5 to 6 M CsCl) and then purified by three consecutive CsCl density gradient centrifugations was free from detectable amounts of polyoma DNA, whereas HL mouse DNA extracted with chloroform and phenol and purified in the same way always contained contaminating, noncovalently bound polyoma DNA. In lytically infected bromodeoxyuridine-prelabeled mouse embryo cultures, polyoma DNA bound to HL mouse DNA that had been extracted by the sodium dodecyl sulfate-CsCl procedure was first detected in small amounts (1 to 2 g.e. per cell) at 10 h after infection. In cultures incubated with medium containing thymidine (5 mug/ml), 4 to 6 g.e. of polyoma DNA per cell was detected at 14 and 18 h after infection. In these samples, practically all viral DNA was bound to high-molecular-weight HL mouse DNA. In cultures incubated with normal medium (no additions) and extracted between 17 and 20 h after infection, 20 to 350 g.e. of polyoma DNA per cell banded with HL mouse DNA. However, when DNA of one of these samples was subfractionated by sodium dodecyl sulfate-salt precipitation prior to isolation of HL mouse DNA, about 80% of the viral DNA banding at increased density was present in the low-molecular-weight DNA fraction. This observation suggests that in normal medium some progeny viral DNA of increased density was synthesized. Covalent binding of polyoma DNA to density-labeled mouse DNA was demonstrated by alkaline CsCl density gradient centrifugation: nearly equal amounts of polyoma DNA were found in the H and L strands, respectively, as is expected for linear integration of viral DNA. The results lead to the conclusions that (i) early polyoma mRNA is transcribed from free parental viral DNA; (ii) covalent linear integration is first detectable at the time when tumor (T)-antigen is synthesized; and (iii) only few copies (<10 g.e./cell) become integrated between 10 and 18 h after infection, i.e., during the period when cellular and viral DNA replication starts in individual cells.

Animals↗

Identification of mouse MD-2 residues important for forming the cell surface TLR4-MD-2 complex recognized by anti-TLR4-MD-2 antibodies, and for conferring LPS and taxol responsiveness on mouse TLR4 by alanine-scanning mutagenesis.

The expression of MD-2, which associates with Toll-like receptor (TLR) 4 on the cell surface, confers LPS and LPS-mimetic Taxol responsiveness on TLR4. Alanine-scanning mutagenesis was performed to identify the mouse MD-2 residues important for conferring LPS and Taxol responsiveness on mouse TLR4, and for forming the cell surface TLR4-MD-2 complex recognized by anti-TLR4-MD-2 Ab MTS510. Single alanine mutations were introduced into mouse MD-2 (residues 17-160), and the mutants were expressed in a human cell line expressing mouse TLR4. Mouse MD-2 mutants, in which a single alanine mutation was introduced at Cys37, Leu71, Leu78, Cys95, Tyr102, Cys105, Glu111, Val113, Ile117, Pro118, Phe119, Glu136, Ile138, Leu146, Cys148, or Thr152, showed dramatically reduced ability to form the cell surface mouse TLR4-mouse MD-2 complex recognized by MTS510, and the mutants also showed reduced ability to confer LPS and Taxol responsiveness. In contrast, mouse MD-2 mutants, in which a single alanine mutation was introduced at Tyr34, Tyr36, Gly59, Val82, Ile85, Phe126, Pro127, Gly129, Ile153, Ile154, and His155 showed normal ability to form the cell surface mouse TLR4-mouse MD-2 complex recognized by MTS510, but their ability to confer LPS and Taxol responsiveness was apparently reduced. These results suggest that the ability of MD-2 to form the cell surface mouse TLR4-mouse MD-2 complex recognized by MTS510 is essential for conferring LPS and Taxol responsiveness on TLR4, but not sufficient. In addition, the required residues at codon numbers 34, 85, 101, 122, and 153 for the ability of mouse MD-2 to confer LPS responsiveness are partly different from those for Taxol responsiveness.

Alanine↗

Genetic control of mitochondrial thymidine kinase in human-mouse and monkey-mouse somatic cell hybrids.

Distinctive thymidine (dT) kinase molecular forms are present in mouse, human, and monkey mitochondria. Disk polyacrylamide gel electrophoresis (disk PAGE) analyses have shown that the mitochondrial-specific dT kinases differ from cytosol dT kinases in relative electrophoretic mobilities (Rm). Furthermore, the mouse mitochondrial dT kinase differs in Rm value from primate mitochondrial dT kinases. The mouse and primate cytosol dT kinases can also be distinguished. Disk PAGE analyses have been carried out on the cytosol and mitochondrial dT kinases of human-mouse (WIL-8) and monkey-mouse (mK.CV(III)) somatic cell hybrids in order to learn whether the mitochondria of the hybrid cells contained murine mitochondrial-specific, primate mitochondrial-specific, or both dT kinases. WIL-8 cells were derived from cytosol dT kinase-negative, mitochondrial dT kinase-positive mouse fibro blasts and from cytosol dT kinase-positive, mitochondrial dT kinase-positive human embryonic lung cells; they contained mostly mouse chromosomes and a few human chromosomes, including the determinant for human cytosol dT kinase. The mK.CV(III) cells were derived from cytosol dT kinase-negative, mitochondrial dT kinase-positive mouse kidney cells and from cytosol dT kinase-positive, mitochondrial dT kinase-positive monkey kidney cells; they contained mostly mouse chromosomes and a few monkey chromosomes, including the determinant for monkey cytosol dT kinase. Disk PAGE analyses demonstrated that the mitochondria of human-mouse and monkey-mouse somatic cell hybrids contained the mouse-specific mitochondrial dT kinase but not the human- or monkey-specific mitochondrial dT kinase. These findings suggest that primate cytosol and mitochondrial thymidine kinase genes are coded on different chromosomes.

Animals↗

Synteny of the genes for thymidine kinase and galactokinase in the mouse and their assignment to mouse chromosome 11.

We have studied the expression of mouse galactokinase in human-mouse somatic cell hybrids segregating mouse chromosomes. Since concordant segregation of the expression of mouse galactokinase and the presence of mouse chromosome 11 were observed in the hybrid clones, we conclude that the gene for mouse galactokinase is located on mouse chromosome 11. We have also investigated the expression of mouse galactokinase in somatic cell hybrids between thymidine kinase-deficient Chinese hamster cells and mouse peritoneal macrophages. The results of this study indicate that the expression of mouse galactokinase and thymidine kinase segregates concordantly, and, therefore, we infer that the gene for mouse thymidine kinase is also located on mouse chromosome 11.

Animals↗

Studies on the binding of antibody against mouse lactate dehydrogenase (isoenzyme X) by preimplantation mouse embryos.

The binding of antibodies against LDH-X by preimplantation mouse embryos was studied to detect LDH-X from spermatozoa in embryos after fertilization. Incubation of preimplantation mouse embryos with rabbit anti-mouse-LDH-X-IgG and then with peroxidase-labelled goat anti-rabbit IgG revealed a strong peroxidase staining of the zona pellucida of normal fertilized and unfertilized 1-cell ova. However, the reaction was significantly weaker with both fertilized and unfertilized 1-cell ova from females induced to superovulate and normal and superovulated blastocysts. Pure antibody against mouse LDH-X was obtained by affinity chromatography of the rabbit anti-mouse LDH-X-IgG on pure mouse LDH-X covalently bound to sepharose. The pure antibody against mouse LDH-X reacted immunochemically identically to anti-mouse LDH-X-IgG, but it was not bound by any stage of preimplantation mouse embryos. The IgG fractions which had passed through the affinity column during the purification procedure and which did not contain any anti-LDH-X activity were bound by the zonae of preimplantation mouse embryos in the same manner as was unpurified anti-mouse LDH-X-IgG. Histochemical studies indicated LDH activity only in the embryo proper, but not on the zona pellucida. It is concluded that LDH-X is not present in preimplantation mouse embryos.

Animals↗

The use of the severe combined immunodeficient mouse and the athymic "nude" mouse as models for the study of human autoimmune thyroid disease.

The athymic "nude" mouse and the severe combined immunodeficient (SCID) mouse have differing immunological properties which permit complementary studies of autoimmune thyroid disease (AITD). The nude mouse accepts human thyroid xenografts, but lyses the passenger lymphocytes, whereas in the SCID mouse both the xenograft and its lymphocytes survive. Human AITD thyroid xenografts manifest a worsening of the pathological picture in the SCID mouse, but show a return to normal morphology and function in the nude mouse at the time of sacrifice 6-8 weeks after engraftment. Such tissue which has been grafted into the nude mouse can be retrieved and then can be re-xenografted into the SCID mouse. Normalized AITD thyroid tissue (from the nude mouse xenograft) will remain normal in the SCID mouse, but if xenografted into a SCID mouse which already has a primary autologous AITD thyroid xenograft, or if autologous PBMC are added, the AITD lesion will be reproduced. This demonstrates the primacy of the immune system in AITD and constitutes a useful model for the study of this human disorder.

Animals↗

Assignment of the gene for cytoplasmic glutamate-oxaloacetate transaminase to mouse chromosome 19 using chinese hamster x mouse somatic cell hybrids.

Chinese hamster and mouse cytoplasmic glutamate-oxaloacetate transaminase (GOT-1, EC 2.6.1.1) were separated by isoelectric focusing of cell extracts on thin-layer polyacrylamide plates. The expression of mouse GOT-1 was correlated with the retention of mouse chromosomes and the expression of 16 marker isozymes in 77 Chinese hamster x mouse somatic cell hybrids. Mouse GOT-1 expression was discordant to the expression of isozyme genes assigned to mouse chromosomes 1, 2, 4, 5, 6, 7, 8, 9, 10, 11, 12, 14, 16, 17, 18, and X. Furthermore it showed no concordant expression with mouse chromosomes 3, 13, and 15. The expression of mouse GOT-1 was highly concordant to mouse chromosome 19 in 21 hybrid clones analyzed karyotypically. Our data confirm by means of somatic cell genetics the chromosomal assignment of the mouse GOT-1 gene based on Mendelian genetics by Eicher, Reynolds, and Southard (3). The appearance of a heteropolymeric band in hybrid cells expressing mouse GOT-1 suggests that this enzyme molecule is probably composed of two subunits.

Animals↗