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Y Obata

Publications and source records attributed to Y Obata.

At least 145 records · Page 8Linked to original sources

Identification of the cloned gene for the murine transplantation antigen H-2Kb by hybridization with synthetic oligonucleotides.

The H-2K(b) gene is a member of the large major histocompatibility complex class I gene family. Since many members of this family cross-hybridize with class I cDNA probes, the cloned H-2K(b) gene was identified by hybridization with specific oligonucleotide probes. This clone was definitively shown to encode the H-2K(b) polypeptide by partial DNA sequencing and by serological and tryptic peptide analyses of the expressed product.

Amino Acid Sequence↗

Characterization of interleukin 2-dependent cytotoxic T-cell clones: specificity, cell surface phenotype, and susceptibility to blocking by Lyt antisera.

Cytotoxic T-cells were derived from the peritoneal cavity of a C57BL/6 mouse immunized with BALB/c sarcoma Meth A and from the spleens of BALB/c x C57BL/6 F1 (hereafter called CB6F1) mice immunized with BALB/c leukemia RL male 1. The cells were cultured in interleukin 2 and cloned by limiting dilution, and their specificity was determined by direct tests and competitive inhibition assays. C57BL/6 anti-Meth A effector cells recognized H-2Dd determinants. CB6F1 anti-RL male 1 effector cells recognized a unique cell surface antigen of leukemia RL male 1. The specificity was maintained in long-term culture. The cell surface phenotype of the cloned effector cell lines as determined by absorption analysis was Thy-1.2+, Lyt-1.2+, 2.2+, and 3.2+. Cytotoxicity was blocked at the target cell level by antisera against H-2Dd, but not H-2Dk or H-2b, and at the effector cell level by antisera against Lyt-2.2 and 3.2, but not Lyt-1.2, Ly-5.1 or Thy-1.2.

Animals↗

A cell surface antigen of the mouse related to xenotropic MuLv defined by naturally occurring antibody and monoclonal antibody. Relation to Gix G(rada1), G(aksl2) systems of MuLV-related antigens.

A new cell surface antigen of the mouse related to xenotropic murine leukemia virus (MuLV) is described. The antigen, designated G(erld), is defined by cytotoxic tests with the B6-x-ray-induced ERLD and naturally occurring antibody. G(erld) is distinct from all previously defined cell surface antigens. Monoclonal antibody with the same specificity has been developed. Inbred mouse strains are classified as G(erld)+ or G(erld)- according to the presence of absence of the antigen on lymphoid cells. G(erld)+ strains differ with regard to quantitative expression of G(erld) on normal thymocytes. The emergence of G(erld)+ tumors in G(erld)- strains indicates the presence of genes coding for the antigen even in strains not normally expressing the antigen. G(erld) has the characteristic of a differentiation antigen in normal mice. In G(erld)+ strains, high levels of the antigen are found on thymocytes with lower levels being detected on cells of spleen, lymph nodes and bone marrow. No G(erld) was detected in brain or kidney or on erythrocytes. The segregation ratios for G(erld) expression on thymocytes in backcross and F2 mice of crosses between G(erld)+ (B6, 129, and B6-Gix+) and G(erld)- (BALB/c) strains suggest that G(erld) expression is controlled by a single locus in B6, by two unlinked loci in 129, and by three unlinked loci in B6-Gix+ mice. Induction of the antigen by MuLV infection of permissive cells in vitro indicates that G(erld) is closely related to xenotropic and dualtropic MuLV; all xenotropic and dualtropic MuLV tested induced the antigen, whereas the majority of ecotropic and the two amphotropic MuLV failed to do so. As dualtropic MuLV are thought to be recombinants between ecotropic and xenotropic MuLV sequences, G(erld) coding by dualtropic MuLV may signify the contribution of the xenotropic part in the recombinational event. Serological and biochemical characterization indicates that G(erld) is related to the gp 70 component of the MuLV envelope. The relation of G(erld) to the previously defined gp 70-related cell surface antigens (Gix, G(rada), and G(aksl2) is discussed, particularly with regard to their characteristics as differentiation antigens, the genetic origin of dualtropic MuLV, and the leukemogenicity of MuLV.

Animals↗

Inhibition of AKR leukemogenesis by SMX-1, a dualtropic murine leukemia virus.

Intrathymic injection of SMX-1, a dualtropic murine leukemia virus (MuLV) originally derived from Moloney murine leukemia virus stocks, protects AKR mice from developing MuLV-accelerated leukemia and spontaneous leukemia. Thymuses of SMX-1-injected mice show no change in weight, morphology, or thymocyte size, and quantitative expression of Thy-1 and Lyt-2 differentiation antigens is identical to control mice. The amplified thymic expression of MuLV-related antigens that occurs spontaneously in 6-month-old preleukemic AKR mice or that can be induced in young AKR mice by leukemogenic AKR dualtropic MuLV is prevented by SMX-1. It appears unlikely that the protective effect of SMX-1 is explicable in terms of cross-immunogenicity with transforming MuLV or transformed cells. As SMX-1 persists for long periods after intrathymic injection and does not alter levels of thymic ecotropic MuLV, SMX-1 may interfere with the generation, spread, or leukemogenicity of dualtropic MuLV that form de novo in AKR thymus during the late preleukemic phase. SMX-1 provides a way to probe the events leading to cell transformation in AKR mice.

AKR murine leukemia virus↗

G(AKSL2): a new cell surface antigen of the mouse related to the dualtropic mink cell focus-inducing class of murine leukemia virus detected by naturally occurring antibody.

Normal mouse sera were tested for cytotoxic antibody to surface antigens of cultured monolayer cells infected with AKR-derived ecotropic MuLV, xentropic MuLV, or dualtropic MCF 247 MuLV. Antibody to ecotropic MuLV-infected cells was found in a proportion of C57BL/6, C3Hf/Bi, AKR-Fv-1b, and (C3Hf/Bi X AKR)F1 mice, but not AKR or (AKR X C3Hf/Bi)F1 mice. Antibody to xenotropic MuLV-infected cells was virtually restricted to C57BL/6 mice. Antibody to MCF 247-infected cells was found in all strains tested, including AKR mice. Absorption analysis of (C3Hf/Bi x akr)f1 and AKR-Fv-1b sera with selective reactivity for MCF 247-infected cells showed that these sera recognize distinctive antigens on MCF 247-infected cells that are not present on ecotropic or xenotropic MuLV-infected cells. The transplantable AKR spontaneous leukemia AKSL2 was found to be uniquely sensitive to the cytotoxic action of naturally occurring antibody to MCF 247-related antigens and absorption tests with AKSL2 as the target cell and sera from a single AKR-Fv-1b mouse have permitted the definition of a new MuLV-related cell surface antigen, which has been designated G(AKSL2). Thymocytes from young mice of high leukemia-incidence strains (AKR, C58, and PL) express G(AKSL2), whereas thymocytes from 12 other strains do not. In AKR mice, the antigen is expressed in higher amounts on cells from thymus and bone marrow than on spleen cells. All AKR spontaneous leukemias tested express G(AKSL2), as did three MuLV-induced leukemias arising in G(AKSL2)- strains. Five X-ray-induced leukemias of G(AKSL2)- strains were G(AKSL2)-, as were MuLV+ and MuLV- chemically induced sarcomas. In the limited survey conducted to date, natural antibody to G(AKSL2) has been restricted to strains expressing G(AKSL2) in their normal tissues: AKR, AKR congenic mice AKR-Fv-1b and AKR hybrid mice (C3Hf/Bi x akr)f1 and (C57BL/6 X AKR)F1. In vitro G(AKSL2) induction tests involving MuLV infection of cultured monolayer cells showed that 8 of 12 newly isolated dualtropic MuLV shared the property of G(AKSL2) induction with the prototype MCF MuLV, MCF 247. Of the 12 ecotropic MuLV tested, only the N-tropic MuLV isolated from a leukemia originally induced by Passage A Gross virus induced G(AKSL2). The xenotropic and amphotropic MuLV isolates tested lacked G(AKSL2) inducing activity. Recognition of the g(aksl2) system provides a way to trace the origin and natural history of a class of dualtropic MCF MuLV in the mouse and to determine whether natural antibody to G(AKSL2) plays a role in AKR leukemogenesis.

AKR murine leukemia virus↗

Autoimmune and lymphoproliferative disease in (B6-GIX+ X 129)F1 mice: relation to naturally occurring antibodies against murine leukemia virus-related cell surface antigens.

G(IX) congeneic mouse strains, C57BL/6-G(IX) (+)(B6-G(IX) (+)) and 129-G(IX) (-), have been derived from the prototype strains, B6(G(IX) (-)) and 129(G(IX) (+)). The hybrids, (B6-G(IX) (+) x 129)F(1) (G(IX) (+)F(1)) and (B6 x 129-G(IX) (-))F(1) (G(IX) (-)F(1)), differ only in regard to genetic loci controlling G(IX) antigen expression. G(IX) (+)F(1) mice spontaneously produce G(IX) antibody and often show signs of autoimmune disease and lymphoproliferative disease. G(IX) (-)F(1) mice and mice of the two parental strains (B6-G(IX) (+) and 129) of G(IX) (+)F(1) do not produce G(IX) antibody and seldom show signs of these diseases. G((ERLD)), and G((RADA1)), antibodies, natural thymocytotoxic autoantibody, and antinuclear antibodies were produced by G(IX) (+)F(1) mice. However, these four antibodies were also found in the other strains. G(IX) (+)F(1) mice develop pronounced diffuse glomerulonephritis similar to that found in systemic lupus erythematosus in man. Incidence studies in which mice were examined according to age rather than state of health showed that the lesions occurred in 38% of G(IX) (+)F(1) mice but not in G(IX) (-)F(1), B6-G(IX) (+), or 129 mice. Lymphoproliferative lesions were either reticulum cell sarcoma (RCS) type A or reactive lymphoid hyperplasia (RLH). RCS occurred more often in G(IX) (+)F(1) (38%) than in G(IX) (-)F(1) (12%) or B6-G(IX) (+) (8%). No RCS occurred in mice of the 129 strain. RLH occurred in G(IX) (+)F(1) mice (10%) but not in the other strains. From these results, the following conclusions are drawn: (i) Severe glomerulonephritis and the increased occurrence of lymphoproliferative lesions in these animals depend on the presence of G(IX) antigen; (ii) besides genes controlling G(IX) antigen expression, other genes from both parental strains are required to create the basis in the progeny F(1) mice for the development of these diseases; and (iii) the chronic production of G(IX) antibody may be necessary for the development of the severe glomerulonephritis and for the increased occurrence of lymphoproliferative diseases in G(IX) (+)F(1) mice.

Animals↗