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J Klein

Publications and source records attributed to J Klein.

At least 883 records · Page 49Linked to original sources

Isolation and analysis of H-2 and Ia alloantigens from wild mouse strains.

Immunoprecipitation and SDS-PAGE analysis were used to examine H-2 and Ia antigens from mouse strains with wild-derived MHC haplotypes. Antisera raised against the wild-derived strains contained anti-H-2 and anti-Ia antibodies which precipitated antigen molecules readily distinguishable by a single assay procedure. The antibodies to wild strains were cross-reactive with standard laboratory haplotypes. Evidence supporting the similar genetic organization of wild and standard haplotypes was found, including isolation of separate H-2K and H-2D molecules from a wild-derived strain, and isolation of two separate Ia molecules from a wild-derived strain.

Animals↗

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Group Processes↗

Ontogeny of Ia and IgD on IgM-bearing B lymphocytes in mice.

We used immunofluorescence to examine the developmental relationship of Ia and IgD on B cells. Pre-B cells in fetal liver did not express Ia. Only very few surface IgM-positive (sIgM+) B cells in fetal spleen were found to be Ia+ and were weakly stained for Ia. After birth there was a linear increase in the proportion of sIgM+ spleen cells which expressed Ia, reaching 95% by 9 days. Adult bone marrow also contains a sizeable proportion of sIgM+ Ia- cells. Unstimulated cells from fetal or newborn liver and spleen expressed Ia at the same rate in culture. Anti-Ia antisera suppressed the LPS-induced differentiation of IgM and IgG plasma cells in cultures of neonatal lymphocytes. Ia was also detected on IgM and IgG plasma cells in vitro suggesting that lipopolysaccharide (LPS)-stimulated B cells by may express Ia antigens, induced by LPS, or appearing as part of normal differentiation. IgD did not appear on sIgM+ cells until 3 days of age and then rose slowly to reach adult levels later than Ia antigens.

Aging↗

H-2 mutation affecting immune response to Thy-1.1 antigen.

Mouse thymus, thymus-derived lymphocytes, and brain share an antigen determined by gene at the Thy-1 locus in chromosome 9 (1). Two alleles have been identified at this locus: Thy-1(a), coding for antigen Thy-1.1 (or theta-AKR) present in AKR and seven other strains; and Thy-1(b), coding for antigen Thy-1.2 (or{teta}-C3H) and present in C3H and all the remaining inbred strains. Injection of AKR thymocytes into inbred mice carrying the Thy-1(b) allele results in an immune response that can be measured either serologically by determining the level of antibodies in the recipients' serum (1) or by counting plaque- forming cells (PFC) detectable in spleens of the recipients by means of an assay, with AKR thymocytes as target cells(2). The magnitude of PFC and serum antibody responses after a single thymocyte injection depends on the genetic make-up of the recipient. Three genes controlling the PFC response to the Thy- 1.1 antigen have been identified: Ir-Thy-1A and Ir-Thy-1B, which are closely linked to the major histocompatibility complex (H-2) of the mouse (3-6), and Ir-5, which is located at a distance of 17 cm to the right of the H-2 complex on chromosome 17 (6). Previous genetic mapping with H-2 recombinant strains has indicated that the two Ir-Thy-1 loci are located to the left of the IC subregion (7). Further experiments strongly suggested that either one or both Ir-Thy-1 loci map to the K rather than the I region of the H-2 complex (8). In this report, the study of an H- 2 mutant, CBA-H-2(ka) (M523) (9), and its parental strain, CBA/LacStoY (CBA) provided further evidence that one of these loci apparently resides in the K region and might even be identical with the H-2K locus in that region.

Animals↗

Histocompatibility antigens controlled by the I region of the murine H-2 complex. II. K/D region compatibility is not required for I-region cell-mediated lymphocytotoxicity.

In the cell-mediated lymphocytotoxicity assay, A.TH effector cells sensitized to A.TL lymphocytes lyse not only A.B10.AQR effector cells lyse B10.BR and B10.BYR target cells in addition to B10.AQR cells. These findings indicate that for CML to occur across the IA region barrier, compatibility at K or D regions is not required.

Animals↗

A new histogenetic method for minor histocompatability antigen typing.

A new method for typing minor H antigens is described. The method is based on the observation that effector T cells, sensitized in vivo to minor H mitigens and then rechallenged in vitro, will lyse labeled target cells in the CML assay, provided that the target, the sensitizing, and the responding cells share the same allele at H-2K or H-2D loci. In this method, two congenic lines differing at a minor H locus are cross-immunized (by skin grafting, injection of lymphoid cells, or, preferably, by a combination of both treatments), rechallenged in vitro, and tested against a panel of strains carrying the same H-2 haplotype as the two lines. Target cells of the panel carrying the same minor H antigens as the strain against which the effector cells were sensitized are lysed; target cells not carrying these antigens are unaffected. The feasibility of the method was demonstrated by testing for H-3 antigens of a panel fo H-2b-bearing strains. The new method is faster and more economical than the classicial F1 method which has been used until recently.

Animals↗

Histocompatibility-2 system in wild mice. VI. Histogenetic analysis of sixteen B10.W congenic lines.

Sixteen B10.W congenic lines carrying wild derived H-2 haplotypes on C57BL/10Sn or B10 background were typed by the allogeneic cell-mediated lymphocytotoxicity (CML) assay; in addition, selected lines were also typed by the TNP-CML assay and by skin grafting. The analysis revealed similarity or identity of two strain pairs: SNA57 (H-2w21) ssems to carry a similar haplotype as B10.SM (H-2v), and STA10 and STA12 seem to share the same H-2K and H-2D alleles. All other B10.W strains were different from each other and from B10 congenic lines carrying inbred-derived H-2 haplotypes. These results agree with the results of the serologic typing with two exceptions: the KPA42, KPA132, and SNA57 lines, which were serologically indistinguishable from each other and from B10.SM, were distinguished by histogenetic typing. The presence among wild mice of a haplotype (H-2u21) that appears to be very similar to a haplotype (H-2v) carried by an inbred strain (B10.SM) has some interesting implications for considerations of H-2 gene mutability. The finding that haplotypes derived from different localities are different provides further evidence that the H-2 polymorphism is extensive, indeed.

Animal Population Groups↗

Neonatal tolerance induction across regions of H-2 complex.

Regions of the H-2 complex were evaluated for their capacity to resist neonatal tolerance induction. Congenic recombinant strains and mutants were employed to study K, I, and D region disparity. It was found that tolerance could be induced to differences at each region; however, the K region of the H-2 complex is not only highly immunogenic, but markedly resistant to neonatal tolerance induction. This is especially apparent when the host is derived from B10 stocks, even though the MHC haplotypes involved are not H-2b indicating that genetic factors unlinked to the MHC clearly play an important role in determining the ease of neonatal tolerance induction.

Animals↗