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D H Sachs

Publications and source records attributed to D H Sachs.

At least 19 recordsLinked to original sources

Mixed allogeneic chimeras prepared by a non-myeloablative regimen: requirement for chimerism to maintain tolerance.

We have recently described a non-myeloablative conditioning regimen permitting engraftment of allogeneic bone marrow in mice which involves administration of anti-CD4 (GK1.5) plus anti-CD8 (2.43) monoclonal antibodies in vivo, 3 Gy whole body irradiation, plus 7 Gy thymic irradiation. B10 (H-2b) mice prepared by this regimen and infused with unmanipulated B10.D2 (H-2d) bone marrow develop permanent mixed lymphohematopoietic chimerism and specific tolerance to donor skin grafts. We now demonstrate that mixed chimerism persists longer than 170 days in the lymphoid tissues including spleen, thymus and bone marrow of such animals, and that equivalent levels of donor chimerism are observed in both T and B cell compartments. In addition stable mixed chimeras were found to be unresponsive to host (B10) and donor (B10.D2) stimulator cells in mixed lymphocyte reaction and in cell mediated lympholysis assays, while responses to a third party (B10.BR, H-2k) were intact. Persistent chimerism was found to be necessary for the maintenance of skin graft tolerance in these animals, since in vivo depletion of donor cells by treatment with an anti-H-2d (34-2-12) monoclonal antibody resulted in the subsequent rejection of donor skin grafts. These studies demonstrate that mixed allogeneic chimeras produced using this regimen are specifically tolerant to donor in vitro and in vivo, and that persistence of donor chimerism is critical for the maintenance of tolerance.

Animals

Epidermal Langerhans cells are derived from cells originating in bone marrow.

Langerhans cells constitute a morphologically well characterised subpopulation (3--8%) of mammalian epidermal cells which, in contrast to the bulk of epidermal cells, bear Fc-IgG and C3 receptors, express immune response-associated (Ia) antigens and function as antigen-presenting cells and allogeneic stimulatory cells to primed T lymphocytes. The ontogeny of Langerhans cells has been a subject of considerable debate since their discovery. Although some studies suggest that Langerhans cells are of mesenchymal as opposed to neural or melanocytic origin, direct evidence for this has not been presented. In this study we demonstrate that, after 3 weeks, most of the Langerhans cells (LC) in parenteral skin which had been transplanted on to F1 hybrids were of recipient origin whereas keratinocytes remained of donor origin; this indicates that the LC are derived from a mobile pool of cells. Furthermore, in studies of skin from radiation-induced bone marrow chimaeric animals we found that, depending on the strain combination, up to 80% of the epidermal LC were derived from the bone marrow of the donor animals.

Animals

Mouse alloantibodies capable of blocking cytotoxic T-cell function. I. Relationship between the antigen reactive with blocking antibodies and the Lyt-2 locus.

In an attempt to produce allonatibodies to cytotoxic T-cell receptors, hyperimmune anti-lymphocyte antisera have been raised in mice of various strain combinations, and have been tested for their ability to block allogeneic cell-mediated lymphocytotoxicity (CML) in the absence of complement at the T killer cell level. Most of the sera failed to show any significant and reproducible inhibitory effects. However, among C3H anti-B10.BR antisera, some sera were found to be capable of significantly inhibiting CML. This effect was attributable to antibodies reacting with the killer population rather than the target cells, because the sera inhibited B10 anti-C3H CML but not C3H anti-b10 CML. Among mouse strains tested, A/J, BALB/c, B10, and B6 strains were sensitive to the inhibitory effect of the sera whereas AKR, CBA, C3H, and DBA/2 strains were insensitive. The sensitivity of killer cells to the inhibitory effect correlated well with the strain distribution of the Lyt-2.2 antigen. In the presence of complement, these same sera were toxic to 100% of spleen cells of AKR, BALB/c, B10, and DBA/2 strains, with comparable cytotoxic titers. Thus, the inhibitory activity of the sera could not be explained by nonspecific effects of high-titered antibodies. To study the relationship between the antigen(s) responsible for the blocking effect and Lyt-2-linked genes, killer cells from Lyt-2 congenic strains were tested and conventional anti-Lyt-2.2 antisera were raised in an appropriate congenic strain combination. Killer cells from B6, but not from B6.Ly2.1 animals, were significantly sensitive to the blocking effects of the inhibitory C3H anti-B10.BR sera. The conventional anti-Lyt.2.2 sera did produce CML blocking, although there was no apparent correlation between such blocking and the anti-Lyt-2.2 cytotoxic titer. These results thus indicate that the target molecules responsible for blocking of killer cells are encoded or regulated by genes that are closely linked to or identical with Lyt-2.

Animals

Resistance to Listeria monocytogenes in mice: genetic control by genes that are not linked to the H-2 complex.

After mice of several inbred strains were injected with Listeria monoyctogenes, two parameters of resistance, the 50% lethal dose and the suppression of bacterial proliferation in spleen, were determined. The strains of mice tested could be segregated into two groups: the resistant C57BL/10Sn mice and the sensitive A/J and DBA/2J mice. Congenic resistant strains of mice were used because they would express the H-2 haplotype of the sensitive strains (H-2a or H-2d) on the background of a resistant strain, C57BL/10Sn. Both the B10.A/SgSn (H-2a) and the B10.D2/Sn (H-2d) mice were as resistant as mice from their background strain and were significantly more resistant than the strains that donated their H-2 locus (A/J or DBA/2J). Therefore, the resistance of mice to Listeria, although genetically controlled, is not controlled by gene (s) linked to the H-2 haplotype. On the other hand, the level of specific immunity to listeria antigens (as indicated by the footpad reaction) was higher in the C57BL/10Sn (H-2b) mice than in either the A/J and B10.A/SgSn (H-2a) mice or the DBA/2J and B10.D2/Sn (H-2d) mice. This observation suggests an H-2 linkage of specific immunity to Listeria.

Animals

Cross-reactivity among the products of three nonallelic H-2 loci, H-2Ld, H-2Dq, and H-2Kk.

Cross-reactions of the products of three nonallelic H-2 loci, H-2K, H-2D, and H-2L, have been studied by serological, immunochemical, and cellular immune techniques. Immunoprecipitation experiments revealed a determinant shared between Ld and Dq molecules but absent on Dd molecules, By cytotoxic screening of sera from individual mice an exceptional anti-Ld serum was found which cross-reacted with an H-2k antigen. Genetic mapping studies suggested that the basis of this activity was an Ld-Kk serological cross-reaction. Cytotoxic T cells generated to Ld alloantigens were also found to recognize a cross-reacting Kk determinant. These studies therefore suggest that L, D, and K are three structurally homologous cell surface glycoproteins that have evolved from a common primordial gene.

Animals

Sharing Ia antigens between species. III. Ia specificities shared between mice and human beings.

Certain mouse alloantisera have been found to detect immunologic cross-reactions between human and murine Ia antigens. Almost every anti-Iaa, -Iak and -Iad serum tested exhibited such cross-reactions. Sera prepared against the products of limited segments of the mouse I region and tested on human B cells revealed that anti-I-E/Ck cross-reactions were more readily detectable than anti-I-A, B, Jk cross-reactions. Most of the mouse alloantisera were cytotoxic to bells from almost every individual tested, although a few sera exhibited more restricted patterns of lysis, permitting limited segregation analyses. The cytotoxicity of these mouse alloantisera in family studies was consistent with HLA linkage of the genes responsible for the cross-reacting Ia determinants. Immunochemical analysis on radiolabelled detergent lysates of human lymphocytes indicated that the sera reacted with molecules of 34,000 and 28,000 daltons. Thus, by cellular distribution, HLA association, and immunochemical criteria, these mouse alloantisera detect human Ia antigens. These cross-reactive sera should be of practical value for the detection of human Ia antigens and may also have theoretical implications for the evolution of genes coding for Ia antigens.

Animals

Genetic control of the immune response to staphylococcal nuclease. IX. Recombination between genes determining BALB/c antinuclease idiotypes and the heavy chain allotype locus.

The genetic linkage relationship of two antinuclease idiotypes produced by the BALB/c strain was investigated in the backcross (BALB/c x CB.20) X CB.20. These two idiotypes were detected by Lewis rat anti-idiotypic antisera prepared against affinity-purified A/J and SJL antinuclease antibodies, termed the A/J and SJL idiotypes, respectively. Both idiotypes were found to be linked to the IgCHa immunoglobulin heavy chain allotype locus. There was, however, a high frequency of recombination observed between both markers and the IgCHa locus, with eight of 83 backcross animals recombinant for the A/J idiotype and five of 83 recombinant for the SJL idiotype. All such recombinant animals were IgCHb/b homozygotes that had gained one or both idiotypes. These results are consistent with a genetic map of VHr region genes in the BALB/c strain in which genes determining the SJL idiotype are closer to the IgCHa allotype locus than are genes determining the A/J idiotype. This high frequency of recombination may indicate that the chromosome segment containing VH region genes is very large or that it has structural features that promote recombination.

Animals

Two new recombinant H-2 haplotypes, one of which juxtaposes Kb and Ik alleles.

Two new recombinant H-2 haplotypes have been detected and established as congenic resistant lines on the C57BL/10 background. On the basis of serologic testing and immunoprecipitation analyses, the sublocus composition of the first recombinant haplotype, H-2bq1 (B10.MBR) has been shown to be KbIkDq, and that of the second recombinant, H-2sq3 (B10.SQR) to be KsIsSsDq. The occurrence of the Kb I-Ak juxtaposition after a recombination between H-2b and H-2m contrasts with the almost uniform failure to observe H-2b/H-2k recombinants in previous studies. This finding and the occurrence of a second recombination event involving the same chromosome soon after the first in our studies may imply that recombination within H-2 is not generally a random event. The B10.MBR line has proved useful in the production of specific anti-H-2Kb and anti-I-Ab antisera previously quite difficult to obtain contamination by anti-Ia or anti-H-2K antibodies, respectively.

Alleles

Transplantation in miniature swine. VI. Factors influencing survival of renal allografts.

Renal allografts were performed between and among animals from three herds of miniature swine that were selectively inbred to homozygosity at the major histocompatibility complex, MSLA. The results suggest several genetic factors which influence the survival of renal allografts in these animals. As expected, the major histocompatibility complex (MHC) was of dominant importance, and all MSLA-mismatched grafts were rejected promptly (12 +/- 3.7 days). Some MSLA-matched grafts were also rejected (30 +/- 15.0 days), indicating that non-MSLA loci also determine antigens which can lead to kidney rejection. Other MSLA-matched grafts were accepted indefinitely. At least one immune response gene that determined ability to reject kidneys across non-MSLA differences seemed to be segregating in our swine population. Animals that had accepted MSLA-matched renal grafts for extended periods demonstrated markedly prolonged survival of subsequent donor skin grafts compared to skin graft survival across the same non-MSLA difference in normal animals. This finding suggests that failure to reject kidneys across non-MSLA differences indicates systemic tolerance, and that there may be a relationship between the induction of such tolerance and the proposed immune response gene controlling rejection.

Animals

Transplantation in miniature swine. VII. Evidence for cellular immune mechanisms in hyperacute rejection of renal alografts.

Renal allografts were performed in miniature swine that were identical at their major histocompatibility locus and were presensitized by skin grafts from their prospective renal donors. All of these renal grafts were rejected in a hyperacute or markedly accelerated manner compared to the survival of comparable grafts in nonsensitized animals. Studies directed at the mechanism of this rejection revealed no circulating recipient antidonor antibodies by several serological assays. In contrast, mixed lymphocyte cultures (MLCs) and cell-mediated lympholysis (CML) assays demonstrated marked recipient antidonor lymphocyte reactivity that appeared after skin grafts, diminished during the tenure of the renal graft in the host circulation, and reappeared after removal of the rejected kidney. These results suggest that cellular immune mechanisms may plan a role in the accelerated rejection of major histocompatibility complex (MHC)-identical renal allografts.

Animals

Transplantation in miniature swine. V. Characterization of Ia antigens.

The complexity of the I region analog associated with the MHC of miniature swine has been probed by sequential antibody precipitation studies of Ia antigens. Treatment of solubilized lymphocyte preparations from MSLA homozygotes of the DD haplotype with excess AA anti-DD alloantiserum led to precipitation of only a portion of the total Ia antigens, as determined by secondary precipitation of the remaining material with CC anti-DD serum. The presumed I region of miniature swine must therefore code for more than one Ia antigen-bearing polypeptide chain. In addition, certain mouse alloantisera that had previously been shown to react with rat Ia antigens were tested for reactivity with swine Ia antigens. Anti-Iak mouse alloantisera precipitated Ia molecules from every swine extract tested, regardless of MHC type, precluding genetic mapping studies. However, sequential precipitation studies demonstrated that the cross-reactive mouse alloantisera reacted only with a subclass of swine Ia antigens, again suggesting genetic complexity of the pig Ia locus.

Animals

Ia antigens in mouse skin are predominantly expressed on Langerhans cells.

We have investigated the expression of products of the mouse major histocompatibility complex (MHC) on BALB/c and A/J epidermal cells. By using reagents with specificity for various products of the MHC in an indirect immunofluorescence procedure, we found that H-2 antigens are expressed on the vast majority of epidermal cells. Ia antigens, by contrast, are present on only 2.4 to 6.9% of all epidermal cells. These Ia-bearing cells bear a receptor for the Fc portion of IgG and ultrastructurally exhibit the characteristics of Langerhans cells. Ia antigens on Langerhans cells are encoded for by at least the I-A and I-E/C subregions of the MHC.

Animals

Ia antigens.

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Amino Acid Sequence