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S J Rozzo

Publications and source records attributed to S J Rozzo.

At least 19 recordsLinked to original sources

Evidence for an interferon-inducible gene, Ifi202, in the susceptibility to systemic lupus.

The Nba2 locus is a major genetic contribution to disease susceptibility in the (NZB x NZW)F(1) mouse model of systemic lupus. We generated C57BL/6 mice congenic for this NZB locus, and these mice produced antinuclear autoantibodies characteristic of lupus. F(1) offspring of congenic and NZW mice developed high autoantibody levels and severe lupus nephritis similar to (NZB x NZW)F(1) mice. Expression profiling with oligonucleotide microarrays revealed only two differentially expressed genes, interferon-inducible genes Ifi202 and Ifi203, in congenic versus control mice, and both were within the Nba2 interval. Quantitative PCR localized increased Ifi202 expression to splenic B cells and non-T/non-B cells. These results, together with analyses of promoter region polymorphisms, strain distribution of expression, and effects on cell proliferation and apoptosis, implicate Ifi202 as a candidate gene for lupus.

Animals↗

Enhanced susceptibility to lupus contributed from the nonautoimmune C57BL/10, but not C57BL/6, genome.

Genes from New Zealand Black and New Zealand White mice have been implicated in the development of a disease similar to human systemic lupus erythematosus. In an attempt to define the MHC class II genes involved in disease, we previously studied similarly designed backcrosses of New Zealand Black mice with C57BL/6 (B6) mice transgenic for Ez genes or with C57BL/10 (B10) mice transgenic for Az genes. Although the transgenes showed no effect on the development of autoantibody production or lupus nephritis in either backcross, surprisingly, there was greatly increased expression of these disease traits in the backcrosses involving B10 compared with B6 mice. These studies therefore implicated genetic contributions in B10 vs B6 backgrounds, despite their 98% identity. A genome-wide linkage analysis uncovered a B10 locus on mid-chromosome 13, which enhanced nephritis and was strongly linked with the production of pathogenic retroviral gp70-anti-gp70 immune complexes when contributed by B10, but not B6, mice. The subsequent identification of a single marker polymorphic between B10 and B6, along with the extreme genetic similarity between the two strains in this region, is likely to permit expedited identification of the lupus-susceptibility gene from this nonautoimmune strain.

Animals↗

Control of separate pathogenic autoantibody responses marks MHC gene contributions to murine lupus.

Previous studies have suggested that MHC and non-MHC genes contribute to the development of autoimmune disease in F1 hybrids of New Zealand black (NZB) and white (NZW) mice. We conducted a genome-wide screen of 148 female (NZB x NZW)F1 x NZB backcross mice to map dominant NZW genetic loci linked with lupus disease traits. In this backcross analysis, inheritance of the NZW MHC (H2(d/z) vs. H2(d/d)) was strongly linked with the development of lupus nephritis (P approximately 1 x 10(-16)), increasing the risk of disease by over 30-fold. H2(d/z) was also linked with elevated serum levels of IgG autoantibodies to single-stranded DNA, double-stranded DNA, histones, and chromatin but not with anti-gp70 autoantibodies, measured as circulating gp70-anti-gp70 immune complexes. Non-MHC contributions from NZW seemed weak in comparison to MHC, although NZW loci on chromosomes 7 and 16 were noted to be suggestively linked with autoantibody production. Strikingly, H2(d/z) (compared with H2(d/d)) enhanced antinuclear antibodies in a coordinate fashion but did not affect anti-gp70 production in the current backcross. However, the opposite influence was noted for H2(d/z) (compared with H2(z/z)) when (NZB x NZW)F1 x NZW backcross mice were analyzed. These results suggest that H2(z) and H2(d) haplotypes differentially regulate two different sets of nephritogenic autoantibody responses. This study confirms a critical role for H2(z) compared with other dominant NZW loci in (NZB x NZW)F1 mice and provides an explanation as to why H2(d/z) heterozygosity is required for full expression of disease in this model.

Animals↗

Analysis of MHC class II genes in the susceptibility to lupus in New Zealand mice.

Hybrids of New Zealand Black (NZB) and New Zealand White (NZW) mice spontaneously develop a disease similar to human systemic lupus erythematosus. MHC and non-MHC genes contribute to disease susceptibility in this murine model. Multiple studies have shown that the NZW H2z locus is strongly associated with the development of lupus-like disease in these mice. The susceptibility gene(s) within H2z is not known, but different lines of evidence have pointed to class II MHC genes, either H2-E or H2-A (Ez or Az in NZW). Recent studies from our laboratory showed that Ez does not supplant H2z in the contribution to lupus-like disease. In the present work we generated C57BL/10 (B10) mice transgenic for Aaz and Abz genes (designated B10.Az mice) and used a (B10.Az x NZB)F1 x NZB backcross to assess the contributions of Az genes to disease. A subset of backcross mice produced high levels of IgG autoantibodies and developed severe nephritis. However, no autoimmune phenotype was linked to the Az transgenes. Surprisingly, in the same backcross mice, inheritance of H2b from the nonautoimmune B10 strain was strongly linked with both autoantibody production and nephritis. Taken together with our previous Ez studies, the present work calls into question the importance of class II MHC genes for lupus susceptibility in this model and provides new insight into the role of MHC in lupus-like autoimmunity.

Animals↗

Contributions of Ea(z) and Eb(z) MHC genes to lupus susceptibility in New Zealand mice.

Unlike parental New Zealand Black (NZB) or New Zealand White (NZW) mice, (NZB x NZW)F1 mice exhibit a lupus-like disease characterized by IgG autoantibody production and severe immune complex-mediated nephritis. In studies of the genetic susceptibility to disease in this F1 model, the NZW MHC (H2z) has been strongly linked with the development of disease, and it was hypothesized that class II MHC genes, particularly Ez genes, may underlie this genetic contribution. In the present study, we bred transgenic B6 mice expressing I-Ez or congenic B6 mice carrying H2z with NZB mice and used a backcross analysis to test the hypothesis that Ea(z) and/or Eb(z) genes account for the effect of H2z on disease. The genetic analysis of different backcross combinations showed that unlike mice carrying H2z, mice inheriting Ez transgenes do not demonstrate increased IgG autoantibody production or increased incidence of nephritis. Surprisingly, in the same transgenic backcross mice, inheritance of the endogenous H2b from the B6 strain was strongly linked with the production of IgG autoantibodies, but not with disease. Additional experiments suggested that the level of IgG3 autoantibody production, which is controlled by H2, may be important in the pathogenesis of renal disease. Contributions to autoantibody production were also detected from an NZB locus on distal chromosome 1 (previously named Nba2). Together, these studies provide new insight into the role of MHC in lupus-like autoimmunity.

Animals↗

Control of multiple autoantibodies linked with a lupus nephritis susceptibility locus in New Zealand black mice.

An NZB locus on distal chromosome 1 has been linked to murine lupus nephritis in backcross analyses of New Zealand mice. This locus, designated Nba2 for New Zealand Black autoimmunity 2, was found to colocalize in both (NZB x SM/J)F1 x NZW and (B6.H2z x NZB)F1 x NZB backcrosses, and was most likely situated between 92 and 97 cM from the centromere. This region of mouse chromosome 1 encodes several candidate genes, including the low affinity Fc gamma receptor genes. Both backcrosses were examined by interval mapping for quantitative trait loci linked with autoantibody and total Ig production. Nba2 was linked with elevated serum levels of multiple autoantibodies, including a variety of antinuclear Abs (anti-dsDNA, anti-chromatin and anti-histone) and autoantibodies to gp70, in both backcrosses. Nba2 was also linked (or showed a trend for linkage) with hypergammaglobulinemia and IgG1, IgG2a, and/or IgG3 levels in each backcross. In the (B6.H2z x NZB)F1 x NZB backcross, MHC was an additional genetic contribution that interacted with Nba2 in the production of autoantibodies and the development of nephritis. Together, these data provide new insight into the nature of one important genetic contribution to murine lupus and suggest that Nba2 may act as an immune response gene that influences Ag-driven B cell responses to self and possibly to exogenous Ags.

Animals↗

Effect of genetic background on the contribution of New Zealand black loci to autoimmune lupus nephritis.

Autoimmune diseases such as systemic lupus erythematosus are complex genetic traits with contributions from major histocompatibility complex (MHC) genes and multiple unknown non-MHC genes. Studies of animal models of lupus have provided important insight into the immunopathogenesis of disease, and genetic analyses of these models overcome certain obstacles encountered when studying human patients. Genome-wide scans of different genetic crosses have been used to map several disease-linked loci in New Zealand hybrid mice. Although some consensus exists among studies mapping the New Zealand Black (NZB) and New Zealand White (NZW) loci that contribute to lupus-like disease, considerable variability is also apparent. A variable in these studies is the genetic background of the non-autoimmune strain, which could influence genetic contributions from the affected strain. A direct examination of this question was undertaken in the present study by mapping NZB nephritis-linked loci in backcrosses involving different non-autoimmune backgrounds. In a backcross with MHC-congenic C57BL/6J mice, H2z appeared to be the strongest genetic determinant of severe lupus nephritis, whereas in a backcross with congenic BALB/cJ mice, H2z showed no influence on disease expression. NZB loci on chromosomes 1, 4, 11, and 14 appeared to segregate with disease in the BALB/cJ cross, but only the influence of the chromosome 1 locus spanned both crosses and showed linkage with disease when all mice were considered. Thus, the results indicate that contributions from disease-susceptibility loci, including MHC, may vary markedly depending on the non-autoimmune strain used in a backcross analysis. These studies provide insight into variables that affect genetic heterogeneity and add an important dimension of complexity for linkage analyses of human autoimmune disease.

Aging↗

Genetic linkage of IgG autoantibody production in relation to lupus nephritis in New Zealand hybrid mice.

F1 hybrids of New Zealand black (NZB) and New Zealand white (NZW) mice are a model of human systemic lupus erythematosus. These mice develop a severe immune com-plex-mediated nephritis, in which antinuclear autoantibodies are believed to play the major role. We used a genetic analysis of (NZB x NZW)F1 x NZW backcross mice to provide insight into whether different autoantibodies are subject to separate genetic influences and to determine which autoantibodies are most important in the development of lupus-like nephritis. The results showed one set of loci that coordinately regulated serum levels of IgG antibodies to double-stranded DNA, single-stranded DNA, total histones, and chromatin, which overlapped with loci that were linked to the production of autoantibodies to the viral glycoprotein, gp70. Loci linked with anti-gp70 compared with antinuclear antibodies demonstrated the strongest linkage with renal disease, suggesting that autoantibodies to gp70 are the major pathogenic antibodies in this model of lupus nephritis. Interestingly, a distal chromosome 4 locus, Nba1, was linked with nephritis but not with any of the autoantibodies measured, suggesting that it contributes to renal disease at a checkpoint distal to autoantibody production.

Alleles↗

Analysis of the New Zealand Black contribution to lupus-like renal disease. Multiple genes that operate in a threshold manner.

F1 progeny of New Zealand Black (NZB) and New Zealand White (NZW) mice spontaneously develop an autoimmune process remarkably similar to human systemic lupus erythematosus. Previous studies have implicated major genetic contributions from the NZW MHC and from a dominant NZB gene on chromosome 4. To identify additional NZB contributions to lupus-like disease, (NZB x SM/J)F1 x NZW backcross mice were followed for the development of severe renal disease and were comprehensively genotyped. Despite a 50% incidence of disease, significant associations between the presence of the NZB genotype and disease were noted on chromosomes 1, 4, 7, 10, 13, and 19. The data indicated that multiple NZB genes, in different combinations, contribute to severe renal disease, and that no single gene is required. To further investigate this NZB contribution, NZB x SM/J (NXSM) recombinant inbred (RI) strains were crossed with NZW mice, and F1 progeny were analyzed for the presence of lupus-like renal disease. Interestingly, nearly all of the (RI x NZW)F1 cohorts studied expressed some level of disease. Five RI strains generated a high incidence of disease, similar to (NZB x NZW)F1 mice, and nearly one-half of the cohorts developed disease at intermediate levels. Only two cohorts demonstrated very little disease, supporting the conclusion that multiple genes are capable of disease induction. Experiments correlating the genotypes of these RI strains with their ability to generate disease revealed that none of the disease-associated loci defined by the backcross analysis were present in all five RI strains that generated disease at high levels. Overall, both the backcross data and RI analysis provide additional support for the genetic complexity of lupus nephritis and uphold the conclusion that heterogeneous combinations of contributing NZB genes seem to operate in a threshold manner to generate the disease phenotype.

Animals↗

Evidence for polyclonal T cell activation in murine models of systemic lupus erythematosus.

CD4+ T cells have been shown to be important in the development of disease in murine models of SLE. We compared the TCR V beta repertoires of young (healthy) and older (diseased) New Zealand hybrid mice as well as non-autoimmune strains to characterize changes in TCR usage associated with the development of disease. Despite large increases in the total number of splenic CD4+ T cells with age in diseased mice, we noted little skewing of the V beta repertoire. For example, diseased NZB.H-2bm12 mice failed to exhibit a significant change in the percentage of any V beta subset despite a fivefold increase in the number of CD4+ T cells. Strains without lupus-like disease, including NZB.H-2b mice, demonstrated no increase in CD4+ T cell numbers with age. Similar to NZB.H-2bm12 mice, (NZB x SWR)F, and (NZB x NZW)F1 mice showed disease-related increases in CD4+ T cell numbers, but no changes in V beta repertoire that could be linked to disease development. Differences in V beta usage between young autoimmune and non-autoimmune strains of mice matched for either MHC or background genes were consistent with genetic influences unrelated to disease. Overall, the heterogeneous repertoire of proliferating T cells provides evidence for polyclonal T cell expansion in murine models of lupus and suggests that activation either involves a multitude of conventional self-antigens or may be independent of the TCR. However, the requirement for specific class II MHC molecules suggests that this polyclonal T cell expansion is dependent on a much smaller and specific autoreactive response.

Aging↗

Development of the T cell receptor repertoire in lpr mice.

The development of double-negative (DN; CD4-, CD8-) T cells and their relationship with other T cell subsets in lpr mice remain poorly understood. Based on studies identifying lpr as a mutation in the fas gene, it has been hypothesized that defective apoptosis in the thymus abnormally affects T cell development and results in the lpr phenotype. A review of studies of T cell receptor repertoires in lpr mice, however, suggests that thymic events are mostly normal in lpr mice. Thus, a global defect in negative selection is not apparent in any T cell population, and positive selection of CD4+ and CD8+ subsets appears to be normal. Surprisingly, repertoire studies also suggest that the majority of DN T cells are positively selected on class I, but not class II, MHC molecules. Furthermore, the expansion of the DN T cell population appears to be driven by abnormal peripheral events. Together, these results provide new insights into the role of fas in T cell development and the aberrant T cell lymphoproliferation in lpr mice.

Animals↗

Generation and characterization of cloned T helper cell lines for anti-DNA responses in NZB.H-2bm12 mice.

We have previously demonstrated that the introduction of the bm12 mutation into NZB mice results in animals that spontaneously produce high titer IgG autoantibodies to dsDNA. The observation that NZB.H-2bm12 develop lupus although NZB.H-2b control mice do not, provides a unique system to study the role of Th cells in the production of antibodies to dsDNA. We have isolated, in the absence of a known stimulating autoantigen, a series of seven autoreactive T cell clones that provide help in vitro for the production of IgG anti-dsDNA antibodies by syngeneic B cells. The data on these seven cloned T cell lines was compared to two cloned T cell lines specific for keyhole limpet hemocyanin. The seven cloned T cell lines, coined clones 19D, 23G, 410F, 410H, C1, C15, and C52 all show significant help in vitro for production of IgM and IgG antibodies to ssDNA and dsDNA; antibody levels increased 7- to 30-fold compared to cultures without T cells. Clones C1, C15, and C52 were furthered studied and were shown to provide help for IgM antihistone and anti-OVA responses but provided significantly less help for IgG antibodies. In contrast, keyhole limpet hemocyanin-specific cloned T cell lines TK2 and TK5 provided help for IgM antibodies to ssDNA, dsDNA, and histone, but failed to significantly increase IgG antibodies to ssDNA, dsDNA, or histone. The cloned T cell lines were restricted to H-2bm12 and proliferated only in response to APC from NZB.H-2bm12 and B6.C-H-2bm12 but not NZB.H-2b or NZB.H-2d mice; their in vitro helper activity was inhibited by antibodies to class II. All cloned T cell lines expressed Thy-1, CD5, and TCR-alpha/beta. Three of the seven clones used TCR-V beta 4. However, the V beta expression of the four remaining autoreactive T cell clones could not be determined. All of the autoreactive cloned T cell lines produce significant IL-4 but no detectable IL-2 or IFN-gamma. We believe that HPLC-purified peptides eluted from I-Abm12 molecules from APC can potentially provide insight on the putative autoantigen.

Animals↗

Purification of transfer factors.

Transfer factor activities have been studied in both clinical and basic science settings for several decades. Until now, highly purified transfer factors that are suitable for molecular analysis have not been available. This has impeded progress towards understanding the molecular and cellular basis of the activities of these important inducers of cell-mediated immune responses. Murine transfer factors with specificities for chicken egg albumin or horse spleen ferritin were purified to virtual homogeneity using a combination of affinity chromatography and reversed-phase and polytypic high performance liquid chromatography (hplc). Transfer factors prepared by this methodology were recovered in high yield and in biologically-active, antigen-specific forms. The purified materials were further analyzed using sodium dodecyl sulfate polyacrylamide gel electrophoresis, chromatographic methods and an in vivo assay for immunological activity. For the first time definitions for unit transfer factor activity and specific activity are introduced. The results of these experiments indicate that transfer factors are a family of highly polar, hydrophilic molecules of low molecular weight (approximately 5,000) which are produced in small quantities by lymphoid cells and which have potent biological activity. The availability of purified transfer factors should facilitate definitive studies into the nature and mechanisms of production and action of these molecules.

Animals↗

Murine transfer factor. IV. Studies with genetically regulated immune responses.

Transfer factor-containing dialysates from mice that were either high or low responders to GAT10, GLA5, or ovalbumin were assayed for their ability to transfer delayed hypersensitivity to murine recipients of either high or low responder phenotype. Dialysates from high responder strains contained transfer factor that would transfer delayed hypersensitivity to both high and low responder recipients. These transfers were not restricted by disparities at the MHC or Igh loci. Identically prepared materials from low responder donors contained little or no transfer factor activity and would not transfer delayed hypersensitivity to either high or low responder recipients. Thus, administration of transfer factor transfers the high responder phenotype to low responder recipients. The data also suggest that production of transfer factor is regulated by Ir genes but that the immunologic activities of transfer factor are not.

Animals↗

Human tonsillar IgE biosynthesis in vitro. II. Analysis of T cell regulation with monoclonal antibodies.

Phenotypes of T cells regulating human tonsillar IgE biosynthesis in vitro were studied by use of Leu 2a and Leu 3a monoclonal antibodies that recognize T cell subsets. B cells cultured with Leu 3a+-enriched populations (B cells plus T3a) produced significantly more IgE and IgG in the presence of pokeweed mitogen than B cells with the Leu 2a+-enriched populations (B cells plus T2a) (p less than 0.001 for IgE and p less than 0.001 for IgG). No significant differences were observed in IgE and IgG synthesis between the cultures of B cells alone and B cells plus T2a. T2a, but not T3a cells, significantly suppressed IgE synthesis (p less than 0.05 for geometric means and p less than 0.001 for percent suppression) when the cells were added to cultures of B cells plus T3a. Suppression of IgG synthesis was not observed under conditions that suppressed IgE synthesis, suggesting qualitative and quantitative differences in regulation of production of these isotypes. When T2a cells were irradiated, the suppressor activity disappeared. When graded numbers of T3a cells were added to B cells, it was noted that IgE synthesis first increased and then decreased as the numbers of T3a were increased. When the T3a cells were irradiated, IgE biosynthesis was suppressed at lower T/B ratios (less than 1 in four of five experiments) and was enhanced at higher T/B ratios (greater than 1 in all five experiments). Similar results were observed in experiments with OKT4 and OKT8 monoclonal antibodies. It is concluded that phenotypes of helper T cells for IgE synthesis are Leu 3a+ or OKT4+ and that IgE suppressors are predominantly Leu 2a+ or OKT8+ and are radiosensitive, as reported for regulation of other isotypes. However, it is suggested that Leu 3a+ and OKT4+ cells consist of radioresistant and radiosensitive helper cells and, presumably, a minor population of suppressor cells.

Antibodies, Monoclonal↗