PubMed HealthSearch

Biomedical subjects

C Berek

Publications and source records attributed to C Berek.

At least 19 recordsLinked to original sources

A novel monospecific IgG2/lambda-autoantibody with specificity for a mitochondrial antigen: evidence for an antigen-driven pathogenetic B-cell response in rheumatoid synovial tissue, induced by tissue alteration.

To elucidate the pathogenic role of synovial B cells in rheumatoid arthritis (RA), nine human IgG/lambda-secreting B-cell hybridomas from rheumatoid synovial tissue of a patient with definite RA were screened by enzyme-linked immunosorbent assay and indirect immunofluorescence on tissue cryosections for detection of antibodies against autoantigens. One IgG2/lambda monoclonal antibody (mAb) from the B-cell hybridoma ELG211/15/63 (= hybr63) exhibited intense immunofluorescence reactivity in the cytoplasm of chondrocytes and epithelial cells of the gastrointestinal tract, especially in parietal cells of gastric mucosa (human and mouse tissue), representing a mitochondrial pattern. This result was confirmed by morphometric analysis of immunoelectron microscopy data, exhibiting a significantly higher labeling density in mitochondria (p < or = 0.001) than in the cytoplasmic background, with predominant staining in the inner mitochondrial membrane and mitochondrial matrix (p < or = 0.05). Immunoblotting experiments carried out with gastric mucosa, and a mitochondrial protein preparation revealed two major proteins of 38 and 50 kd under reducing conditions. The analysis of the IgV(H) genes from this B-cell hybridoma showed highest homology to the human germline gene DP53 (96%). The IgV(L) region gave highest homology to the human germline gene DP5 (93%). In the complementarity-determining regions, residues of the H- and L-chain variable regions replacement mutations only indicated that this B-cell clone had been antigen-selected for its affinity (ratio of replacement to silent mutations: > or = 7). To analyze the in vivo expansion of the B-cell clone, primers specific for the V(H) to D to J(H) rearrangement of this B-cell hybridoma were used. Specific amplifications could be detected within part of the synovial tissue but not within the cells of the synovial fluid and peripheral blood of the patient. The ability of the IgG2/lambda mAb to induce an inflammatory reaction was tested by intraperitoneal application in severe combined immunodeficiency (SCID) mice, which resulted in an inflammatory, predominantly granulocytic infiltration of the peritoneum. Consequently, intrasynovial cell death or cartilage destruction seems to be a possible source of liberation of mitochondrial antigens, inducing a local, antigen-driven IgG2/lambda B-cell response with the ability to induce an inflammatory reaction. These data suggest that tissue destruction may serve as a source of arthritogenic antigens that perpetuate and amplify the local pernicious inflammatory process in RA synovialitis.

Amino Acid Sequence

B-cell activation and development within chronically inflamed synovium in rheumatoid and reactive arthritis.

In autoimmune diseases, B cells often accumulate in the affected tissue. In patients with rheumatoid arthritis or reactive arthritis, germinal center-like structures may develop in the inflamed synovial tissue. B cells from these structures were isolated and their V-gene repertoire determined. The majority of synovial B cells are long-term memory cells and thus are part of the chronic inflammatory reaction. In the synovium a micro-environment is built up which allows the activation of naive and memory B cells and the diversification of their V-gene repertoire. The analysis of plasma cells suggests that these cells are long lived and hence accumulate in the synovial tissue under chronic activation.

Arthritis, Reactive

Antigen-dependent B cell differentiation in the synovial tissue of a patient with reactive arthritis.

BACKGROUND: Reactive arthritis (ReA) can develop as a consequence of a bacterial infection with organisms such as Chlamydia trachomata, Shigella flexneri, or Yersinia enterocolitica. Although the mechanism underlying the induction of a chronic synovitis is unknown, the expression of HLA-B27 seems to play a crucial role in the etiology of the disease. Bacterial antigens induce a humoral immune response, but little is know about the impact of B cells on the inflammatory processes developing in the synovial membrane. MATERIALS AND METHODS: Cryostat sections were prepared from the synovial tissue (ST) of patients with ReA and stained with antibodies specific for T, B, and follicular dendritic cells. Lymphoid infiltrates were directly isolated by microdisection and DNA was prepared from them. The rearranged V genes were amplified by polymerase chain reaction (PCR), cloned, and sequenced. RESULTS: Histological staining showed that germinal, center-like structures develop in the ST of patients with ReA. B cells with a heterogenous repertoire were isolated from these lymphoid infiltrates. The majority of V regions carried somatic mutations indicating that sequences are derived from memory B cells. Genealogical trees demonstrate clonal expansion and diversification of the B cell repertoire in the ST. CONCLUSIONS: The finding of local V-region diversification suggests that in the ST of patients with ReA, an antigen-driven, T cell-dependent differentiation of B cells occurs. This local B cell response may contribute to the progress of the disease. Whether B cells are specific for the bacteria inducing the synovitis or for self-determinants present in the ST remains to be determined.

Adult

Differentiation of B cells in the nonlymphoid tissue of the synovial membrane of patients with rheumatoid arthritis.

In patients with rheumatoid arthritis the synovial membrane of the affected joint is infiltrated with lymphoid cells which may be arranged in structures resembling germinal centers. We have directly isolated such infiltrates to determine whether B-cell clones within them are selected and expanded in a process analogous to that which normally takes place in the germinal centers in secondary lymphoid organs. The data suggest that an antigen-driven process leads to the accumulation of B cells in the synovial membrane. The finding of identical sequences in consecutive sections suggests that under conditions of chronic stimulation, memory B cells may enter a stage of differentiation in which they proliferate without further accumulation of somatic mutations. Further we see intraclonal diversity which underlines the germinal center-like character of these infiltrates and demonstrates that a microenvironment is built up in this nonlymphoid tissue which supports antigen-dependent differentiation of B cells. This is the first demonstration, to our knowledge, of a germinal center-like reaction outside lymphoid tissue.

Adult

Correlation between immune maturation and idiotypic network recognition.

The maturation of T-dependent humoral immune responses is mediated by somatic mutations. Antigen selection is one mechanism for the activation of B cell clones which express antibodies with progressively increased affinity and which are derived as somatic variants from germ-line-encoded genes. However, the emergence of B cell clones secreting rather low-affinity antibodies and the shift to alternative germ-line V region gene combinations during secondary and tertiary responses cannot be explained by antigen selection. It has been considered that idiotypic suppression may favor this clonal shift. Such an involvement would require that idiotypic recognition in the syngeneic host must be highly restricted to private idiotopes of each clone sequentially activated during immune maturation. To test this possibility, we produced 19 syngeneic anti-idiotypic antibodies to the germ-line-encoded major Ox1 idiotype (IgM-IdOx1 H11.5) of the anti-2-phenyl-oxazolone (phOx) immune response in BALB/c mice. The fine specificity of these anti-IdOx1 was tested with a set of anti-phOx monoclonal antibodies, representing the first steps of maturation. About half of the anti-IdOx1 showed almost no reactivity with the IdOx1 after the switch to IgG and none of the anti-IdOx1 reacted with anti-phOx antibodies which carried a glycine or histidine instead of arginine as the middle amino acid of the D region. These observations suggest a strong correlation between immune maturation and the idiotypic network. A model is presented in which idiotypic suppression may function as a driving force for diversification and maturation of the antigen-induced immune response.

Animals

[Intra-articular B-cells in the pathogenesis of rheumatoid arthritis].

B-cells of the rheumatoid synovial tissue are constant and in some cases dominant elements of the inflammatory infiltrate and are located near to the site of tissue destruction. The pattern of B-cell distribution, the pattern and the relationship to the corresponding antigen presenting cells (follicular dendritical reticulum cells; FDC's) shows a great variation: B cells exhibit a follicular organisation forming secondary follicles, follicle like patterns with irregular formed FDC's networks and a diffuse pattern of and isolated FDC's. Molecular analysis of immunoglobulin genes from synovial B-cell clones and synovial tissue demonstrates the occurrence of immunoglobulin gene hypermutation as well as germline configuration. The FDC formations in the synovial tissue may therefore serve as an environment for B-cell maturation which is involved in the generation of autoantibodies. An autoantibody may be only defined as "pathogenic" if the antibody fulfills the Witebsky-Rose-Koch criteria for classical autoimmune disease: definition of the autoantibody, induction of the disease by transfer of the autoantibody and isolation of the autoantibody from the disease specific lesion. B-cells of rheumatoid synovial tissue show specificity for FcIgG, collagen 2, sDNA, tetanus toxoid, mitochondrial antigens (M2) and bacterial HSP's and the contribution of these antibodies to the pathogenesis of RA are still hypothetic. Antibody with specificity for bacterial HSP's which have arose during contact with an infectious agent and may due to crossreactivity with eukaryotic HSP of synovial tissue perpetuate the local inflammatory process. The characteristic pattern, the localisation within the area of tissue destruction and the exclusive function of B-cells to recognize conformation dependent antigens suggests a central role of B-cells in the inflammatory process. The analyzation of the synovial tissue B-cell therefore will help to characterise antigens which are responsible for the pathogenesis of RA.

Antibody Specificity

Development of antibody diversity in single germinal centers: selective expansion of high-affinity variants.

In a T cell-dependent immune response the microenvironment of the germinal center plays a crucial role in the affinity maturation of the antigen-specific, immunoglobulins. In order to look at the development of antibody diversity we have isolated single germinal centers and sequenced light chains characteristic of 2-phenyl-oxazolone (phOx)-specific antibodies. Fourteen days after immunization we can demonstrate various stages of intraclonal diversity. There are germinal centers where B cells are practically unmutated, suggesting that in these cases a substantial clonal expansion has taken place prior to the activation of the hypermutation mechanism. In other germinal centers, sequences with a low number of randomly distributed somatic mutations were observed, indicating that these changes have been introduced recently and/or that they fail to generate high-affinity variants and hence provide no basis for affinity selection. Finally, germinal centers are found in which practically all sequences carry the amino acid substitutions characteristic of the high affinity phOx antibodies. In these latter cases the high-affinity variants have been preferentially expanded. We conclude that affinity selection is a process that operates right from the beginning of germinal center development. Those B cells with a relative high affinity for the antigen gain a proliferative advantage over other cells and will dominate the response and these are the cells which will be selected to differentiate into memory cells.

Amino Acid Sequence

Maternal immunization modulates the primary immune response to 2-phenyl-oxazolone in BALB/c mice.

The development of the antibody repertoire in newborn mice is greatly influenced by idiotype network interactions. It has been demonstrated that anti-idiotypic antibodies either directly injected or transferred from the mother may alter the repertoire for life. For an elucidation of the underlying mechanisms we have analyzed the primary immune response to 2-phenyl-5-oxazolone (phOx) coupled to chicken serum albumin (CSA) in BALB/c mice after complete disappearance of maternal antibodies which originated from different stages of affinity maturation. Depending on the serum titers of the mothers after primary (1 degree mo), secondary (2 degrees mo) or tertiary (3 degrees mo) immunization, maternal anti-phOx IgG persisted in F1 mice for up to 9 months. In addition, F1 mice born to 2 degrees mo developed--even without immunization--an anti-phOx IgM titer which reached levels similar to an antigen-induced primary response. An enhancement of the early primary anti-phOx as well as anti-CSA response was seen in F1 mice born from 1 degree mo, whereas the response was delayed when born to 2 degrees mo and 3 degrees mo. The antibody titers in the latter group of mice remained at a lower level for 3 months. In contrast, mice of the F2 generation which received a smaller amount of the same collection of maternal antibodies as F1 mice from 3 degrees mo exhibited a quite different primary response: (i) They showed an earlier onset in their anti-CSA response. (ii) Whereas normally a plateau in antibody titer was reached by the 4th weak after immunization, in 55% of the F2 mice a prolonged increase of the anti-phOx and anti-CSA antibody titers was observed. At 12 weeks after antigenic challenge, titers reached plateau levels of 6 x 10(5) which were never before seen in a primary phOx or CSA response. Thus, depending on its own immunological experience, the maternal immune system induces a state of memory in the offspring which results in a faster and/or enhanced immune response in the F1 and F2 [corrected] generations.

Animals

The maturation of the immune response.

In a T-cell dependent immune response, the repertoire of antigen-activated B cells is diversified by a hypermutation mechanism. Only high-affinity variants are selected into the pool of memory cells. This maturation process takes place in a special micro-environment, the germinal centre. Here, Claudia Berek and Mike Ziegner discuss the mechanisms underlying these processes.

Animals

Somatic mutation and memory.

The germinal center plays a crucial role in the development of the memory B cell. The repertoire of the antigen-specific B cell is shaped in this microenvironment. Self-specific B cells escaping normal regulation may develop into high affinity pathogenic Ig-producing cells.

Animals

Maturation of the immune response in germinal centers.

Germinal centers develop in peripheral lymphatic tissue during the primary immune response and may play a crucial role in affinity maturation. We have compared the diversification of the antigen-specific repertoire of B cells, both from within and from outside the germinal centers, during the murine response to 2-phenyloxazolone (phOx). By sequencing V kappa Ox1 L-chains characteristic of phOx-specific antibodies, we show that somatic mutations accumulate in germinal center B cells and that a mutation conferring high affinity binding is found with increasing frequency. An analysis of V/D/J rearrangements suggests that this mutation occurred independently in many B cells, which were then preferentially expanded. We conclude that, although the hypermutation mechanism may be activated before germinal centers develop, affinity maturation by hypermutation and selection takes place in the germinal centers.

Amino Acid Sequence

Anti-CD2 antibodies induce T cell unresponsiveness in vivo.

The CD2 receptor functions as an adhesion and signal molecule in T cell recognition. Multimeric binding of CD2 on T cells to its physiologic ligand LFA-3 on cognate partner cells in vitro efficiently augments the antigen-specific T cell signal delivered by the T cell receptor/CD3 complex. The precise contribution of the antigen-nonspecific CD2-LFA-3 interactions to T cell immune responses in vivo, however, has been difficult to assess. Here we analyzed the role of CD2 in the murine immune response using a nondepleting anti-CD2 monoclonal antibody that induces a marked, reversible modulation of CD2 expression on murine T and B cells in situ. This modulation is dose and time dependent, specific for CD2, and does not require the Fc portion of the antibody. Anti-CD2 antibodies [rat IgG1 or F(ab')2] significantly inhibit the CD4+ T cell-mediated response to hen egg lysozyme and the cytotoxic CD8+ T cell response to a syngeneic tumor cell line. In both cases, anti-CD2 antibodies are only effective when administered before or within 24 h after antigen priming. The suppression of the antitumor response corresponds to a sixfold reduction of specific cytotoxic T lymphocyte precursor cells and results in the abrogation of protective antitumor immunity. Anti-CD2 antibodies also affect the humoral immune response to oxazolone: the isotype switch from specific IgM to IgG1 antibodies is delayed, whereas the IgM response is unaltered. In addition, a single antibody injection results in sustained polyclonal unresponsiveness of T cells irrespective of antigen priming and CD2 modulation. These results document that CD2-mediated signals induce a state of T cell unresponsiveness in vivo.

Animals

A private idiotype can become recurrent through genetic recombination and gene(s) unlinked to the Igh locus governs its expression.

Any immune response is characterized by its idiotypic profile. Two different kinds of idiotype (Id) have been described. Private Id are restricted to a few individuals from a species while recurrent Id appear in a large majority of individuals from the same species immunized with the same antigen. We describe, in this report, an experimental model whereby a private Id can become recurrent through genetic recombination. The immune response of A mice against the hapten arsonate is characterized by a recurrent Id called cross-reactive idiotype A (CRIA). A strongly CRI, called CRIA-like, can be occasionally detected in some BALB/c mice (5% to 10%) immunized with arsonate. Molecular studies show that CRIA and CRIA-like antibodies have highly homologous D segments and identical light chains. By contrast, their VH segments are vastly dissimilar. We have examined the anti-arsonate response of inbred strains of mice whose Igh loci are recombinant between those of A/He and BALB/c. Interestingly, we have observed that the CRIA-like Id which is private in BALB/c becomes recurrent in the AXC-1 strain which harbors the VH genes from BALB/c, the DH and CH genes from A/He. Structural studies demonstrate that highly homologous, VH, VL and D segments are used in BALB/c and AXC-1 mice. The basis for this differential expression of highly similar genes could be linked to the DH locus. However, F1 mice stemming from the cross between AXC-1 and BALB/c do not express the Id. The backcross analysis shows that the non-expression of the Id in F1 mice depends on genes unlinked to the Igh locus.

Animals

Somatic mutations in antibodies expressed by germinal centre B cells early after primary immunization.

We have studied the maturation of the immune response by looking at the generation of antibody diversity in germinal centre B cells. Mice were immunized with the antigen 2-phenyloxazolone. Germinal centre B cells, defined by their strong binding to peanut agglutinin (PNA(hi], were sorted from the spleen and fused. Ten days after immunization high numbers of antigen specific hybridoma lines were obtained from the PNA(hi) subset of B cells, suggesting that the small fraction of B cells which are PNA(hi) harbour the antigen activated population. The majority of the day 10 sequences from PNA(hi) cells were shown to be mutated. However, in contrast to results from later stages of the immune response, most of the mutations found were silent. The preferential expansion of B cell clones expressing the mutations characteristic of the mature response was not observed at this stage. Among these hybridoma lines was at least one which, apparently through somatic mutation, had lost the ability to bind antigen. We conclude that in the micro-environment of the germinal centre the B cell repertoire is diversified by hypermutation.

Animals