Search PubMed⌕ Search

Biomedical subjects

M L Gefter

Publications and source records attributed to M L Gefter.

At least 55 records · Page 3Linked to original sources

Combinational diversity within variable regions bearing the predominant anti-p-azophenylarsonate idiotype of strain A mice.

The humoral immune response in strain A mice to protein conjugates of p-azophenylarsonate (Ars) is characterized by the presence of a major cross-reactive idiotype denoted as IdCR. Previous molecular analyses of monoclonal IdCR+ Ars-binding antibodies isolated from multiply immunized animals have indicated that these antibody variable (V) regions may be the expressed product of a single combination of VH, D, JH, V kappa, and J kappa gene segments. The basis of this apparent domination of the Ars response by V regions encoded by this single combination of gene segments is unclear, but is discussed in this report. Our structural analyses on five monoclonal IdCR+ antibodies that are unable to bind Ars show that in contrast to those of Ars-binding IdCR+ antibodies, these (Ars-nonbinding) IdCR+ V regions are encoded by multiple combinations of VH, D, JH, V kappa, and J kappa gene segments, but with the commonality that they all utilize a single VH gene segment (VHIdCR). We provide examples in which the VHIdCR gene segment is expressed with three different V kappa gene segments and with each of the four JH gene segments to produce serologically detectable IdCR+ Ars-nonbinding antibodies. It would thus appear that the previous failure to detect alternative IdCR+ V segment combinations was due to a sampling procedure requiring that the IdCR+ antibody bind Ars, and not the result of restricted assembly or expression of the VHIdCR gene segment with a particular combination of D, JH, V kappa, and J kappa gene segments. This bias in protocol, however, cannot completely account for the homogeneity in previously studied IdCR+ Ars-binding antibodies, because we were able to isolate, from primary immune responses, IdCR+ antibodies that do bind Ars but that utilize alternative V segment combinations. This finding suggests that combinations of V gene segments encoding IdCR+ antibodies are more numerous in primary as opposed to secondary immune responses, and raises the question of why a single combination of VH, D, JH, V kappa, and J kappa gene segments dominates the secondary strain A immune response to Ars.

Amino Acid Sequence↗

The association of various D elements with a single-immunoglobulin VH gene segment: influence on the expression of a major cross-reactive idiotype.

A large fraction of the anti-p-azophenylarsonate antibodies of strain A/J mice share a major cross-reactive idiotype (IdCR). Structural analysis of monoclonal antibodies expressing this idiotype (IdCR+) indicates that a particular combination of variable region gene segments (Vk, Jk, VH, D, and JH) encodes the variable regions of the light and heavy chains of these IdCR+ antibodies. With the use of serologic methods, hybridoma cell lines have been isolated that produce monoclonal antibodies lacking IdCR determinants (IdCR-), but that are derived from most of the same combination of variable region gene segments that encode IdCR+ monoclonal antibodies. Structural analysis of these IdCR- monoclonal antibodies demonstrates that they are very homologous to each other and to IdCR+ monoclonal antibodies with respect to VH and VL sequences, but are markedly different from IdCR+ monoclonal antibodies in their utilization of D region segments. Comparisons of antigen avidity of these IdCR+ and IdCR- antibodies indicates that conservation of D region structure is not crucial for effective antigen binding. These results indicate the importance of the D region in idiotypy in the IdCR system and demonstrate the variation permitted in D region structure while maintaining antigen recognition.

Amino Acid Sequence↗

The generation of major and minor idiotype-bearing families of anti-p-azophenylarsonate antibodies; stochastic utilization of VH gene segments.

An average of 50% of anti-p-azophenylarsonate (Ars) antibodies bear a cross-reactive idiotype, IdCR, and an average of 15% bear a relatively minor idiotype, Id, in A/J mice. To begin to investigate the processes that influence the expressed levels of these idiotype-bearing antibodies in serum, we have examined the frequency among preimmune B cells of cells that utilize the heavy chain variable region gene segment (VH) needed for IdCR and that which is needed for Id anti-Ars antibody expression. Our results indicate these VH gene segments are functionally rearranged at frequencies one would expect for random usage. The frequency of VH gene segment utilization is similar to, if not higher than, that of VHCR, arguing that the predominance of IdCR-over Id-bearing antibodies is not due to preferential usage of the VHCR gene segment. In addition to the analysis of Ars-immune sera pooled from several mice, we have examined 20 individual A/J mice to determine whether the relative serum levels of IdCR- and Id-bearing antibodies are strictly regulated relative to each other. Among individuals, we find that IdCR and Id antibody levels fluctuate over a 28-fold and a 120-fold range, respectively. The ratio of IdCR to Id antibody levels was found not to be strictly regulated, varying over a 300-fold range. Linear regression analysis of IdCR relative to Id concentrations shows a correlation coefficient of only 0.093. Indeed, rare mice can be found that generate greater levels of Id-bearing antibodies than those bearing IdCR. These results are indicative of a stochastic process involved during the generation of these IdCR-and Id-bearing antibody families. Models accounting for the generation of this highly variable serologic response derived from a preimmune repertoire in which VH gene segments are equivalently utilized are discussed.

Animals↗

Influence of clonal selection on the expression of immunoglobulin variable region genes.

The humoral immune response of the mouse to certain antigens is characterized by the dominant expression of a single or limited number of related, immunoglobulin variable region (V) structures by antibody-secreting lymphocytes. Such dominance could be due to preferred expression of these V regions in the B cell population prior to the immune response or could result from the action of selective or regulatory mechanisms during the immune response. Expression of a heavy chain variable region (VH) gene segment that partially encodes a V region structure that dominates the immune response to para-azophenylarsonate (Ars) in strain A mice was examined in the B cell population of Ars nonimmune mice. This VH gene segment participates in encoding several hundred thousand different V region structures expressed in this B cell population. The immune system is therefore capable of recurrently selecting a single V region structure from such a repertoire for dominant expression by antibody-secreting lymphocytes during an immune response.

Animals↗

Expression and rearrangement of homologous immunoglobulin VH genes in two mouse strains.

A family of murine anti-p-azophenylarsonate (Ars) antibodies share a variable (V) region serologically defined marker, the 36-60 idiotype (Id36-60). Most mouse strains possess five genes highly homologous to the gene encoding the heavy (H) chain V region of antibodies bearing Id36-60 (VH36-60); however, only one of these genes is ever utilized by hybridomas whose antibodies bind Ars and bear Id36-60. The relevant VH genes were cloned from A/J and BALB/c mouse DNA libraries. Their DNA sequences were found to differ at only two positions. Southern blot analysis, protein sequence determination, and nucleic acid sequence determination indicate that the above hybridomas utilize the same joining (JH3), diversity (D), and VH gene segments regardless of BALB/c or A/J strain origin. Despite this virtual identity, BALB/c and A/J mouse strains express quite different serum levels of Id36-60-bearing antibodies when immunized with Ars. The basis of this regulatory process is discussed.

Amino Acid Sequence↗

Isolation of hybridomas expressing a specific heavy chain variable region gene segment by using a screening technique that detects mRNA sequences in whole cell lysates.

A technique is described that allows single hybridoma cell colonies to be assayed for the productive rearrangement of a single immunoglobulin variable region (V) gene segment by utilizing expression of V mRNA for analysis. Hybridomas growing in microwell tissue culture plates are lysed in situ, cellular RNA is directly transferred to nitrocellulose by filtration, and specific immunoglobulin mRNA is detected by hybridization of the filter with a DNA probe. The method is simple and sensitive. A single species of mRNA can be detected in a lysate of 1000 cells; 5000 hybridoma colonies can be easily screened per day. The technique has been successfully used to isolate cell lines from nonimmune mice expressing a particular heavy chain variable region (VH) gene segment.

Animals↗

Monoclonal antibodies to Rhizobium meliloti and surface mutants insensitive to them.

Monoclonal antibodies were produced to the surface of the symbiotic nitrogen-fixing bacterium Rhizobium meliloti. Bacterial lysis in the presence of complement or cycles of agglutination and growth were used to select mutants no longer recognized by the antibodies. The mutants were used to produce new antibodies with different specificities. Several mutants had altered sensitivity to one or more bacteriophages. R. meliloti strains from different sources had distinct patterns of sensitivity to monoclonal antibodies and phages, which together can be used for discriminative typing.

Antibodies, Monoclonal↗

Once-daily propranolol for hypertension.

Twenty patients with essential hypertension, who were receiving a diuretic plus propranolol qid, were instructed to take their entire daily requirement of propranolol as a single morning dose. Blood pressure was measured in standing and supine positions at the end of a dosing interval. Patients were questioned about the occurrence of specific propranolol side effects during each of four bi-weekly evaluations. Mean blood pressure on once-daily propranolol did not differ significantly from that observed on propranolol qid. Daily doses of propranolol ranged from 80-320 mg. Side effects were infrequent and mild. We conclude that propranolol may be administered as a single daily dose to patients with hypertension whose blood pressure already has been controlled on a qid regimen.

Adult↗

Complete heavy and light chain variable region sequence of anti-arsonate monoclonal antibodies from BALB/c and A/J mice sharing the 36-60 idiotype are highly homologous.

Structural and serologic studies on murine A/J monoclonal anti-arsonate antibodies resulted in the identification of a second idiotype family (Id36-60) in addition to the predominant idiotype family (IdCR). Id36-60, unlike IdCR, is a dominant idiotype in the BALB/c strain but is a "minor" idiotype in the A/J strain. The complete heavy and light chain variable region (VH and VL) amino acid sequences of a representative Id36-60 hybridoma protein from both the A/J and BALB/c strains have been determined. There are only four amino acid sequence differences between the VH of antibody 36-60 (A/J) and antibody 1210.7 (BALB/c). Two of these differences arise from single nucleotide changes in which the A/J and BALB/c Id36-60 VH germline gene sequences differ. The two other differences are the result of somatic mutation in hybridoma protein 36-60. In addition, Id36-60 heavy chains employ the same D and JH3 segments in both strains. The entire Vk2 VL of 36-60 and 1210.7 differ by only two amino acids, suggesting that like the heavy chains, they are derived from highly homologous VL genes. The same Jk segment is used in both antibodies. A comparison of the amino acid sequence data from Id36-60-bearing hybridomas suggests that a heavy chain amino acid difference accounts for the diminished arsonate binding by the 1210.7 hybridoma protein. Because the 1210.7 heavy chain is the unmutated product of the BALB/c VH gene, somatic mutation in VH may be required to enhance Ars affinity in this system.

Amino Acid Sequence↗

Fine specificity of idiotope suppression in the A/J anti-azophenylarsonate response.

Two hapten-inhibitable murine monoclonal antiidiotopic antibodies identified two idiotopes expressed by the heavy chain of hybridoma protein 36-65, whose amino acid sequence is encoded in the germ line of A/J mice. Among cross-reactive idiotype-positive hybridoma proteins and p-azophenylarsonate-immune antibodies, the two idiotopes were not always expressed together; some diversified antibodies expressed one idiotope without the other. Suppression that was induced by the two antiidiotopes was idiotope specific and corresponded to the fine specificities of these two reagents.

Animals↗

The genetic basis of antibody production: a single heavy chain variable region gene encodes all molecules bearing the dominant anti-arsonate idiotype in the strain A mouse.

A nucleic acid probe specific for heavy chains bearing the cross-reactive idiotype (Id) associated with the anti-p-azophenylarsonate response of strain A mice has been prepared. Analysis of arsonate-binding Id+ hybridoma cell lines has revealed that all of them contain the same germ-line VH gene rearranged to the JH2 segment. An Id+ hybridoma which is unable to bind arsonate utilized the same VH gene, but it has apparently rearranged to the JH4 segment. Id- cell lines contain other rearranged VH genes. Analysis of DNa of strain A mice revealed that there is apparently only one germ line gene that can give rise to Id+ heavy chains. Since the Id is expressed as a large collection (greater than 50) of related but nonidentical heavy chain sequences, we conclude that their diversity is the result of a somatic mutation process. Analysis of a single hybridoma cell line (45-59) reveals that somatic mutation can operate on an Id-encoding gene and result in an antigen-binding molecule that has lost all of its Id determinants. Further analysis of the genome of strain A mice has revealed the presence of germ-line genes differing from the Id-encoding gene by at least 8 base pairs. These genes, however, apparently do not contribute to the anti-arsonate Id response.

Animals↗

Affinity analysis of idiotype-positive and idiotype-negative Ars-binding hybridoma proteins and Ars-immune sera.

The possibility that idiotype dominance may be associated with increased affinity for hapten was investigated in the murine A/J anti-p-azophenylarsonate (Ars) response. Fluorescence quenching of 14 Ars-binding hybridoma proteins by Ars-tyrosine was measured and Ka calculated using computer-assisted curve fitting. There was a 200-fold range in Ka for idiotype-positive hybridoma proteins, with 2 IgM hybridoma proteins being near the median. No clear difference in Ka was apparent between idiotype-positive (Id+) and idiotype-negative (Id-) hybridoma proteins. Ka was measured by fluorescence quenching on affinity-purified anti-Ars antibodies from 6 conventional antisera; there was no difference between Id+ and Id- (idiotype suppressed) sera. The affinities of the hybridoma proteins were correlated with the ratio of binding to Ars36-BSA and Ars10-BSA by direct radioimmunoassay. With this calibration, functional affinities of Ars-immune sera could be determined from relative binding ratios without the need for prior affinity purification. This was done for 18 Ars-immune sera, and again there was no clear difference between Id+ and Id- sera. Studies from this laboratory have identified the amino acid sequence of a hybridoma protein which corresponds to the germ line DNA sequence for the cross-reactive idiotype family. The present study shows that the protein directly encoded by the germ line gene has low affinity for hapten suggesting that somatic diversification operating on the germ line sequence can produce antibodies with increased affinity for hapten within the cross-reactive idiotype family. The present study also suggests that affinity is not the driving force behind idiotype dominance of the Ars-immune response.

Antibody Affinity↗

Characterization of the gamma-interferon-mediated induction of antigen-presenting ability in P388D1 cells.

We characterized an assay system to study the lymphokine-mediated induction of antigen-presenting ability in P388D1 cells. The ability of lymphokine-induced P388D1 macrophages to present antigen plus Id was measured by their ability to induce interleukin 2 production by antigen-specific, Id-restricted T cell hybridomas in the presence of the appropriate antigen. The production of IL 2 by the T cell hybridomas is known to be dependent on the expression of Ia antigens by the antigen-presenting cells. The results obtained suggest that a factor present in the supernatant of the T cell hybridoma FS7-20.6.18 is responsible for inducing the appearance of I-Ad and I-Ed on P388D1, measured by immunofluorescence, and the ability of the cell to present antigen in association with I-Ad or I-Ed. The factor mediating the induction of antigen-presenting ability is thought to be gamma-interferon, because the hybridoma FS7-20.6.18 is known to produce this lymphokine and the factor is sensitive to pH 2 incubation. gamma-Interferon produced by recombinant DNA technology was found to induce antigen-presenting ability in this assay; however, alpha- and beta-interferon were inactive. This observation suggests a unique immunoregulatory role for gamma-interferon. Using many T cell hybridomas in the assay, we were able to distinguish three groups: a) high avidity hybridomas that respond to antigen presented by uninduced P388D1 but show an enhanced response to antigen plus induced P388D1; b) medium avidity hybridomas that do not respond to antigen presented by uninduced P388D1; and c) low avidity hybridomas that show a limited response to antigen presented by induced P388D1, but the response of which increases if the P388D1 cells are induced for longer periods of time. These different patterns of response are believed to be dependent on the Ia antigen density expressed by the gamma-interferon-induced presenting cells, and suggest that the T cell receptors for Ag/Id display marked heterogeneity in their avidities for Ag/Id.

Animals↗

The genetic basis of antibody production: the dominant anti-arsonate idiotype response of the strain A mouse.

Immunization of the A strain of mice with the hapten p-azophenylarsonate (Ars) results in an immune response in which approximately 50% of the anti-Ars antibodies share cross-reactive idiotypic determinants (IdCR). A gene or genes linked to the heavy chain constant region locus is required for the production of this idiotype. The expressed VH gene from a hybridoma cell line which expresses the IdCR has been cloned. DNA hybridization studies utilizing the VH gene have revealed that there are many related genes in both idiotype-producing and idiotype-nonproducing strains of mice. However, under stringent hybridization conditions, only a single band of 6.4 kb is present in Eco R1-digested A strain DNA. Strains of mice which are phenotypically idiotype-negative either lack this band completely or possess a much weaker one at this position. Utilizing DNA from Igh recombinant strains of mice, it has been shown that the VH locus controlling idiotype expression contains the structural gene information for the idiotype-positive heavy chains. It has also been shown that DNA at this locus appears to be sufficient for the production of the cross-reactive idiotype. Utilizing a DNA probe derived from regions flanking the structural gene has confirmed the relatedness of V genes in a variety of mouse strains and revealed a significant degree of polymorphism at the Igh locus.

Animals↗