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Biomedical subjects

U Storb

Publications and source records attributed to U Storb.

At least 37 records · Page 2Linked to original sources

Elevated PC responsive B cells and anti-PC antibody production in transgenic mice harboring anti-PC immunoglobulin genes.

The rearrangement of heavy and light chain immunoglobulin genes is necessary for the production of functional antibody molecules. The myeloma MOPC 167 produces specific antibodies to the antigen phosphorylcholine (PC), which is present on bacterial surfaces, fungi and other environmental contaminants. Rearranged heavy and light chain immunoglobulin genes cloned from MOPC 167 were microinjected into mouse eggs. Within the resulting transgenic mice, expression of the transgenes were limited to lymphoid tissues. Transgenic mice produced elevated levels of anti-PC antibodies constitutively, at 16 days of age, when normal non-transgenic mice were not fully immunocompetent. A triggering antigenic stimulus was not necessary to evoke anti-PC immunoglobulin production. Additionally, the frequency of PC-responsive B cells in these transgenic mice was further increased upon specific immunization.

Animals

Physical linkage of mouse lambda genes by pulsed-field gel electrophoresis suggests that the rearrangement process favors proximate target sequences.

The first complete map of a mammalian immunoglobulin gene locus is presented. Mouse lambda genes were mapped by pulsed-field gel electrophoresis. The gene order is V2-Vx-C2-C4-V1-C3-C1. The distance between V2 or Vx and the C2-C4 cluster is 74 or 55 kilobases (kb), respectively, whereas that between V1 and C3-C1 is only 19 kb; V2 and C3-C1 are at least 190 kb apart. Thus, the distances between the lambda subloci are inversely proportional to their frequencies of rearrangement. The related gene lambda 5 is not within the 500 kb of the lambda locus mapped here.

Animals

B cells expressing Ig transgenes respond to a T-dependent antigen only in the presence of Ia-compatible T cells.

We sought a quicker and easier method for the isolation of B cells enriched for a given Ag specificity. Here, we report our results using transgenic mice bearing mu- and kappa-transgenes that encode an IgR against the hapten phosphorylcholine. Splenic B cells from such mice had a high percentage of phosphorylcholine-binding cells and differentiated in vitro in response to T cell hybridomas in an Ag-specific, Ia-restricted manner. Supernatants from such in vitro cultures could not transfer helper activity, nor could the T cell be replaced in other ways tried when using a classical T-dependent Ag. These results support the model of a cognate interaction between T and B cell, and we present evidence that the interaction may consist of two or more steps.

Animals

Ig lambda-producing B cells do not show feedback inhibition of gene rearrangement.

In order to study the regulation of expression of Ig lambda genes we have analyzed lambda-producing hybridomas derived from transgenic mice which harbor a functionally rearranged kappa transgene. We also analyzed lambda-producing hybridomas from nontransgenic mice. Surprisingly, all but one of the transgenic lambda-hybridomas co-produce kappa L chains. Also, in contrast to transgenic kappa-hybridomas, most lambda-hybridomas have rearranged endogenous kappa genes despite the presence of transgenic kappa-chains and endogenous H chains. Analysis of spleen cells and hybridomas from nontransgenic mice shows that about 20% of lambda-producing B cells in the spleen co-produce kappa, and a similar proportion of lambda-hybridomas from normal spleens produce both kappa- and lambda-chains. The data argue strongly against the strictly sequential expression of kappa and lambda genes. We present a new model for the regulation of kappa and lambda gene expression, whose key feature is the distinction between a kappa cell lineage in which Ig gene rearrangement is susceptible to feedback by a complete antibody molecule at the pre-B cell stage, and a kappa lambda B cell lineage which does not show feedback inhibition during B cell development.

Animals

Feedback inhibition of immunoglobulin gene rearrangement by membrane mu, but not by secreted mu heavy chains.

Previous work (6-10) has shown that allelic exclusion of Ig gene expression is controlled by functionally rearranged mu and kappa genes. This report deals with the comparison of membrane mu (micron) and secreted mu (microsecond) in promoting such feedback inhibition. Splenic B cell hybridomas were analyzed from transgenic mice harboring a rearranged kappa gene alone or in combination with either an intact rearranged mu gene or a truncated version of the mu gene. The intact mu gene is capable of producing both membrane and secreted forms of the protein, while the truncated version can only encode the secreted form. The role of the microsecond was also tested in pre-B cell lines. Analysis of the extent of endogenous Ig gene rearrangement revealed that (a) the production of micron together with kappa can terminate Ig gene rearrangement; (b) microsecond with kappa does not have this feedback effect; (c) microsecond may interfere with the effect of micron and kappa; and (d) the feedback shown here probably represents a complete shutoff of the specific recombinase by micron + kappa; the data do not address the question of mu alone affecting the accessibility of H genes for rearrangement.

Animals

The order and orientation of mouse lambda-genes explain lambda-rearrangement patterns.

Mouse lambda-genes are rearranged in specific V lambda-JC lambda associations: V lambda 1 has only been found to rearrange with JC lambda 3 or JC lambda 1, whereas V lambda 2 mainly rearranges with JC lambda 2 and very rarely with JC lambda 1,3. In order to determine the physical basis for these associations we have cloned the respective lambda-genes and large portions of their flanking regions by chromosomal walking in a total of 141 kb of phage and cosmid clones. With the use of unique probes obtained from such clones, the order and orientation of the mouse lambda-gene segments were determined by analyzing patterns of DNA deletion associated with lambda-gene rearrangements in various cell lines. All V and C gene segments were found to be in the same transcriptional orientation, and V2 and V1 were found not to be next to each other, thus supporting the gene order V2-C2-C4-V1-C3-C1.

Animals

Cloning of a gamma 2b gene encoding anti-Pseudomonas aeruginosa H chains and its introduction into the germ line of mice.

A complete, functional gamma 2b gene (pVCM) was cloned from a mouse hybridoma (VD93) with antibody activity to Pseudomonas aeruginosa. DNA sequencing of the VDJ region of pVCM determined that the VH gene was a member of the J558 family rearranged to JH2. Upon transfection into myeloma cells the gamma 2b gene gave rise to high levels of gamma 2b mRNA and gamma 2b protein. The gamma 2b protein had the same IEF pattern as the parent hybridoma protein VD93 and the antibodies formed from a combination of the pVCM gamma 2b chains and the myeloma lambda-chains bound weakly to P. aeruginosa. However, the hybrid antibodies did not discriminate between the serotypes 2 and 3, whereas the parent protein was specific for serotype 3. Transgenic mice were produced with the pVCM gamma 2b gene which expressed the gamma 2b mRNA (both membrane and secreted forms) only in lymphoid organs. However, contrary to expectations, the gamma 2b mRNA levels were higher in T cells than in B cells in three different transgenic lines. The serum of the transgenic mice had no activity to P. aeruginosa indicating the importance of L chains for the conformation of the Ag binding site. These gamma 2b transgenic mice provide a convenient tool for the study of feedback inhibition of Ig gene rearrangement.

Animals

Expression of immunoglobulin genes in transgenic mice and transfected cells.

Immunoglobulin (Ig) genes are expressed sequentially (first H-, then L-chain genes) during the development of B lymphocytes. These studies, performed with transgenic mice and transfected cells, were aimed at the regulation of turning on and off the rearrangement of Ig genes. The specific recombinase is active in pre-B cells, but not in plasma cells. Production of membrane mu, but not secreted mu or gamma-2b, turns off rearrangement of H genes. Feedback inhibition of kappa-gene rearrangement requires kappa and membrane mu. Kappa alone or in combination with secreted mu does not stop recombination. Mouse lambda genes were mapped by deletion analysis and pulsed-field gel electrophoresis. The gene order is V2-C2,4-V1-C3,C1. The distance between V2 and C2 is 74 kb, but that between V1 and C3, 1 is only 20 kb. V2 and C3, 1 are over 190 kb apart. Lambda genes appear to be rearranged in a subset of B cells that do not respond to feedback inhibition at the pre-B cell stage. Lambda and kappa genes are both rearranged and potentially functional in these cells. Kappa genes may then be deleted by recombination of a sequence (described by Selsing and Siminovitch et al.) downstream of C-kappa with sequences upstream of C-kappa. Presumably the recombinase is eventually inactivated in kappa-lambda cells by a mechanism that is different from H-kappa feedback.

Animals

High-frequency deletional rearrangement of immunoglobulin kappa gene segments introduced into a pre-B-cell line.

We describe an immunoglobulin gene recombination indicator in which a specific rearrangement via deletion results in the acquisition of a dominant phenotype. The indicator consists of the Escherichia coli xanthine/guanine phosphoribosyltransferase (gpt) gene, whose translation is prevented by the presence of an upstream initiation codon out of frame with respect to the gpt coding sequence. Flanking this barrier initiation codon are the heptamer-spacer-nonamer recognition sequences from a kappa chain variable region (V kappa) and from a kappa chain joining region (J kappa). A proper V-J joint results in the deletion of the translational barrier and allows expression of the selectable marker. When tested by transfection into fibroblasts, no rearrangements were detected and the presence of the barrier initiation codon was sufficient to completely abolish gpt expression in these cells. Similarly, no rearrangements were detected after transfer of the test gene into myeloma cells. However, when the construct was introduced into the pre-B-cell line 38B9, greater than 80% of the transfected cells showed evidence of a specific rearrangement. These rearrangements were associated with the translation of gpt, although no selection for its expression was needed. DNA sequence analysis of six different V-J joints revealed that the rearrangement proceeded with a high degree of accuracy. These results indicate that only very minimal DNA sequences (21 base pairs 5' of the V heptamer and 4 base pairs 3' of its nonamer; less than 45 base pairs 5' of the J nonamer and 3' of its heptamer) are required for efficient rearrangement and provide formal proof that kappa gene segments can rearrange by a deletional mechanism.

Antibody Diversity

Transgenic mice with mu and kappa genes encoding antiphosphorylcholine antibodies.

Transgenic mice were produced that carried in their germlines rearranged kappa and/or mu genes with V kappa and VH regions from the myeloma MOPC-167 kappa and H genes, which encode anti-PC antibody. The mu genes contain either a complete gene, including the membrane terminus (mu genes), or genes in which this terminus is deleted and only the secreted terminus remains (mu delta mem genes). The mu gene without membrane terminus is expressed at as high a level as the mu gene with the complete 3' end, suggesting that this terminus is not required for chromatin activation of the mu locus or for stability of the mRNA. The transgenes are expressed only in lymphoid organs. In contrast to our previous studies with MOPC-21 kappa transgenic mice, the mu transgene is transcribed in T lymphocytes as well as B lymphocytes. Thymocytes from mu and kappa mu transgenic mice display elevated levels of M-167 mu RNA and do not show elevated levels of kappa RNA, even though higher than normal levels of M-167 kappa RNA are detected in the spleen of these mice. Approximately 60% of thymocytes of mu transgenic mice produce cytoplasmic mu protein. However, despite a large amount of mu RNA of the membrane form, mu protein cannot be detected on the surface of T cells, perhaps because it cannot associate with T cell receptor alpha or beta chains. Mice with the complete mu transgene produce not only the mu transgenic mRNA but also considerably increased amounts of kappa RNA encoded by endogenous MOPC-167 like kappa genes. This suggests that B cells are selected by antigen (PC) if they coexpress the mu transgene and appropriate anti-PC endogenous kappa genes. Mice with the mu delta mem gene, however, do not express detectable levels of the endogenous MOPC-167 kappa mRNA. Like the complete mu transgene, the M-167 kappa transgene also causes amplification of endogenous MOPC-167 related immunoglobulins; mice with the kappa transgene have increased amounts of endogenous MOPC-167-like mu or alpha or gamma in the spleen, all of the secreted form. Implications for the regulation of immunoglobulin gene expression and B cell triggering are discussed.

Animals

Immunoglobulin genes in DNA restriction fragments.

We have investigated the organization of immunoglobulin genes in mice. High molecular weight DNA from myelomas and Krebs ascites cells was cleaved with EcoRI restriction endonuclease and fractionated using preparative agarose gel electrophoresis. Each fraction was then hybridized to an immunoglobulin mRNA or a cDNA transcribed from the mRNA. In two series of experiments, one with a kappa chain probe (MOPC 41 mRNA), the other with a lambda chain probe (SAPC 178 mRNA), we analyzed a variety of myeloma DNAs and Krebs DNA. In contrast to previously reported findings (Tonegawa, S., et al. (1976) Cold Spring Harbor Symp. Quant. Biol. 41, 877), we did not observe any unique restriction map pattern in the DNA from cells which exress a given immunoglobulin gene. We also found that restriction fragments containing c region genes do not appear to transpose, while DNA sequences corresponding to other portions of the kappa and lambda mRNAs do in some cases.

Animals

Direct demonstration of immunoglobulin kappa chain RNA in thymus T cells by in situ hybridization.

Mouse thymuses with more than 99% T cells have been reported to contain immunoglobulin kappa mRNA-like molecules (kappa RNA) in relatively large quantities. The present study was undertaken to rule out the possibility that the kappa RNA was mainly a product of a few contaminating B cells of the thymus and to determine whether all T-cell subpopulations contained kappa RNA. By in situ hybridization with DNA complementary to kappa mRNA (kappa cDNA) the following observations were made: 98.5% of thymus cell preparations hybridized with kappa cDNA; the 1.5% unlabeled cells were generally larger and paler staining than the majority of thymus cells. Only 0.015% of thymus cells were intensely labeled and appeared to be plasma cells. Also, 87% of spleen cells hybridized with kappa cDNA; most of these showed similar labeling intensity to the majority of thymus cells. The number of unlabeled cells corresponded to the percentage of hemopoietic cells and macrophages in the spleen. Spleen cells in the range of 0.37-0.85% were intensely labeled and appeared to be plasma cells. The following controls supported the conclusion that the results with thymus and spleen were due to specific hybridization: most of the kappa mRNA-deficient tissue culture cells of the plasmocytoid tumor ABPL-4 did not hybridize with kappa cDNA. The kappa mRNA-producing cells from myeloma PC 3741 hybridized in situ with kappa cDNA. Furthermore, all cells from this tumor and all spleen cells hybridized uniformly with a cDNA probe complementary to most of the total cellular poly(A)-containing RNA species of these cells. These results indicate that T cells of all types in the thymus as well as in the periphery contain substantial quantities of kappa RNA.

Animals