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U Storb

Publications and source records attributed to U Storb.

113 records · Page 7Linked to original sources

Expression of a microinjected immunoglobulin gene in the spleen of transgenic mice.

Transgenic mice were produced by microinjection of a rearranged, functional immunoglobulin kappa gene into fertilized mouse eggs and implantation of the microinjected embryos into foster mothers. Mice that integrated the injected gene were mated and the DNA, RNA and serum kappa chains of their offspring were analysed. The data from offspring of three different transgenic mice indicate that the microinjected gene is expressed in the spleen, but not the liver of mice which inherited the injected gene.

Animals

High expression of cloned immunoglobulin kappa gene in transgenic mice is restricted to B lymphocytes.

Immunoglobulin genes are normally expressed only in cells of the B lymphocyte lineage after a variable (V) and constant (C) gene rearrangement has occurred. To study the control of immunoglobulin gene expression in a defined situation, we have produced transgenic mice by microinjecting a rearranged mouse immunoglobulin kappa gene (designated pB1-14) into fertilized mouse eggs. We present here the analysis of six different kappa-transgenic mouse lines. All the transgenic mice express the microinjected kappa gene in a completely tissue-specific fashion. Transcripts from pB1-14 are found at a high level in the spleen, but are undetectable in nonlymphoid tissues of testis, liver, kidney, heart, muscle, brain and thyroid gland. In lymphoid cell subpopulations, the level of pB1-14 transcripts is correlated with the relative number of B cells; there is no correlation with the proportion of T lymphocytes. We concluded, therefore, that the microinjected kappa gene contains target sequences for B lymphocyte-specific gene activation signals that override the influence of the integration site.

Animals

Allelic exclusion and control of endogenous immunoglobulin gene rearrangement in kappa transgenic mice.

Hybridomas were produced from spleen cells of kappa transgenic mice to investigate expression of the transgenic kappa gene, its effect on allelic exclusion and its effect on the control of light-chain gene rearrangement and expression. Our results show that the transgene is expressed normally and that the production of a complete immunoglobulin molecule turns off light-chain gene rearrangement.

Alleles

Pre-B cells in kappa-transgenic mice.

Recent experiments have shown that the microinjected kappa-chain gene of transgenic mice is expressed in a tissue-specific fashion only in B lymphocytes. The next step was to determine whether, within the B-lymphocyte lineage, the kappa-chain gene was expressed in a normal developmental fashion. Normally, only mu heavy(H)-chain genes, and not kappa-chain genes, are expressed in pre-B cells. To obtain cloned cell lines derived from early cells of the B-cell lineage, we transformed bone marrow cells from kappa-transgenic mice with Abelson murine leukaemia virus (A-MuLV) and tested the resultant cell lines for the retention of the kappa transgene and its expression in RNA and protein. We found that cells with the pre-B phenotype exist in kappa-transgenic mice. We further observed that in A-MuLV-transformed cell lines from a kappa-transgenic mouse with a high copy number of the transgene, the proportion of cell lines expressing kappa (transgenic kappa) was higher than in cell lines from normal or low copy number transgenic mice.

Abelson murine leukemia virus

Somatic hypermutation of an immunoglobulin transgene in kappa transgenic mice.

Initial studies of somatically acquired mutations in immunoglobulin V regions from hybridomas and myelomas that are not derived from joining aberrations, suggested a controlled and specific hypermutation process, because spontaneous mutation rates observed for other genes are extremely low. Some evidence for the idea that mutations are introduced during V-gene rearrangement came from the clustering of mutations at the joining sites, from the absence of mutations in unrearranged V genes and from the low level of mutations in only partially (D-J) rearranged nonproductive heavy-chain alleles. Another model in which mutations accumulate with each cell division, rather than being introduced all at once, was supported by the finding that immunoglobulin genes of hybridomas derived from a single mouse frequently had several mutations in common, and so might be derived from the same precursor cell whose daughters then accumulated additional mutations. But the common mutations in some cases could be due to as yet unidentified related germline genes, or could represent the effect of antigen selection for certain amino acids. To try to detect hypermutation in the absence of V-gene rearrangement, we isolated B lymphocytes with endogenous heavy-chain gene mutations from transgenic mice carrying pre-rearranged kappa-transgenes. We found that these kappa-transgenes were also somatically mutated. This and other observations indicated that: ongoing rearrangement is not required for mutation; there are signals for hypermutation in the transgenes; the mutations are found only in the variable region, so the constant region may not be a target; different transgene insertion sites are compatible with hypermutations and more than one transgene is expressed in the same cell.

Animals