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Biomedical subjects

E Selsing

Publications and source records attributed to E Selsing.

At least 19 recordsLinked to original sources

The mu switch region tandem repeats are important, but not required, for antibody class switch recombination.

Class switch DNA recombinations change the constant (C) region of the antibody heavy (H) chain expressed by a B cell and thereby change the antibody effector function. Unusual tandemly repeated sequence elements located upstream of H chain gene exons have long been thought to be important in the targeting and/or mechanism of the switch recombination process. We have deleted the entire switch tandem repeat element (S(mu)) from the murine (mu) H chain gene. We find that the S(mu) tandem repeats are not required for class switching in the mouse immunoglobulin H-chain locus, although the efficiency of switching is clearly reduced. Our data demonstrate that sequences outside of the S(mu) tandem repeats must be capable of directing the class switch mechanism. The maintenance of the highly repeated S(mu) element during evolution appears to reflect selection for a highly efficient switching process rather than selection for a required sequence element.

Animals↗

Sequences associated with the mouse Smu switch region are important for immunoglobulin heavy chain transgene expression in B cell development.

Analyses of H-chain transgenes have indicated that sequences situated between the mu intronic enhancer and the Cmu exons are important for mu gene expression. We have analyzed several variant mu transgenes and find that a sequence element located within or just upstream of Smu is important for mu transgene expression in both immature and mature B cells. This Smu -associated element appears to be required for functional mu expression in small, resting pre-B cells but not in proliferating pre-B cells. Our results also indicate that this element is responsible for previously reported differential transgene expression in resting and activated/proliferating mature B cells. However, our studies of knockout mice show that deletion of the Smu -associated element from the endogenous IgH locus does not alter early B cell maturation. This indicates that other elements within the H-chain locus can replace the function of the Smu -associated element at least to the mature B cell stage. Surprisingly, we also find that Smu deletion in the IgH locus does not affect levels of the sterile germ-line mu transcripts that are involved in B cell class switching, even though S-region sequences have been indicated to be important for the production of analogous germ-line transcripts for other isotypes.

Animals↗

Gene conversion and homologous recombination in murine B cells.

Gene conversion has been found to be important in the diversification of antibody genes in chickens and in rabbits. In other species, however, it is not clear whether gene conversion plays any role in antibody diversity. Analysis of an H-chain antibody gene construct that was designed to optimize the detection of gene conversion events in transgenic mice has shown that sequence transfers that resemble gene conversion events can occur in murine B cells and are associated with somatic hypermutation. This raises the possibility that an error-prone gene conversion mechanism might play a role in murine somatic hypermutation.

Animals↗

Regulatory regions 3' of the immunoglobulin heavy chain intronic enhancer differentially affect expression of a heavy chain transgene in resting and activated B cells.

We have compared the expression patterns of three Ig heavy chain transgenes. The three constructs differ only by deletion of J-C intron sequences located downstream of the Emu enhancer region. When stably transfected into a myeloma cell line, all three constructs are expressed at comparable levels. However, transgenic mice carrying each construct show dramatic differences in transgene expression. Our results indicate that, in addition to the Emu enhancer, at least two regions, RegA and RegS, within the J-C intron influence transgene expression. RegA, located directly downstream of the core Emu enhancer, is involved in up-regulation of transgene expression after LPS activation of splenocytes. RegS, located within or downstream of the Smu switch region, is important for normal levels of transgene expression in splenocytes of heavy chain transgenic mice.

Animals↗

Analysis of sequence transfers resembling gene conversion in a mouse antibody transgene.

The role of gene conversion in murine immunoglobulin gene diversification is unclear. An antibody gene construct designed to provide the homologous donor and acceptor sequences required for conversion mechanisms was produced and used to generate transgenic mice. When these transgenic mice were immunized, DNA sequence transfers between tandem transgene VDJ regions were detectable and resembled gene conversion events. There is a strong link between these conversion-like sequence transfers and transgene somatic hypermutation, suggesting that both processes might occur at the same stage of B cell differentiation.

Animals↗

Somatic hypermutation of an immunoglobulin mu heavy chain transgene.

We have analyzed somatic hypermutation of an immunoglobulin (Ig) heavy chain transgene. Hybridomas expressing the transgene were produced from immunized transgenic mice and transgene copies were sequenced to assay for mutation. In two IgM-producing hybridomas, as well as in several IgG-producing hybridomas, mutations were found in the VDJ region of the transgene. In the IgM-producing hybridomas, both mutated and unmutated transgene copies were present and expressed as mRNA. Several mutated transgene copies were present in a single cell and these showed different patterns of mutation. Two IgG-producing hybridomas isolated from a single animal also showed a hierarchical pattern of mutation indicating that transgene mutations can accumulate during B cell proliferation, similar to the mutational process for endogenous antibody genes. Among hybridomas that expressed both IgG and IgM molecules derived from the transgene, the isotype-switched gamma transgene copy exhibited a higher level of mutation than the mu transgene copies. Our results indicate that the 15-kb ARSmu transgene contains all the sequence information required to target the Ig-specific hypermutational machinery, and raise the possibility that sequences associated with the endogenous CH locus might enhance somatic mutation.

Amino Acid Sequence↗

Transcription and recombination of the murine RS element.

The deletion of C kappa is a frequent event in lambda-producing B cells in both mice and humans. Deletions of the murine C kappa gene are mediated by recombination events that involve the RS (recombining segment) element located downstream of the C kappa gene. RS recombinations appear to be mediated by the same mechanisms involved in Ig and TCR gene rearrangement. It has been suggested that RS recombinations might activate a factor that is involved in the initiation of lambda gene rearrangement in maturing pre-B cells. We have identified a unique RNA transcript derived from the recombined RS element present in some pre-B cell lines. However, gene transfer studies indicate that this RS transcript is not sufficient to induce lambda gene recombination in pre-B cell lines. We also find that recombination of the RS element in pre-B cell lines is closely correlated with changes in chromatin structure and transcriptional activation. Thus, recombination of the RS element in pre-B cells appears to be regulated in a manner similar to the regulation of antibody gene VDJ joining.

Amino Acid Sequence↗

B cell abnormalities induced by a mu Ig transgene extend to L chain isotype usage.

We have analyzed the phenotype of B cell populations from mice transgenic for a rearranged Ig mu H chain gene. We find a decrease in the number of B cells in the spleens of these mice. Transgenic B cells have decreased surface levels of both IgM and IgD. The circulating IgM in these mice is 3- to 10-fold enriched in lambda L chains, compared with that in non-transgenic mice. Analysis of IgM-producing hybridomas, from transgenic mice that express the transgene at high levels, demonstrates that this higher lambda frequency is observed in transgene-nonexpressing as well as transgene-expressing hybridomas. A partial loss of L chain isotype exclusion is also noted in these hybridomas, and a significant proportion of primary B cells expressing both kappa and lambda L chains on their surface can be demonstrated. These findings suggest an ability of the transgenic Ig H chain to affect events in B cell ontogeny beyond the H chain locus. Our results support a quantitative model of exclusion for both the H chain alleles and the L chain isotypes.

Animals↗

Isotype switching of an immunoglobulin heavy chain transgene occurs by DNA recombination between different chromosomes.

Transgenic mice carrying an immunoglobulin mu heavy chain transgene exhibit isotype switching of the transgene. We have now characterized the mechanism of transgene switching in these mice. The site of mu transgene insertion in one transgenic line has been localized to chromosome 5 using a series of polymorphic endogenous retroviruses as genetic markers in backcross mice. The endogenous immunoglobulin heavy chain locus resides on mouse chromosome 12, which shows that transgene isotype switching can occur between two different chromosomes even though normal antibody gene switching has generally been thought to occur within one chromosome. We find that transgene isotype switching involves interchromosomal DNA recombination, and our data suggest that the same enzymatic mechanisms mediate both normal isotype switch recombination and interchromosomal transgene switching. Our findings also support the notion that the isotype switching mechanism can induce chromosomal translocations such as observed for the c-myc gene in some B cell tumors.

Animals↗

Neonatal and adult primary B cells use the same germ-line VH and V kappa genes in their (T,G)-A-L-specific repertoire.

Although there is a nonrandom usage of VH gene families by primary B cells early in ontogeny, at issue is whether the preferential rearrangement of 3' germ-line VH genes, e.g., VH7183 and VHQ52 family genes, influences the neonatal B cell repertoire that can be expressed in response to Ag. In order to address this issue, and to determine whether neonatal B cells can use the same germ-line VH and V kappa genes as adult B cells in their primary response, we have analyzed at the molecular level the neonatal antibody response to (T,G)-A-L and compared it with the adult primary response. Among the TGB5 Id+, GT+ antibodies, which dominate the neonatal response to (T,G)-A-L, two VH gene families were used: J558 (high frequency) and 36-60 (low frequency). The majority of Id+ neonatal hybridomas used the same germ-line VH gene (H10, from the VHJ558 family), but with enormous diversity in the D region, and one of two germ-line V kappa 1 genes (V kappa 1A, V kappa 1C). These are the same germ-line V-genes used by most primary adult Id+ hybridomas, and the frequency of expression of this germ-line V-gene combination appears equivalent in the neonatal and adult primary repertoires. Therefore, it is clear from this study that as early as day 5, neonatal B cells can use the same germ-line V-genes as adult primary B cells in their Ag-specific repertoire.

Amino Acid Sequence↗

Tissue-specific expression of allogeneic class II MHC molecules induces neither tissue rejection nor clonal inactivation of alloreactive T cells.

To analyze the control of self tolerance to tissue-specific Ag, we have constructed C57BL/6 (H-2b) transgenic mice that express allogeneic class II (I-Ad) molecules exclusively on pancreatic islet cells. By a number of criteria, including I-Ad mRNA, and tissue and cell surface I-Ad protein levels, the islet cells appear to be expressing levels of I-Ad similar to B lymphocytes. Although one of the transgenic lines that expresses only the beta-chain occasionally displays slightly elevated glucose levels, this hyperglycemia is not enhanced when alpha and beta are coexpressed, allowing for cell surface I-Ad expression. None of the mice examined has demonstrated any autoimmune reaction to the I-Ad+ islet cells. Despite this apparent lack of recognition of the I-Ad+ islet cells, these animals demonstrate no reduction in the in vitro MLR generated to the same MHC molecule. Therefore, these mice remain functionally tolerant to the transgene product without inactivating those T cells that can recognize this same MHC molecule in vitro.

Animals↗

Quantitative analysis of idiotypic mimicry and allelic exclusion in mice with a mu Ig transgene.

Analysis of C57BL/6 mice (IgM allotype, Igh-6b or mu b) that carry an Ig H chain transgene of a different allotype (mu a) shows that IgM molecules of mixed allotype (mu a mu b) are present among serum antibodies. The finding was extended to hybridomas prepared from nonimmune transgenic mice, many of which also failed to exhibit allelic exclusion. The proportions of mu a and mu b secreted by individual hybridomas varied markedly, and the product of an individual hybridoma was found to be heterogeneous with respect to the allotype content of individual molecules. The ratio of mu a:mu b chains secreted by individual hybridomas was found to correlate with the number of transgene copies remaining in each hybridoma, and several hybridomas that secrete only mu b-positive molecules had apparently lost all but one copy of the transgene. An idiotype characteristic of the transgene was found to be present only in association with the transgenic (mu a) allotype, and indirect evidence strongly suggests that the idiotype was present only on mu a polypeptide chains. Thus, there is no evidence in this system for the induction of idiotypically cross-reactive endogenous molecules.

Alleles↗

DNase I sensitivity of immunoglobulin light chain genes in Abelson murine leukemia virus transformed pre-B cell lines.

We have used Abelson murine leukemia virus (A-MuLV) transformed pre-B cell lines to test the hypothesis that the rearrangement potential of a developing B-lymphocyte is dependent on an "opening" of the chromatin structure surrounding immunoglobulin (Ig) genes, thus allowing accessibility to an Ig gene recombinase. The chromatin structures surrounding heavy (H), kappa (kappa), and lambda (lambda) chain constant-region genes were assessed by DNase I sensitivity in A-MuLV transformed cell lines capable of H, kappa or lambda gene rearrangement. Our results indicate that DNase I-sensitive chromatin structures of these Ig constant-region genes correlate closely with the ability of the genes to undergo recombination. We also find that the chromatin structure of an Ig constant-region locus becomes DNase I sensitive before any DNA rearrangement events occur.

Abelson murine leukemia virus↗

Isotype switching by a microinjected mu immunoglobulin heavy chain gene in transgenic mice.

Immunization of transgenic mice carrying an immunoglobulin mu heavy chain resulted in a response dominated by expression of the transgene variable region. Unexpectedly, in a large proportion of the antibody produced by immunized mice, the transgene variable region was associated with IgG rather than IgM. This demonstrates that the transgene can undergo an isotype switch. Four transgenic founder lines all exhibited transgene isotype switching despite the likelihood of random chromosomal integration of the transgene. In addition one of the lines was analyzed by breeding studies and the transgene was found to be genetically unlinked to the immunoglobulin heavy chain (Igh) locus. These results indicate that a precise chromosomal location is not required for isotype switching and suggest the possibility that the isotype switching process can occur interchromosomally.

Animals↗

Molecular analysis of heavy and light chains used by primary and secondary anti-(T,G)-A--L antibodies produced by normal and xid mice.

The primary (1 degree) antibody response to (T,G)-A--L shows limited heterogeneity, consisting mostly of side chain-specific antibodies that bind GT and that express the TGB5 idiotype (Id). The secondary (2 degrees) response is very diverse: antibodies that bind the backbone A--L constitute a third of the response, and a high proportion of the side chain-specific antibodies do not bind GT and are TGB5 Id-. To provide a molecular basis for understanding this difference in repertoire expression, we analyzed the Ig genes used by heavy and light chains of 1 degree and 2 degrees side chain-specific anti-(T,G)-A--L hybridoma antibodies (HP). Southern blot restriction analysis and nucleotide sequence analysis of the expressed genes used by three TGB5 Id+ 2 degrees HP showed usage of three different VH genes in two VH gene families (36-60 and J558), different D segments, and two different Vk1 genes (the Vk1A and Vk1C subgroups). Thus, antibody heterogeneity in the 2 degrees response is contributed by combinatorial diversity of distinct germ-line genes. Nucleotide sequence analysis of the expressed genes used by TGB5 Id+ 1 degree HP showed use of highly homologous VH genes in the J558 VH gene family and highly homologous Vk1A genes. The majority of TGB5 Id+ 1 degree HP from different donors gave similar heavy and similar light chain gene rearrangements by Southern blot restriction analysis, after correction for known or potential J region differences. The combined nucleotide sequence and Southern blot restriction analysis data suggest that most 1 degree B cells use the same or very similar VH and Vk genes, i.e., the 1 degree response is paucigenic. Different D segments were used by the TGB5 Id+ 1 degree and 2 degrees HP that were sequenced, and there was no apparent correlation between TGB5 idiotypy and VH, D gene, or JH gene usage. However, all TGB5 Id+ HP sequenced used highly homologous genes from the Vk1 group. Expression of a Vk1 light chain correlates with, but is not sufficient for, TGB5 idiotypy, because one GT-binding, TGB5 Id- HP was found to use a Vk1C subgroup light chain. By Southern blot and nucleotide sequence analysis, the Vk genes used by two TGB5 Id+ 2 degrees HP from xid mice are highly homologous, if not identical to the Vk1A gene(s) used by 1 degree and 2 degrees Id+ HP from wild-type mice.

Amino Acid Sequence↗

Active lambda and kappa antibody gene rearrangement in Abelson murine leukemia virus-transformed pre-B cell lines.

The two Abelson murine leukemia virus (A-MuLV)-transformed cell lines, BM18-4 and ABC-1, undergo immunoglobulin L-chain gene recombination during passage in tissue culture. BM18-4 cells are capable of kappa gene recombination, whereas ABC-1 cells are capable of both kappa and lambda gene recombination. The expression of H chains is apparently not necessary for continuing L chain gene recombination in either of these cells, although H-chain expression may have been involved in the initiation of L-chain gene recombination. All ABC-1 cells that have lambda gene rearrangements also display recombined kappa alleles, supporting the hypothesis that kappa and lambda gene recombination are initiated in an ordered, developmentally regulated manner in maturing B cells. However, analyses of the ABC-1 line indicate that pre-B cells that have initiated lambda gene recombination do not terminate kappa gene rearrangement. The lambda gene recombinations that occur in the ABC-1 cell line indicate that the germline order of lambda gene segments is: 5' ... V lambda 2 ... J lambda 2C lambda 2-J lambda 4C lambda 4 ... V lambda 1 ... J lambda 3C lambda 3-J lambda 1C lambda 1 ... 3'. In addition, the frequencies of lambda 1, lambda 2, and lambda 3 gene recombinations among ABC-1 cells are quite different than the frequencies of B cells producing lambda 1, lambda 2, and lambda 3 L-chains in the mouse. RS DNA recombinations also occur in the BM18-4 and ABC-1 cell lines, supporting the notion that Ig gene recombinases are involved in RS rearrangement. Recombined RS segments are infrequent among BM 18-4 cells but common among ABC-1 cells, suggesting that RS recombinational events often occur in maturing pre-B cells just before initiation of lambda gene rearrangements. This developmental timing is consistent with the hypothesis that RS recombination may be involved in the initiation of lambda gene assembly.

Abelson murine leukemia virus↗

The human kappa deleting element and the mouse recombining segment share DNA sequence homology.

We have used cloned mouse and human DNA probes to identify regions of conserved homology between the human and murine DNA segments, (termed kappa deleting element (kde) and recombining segment (RS) respectively) which are frequently recombined in lambda-producing B cells. Heteroduplex analysis indicated extensive homology in the region immediately downstream of the recombination site of both segments. This was confirmed by Southern and direct nucleotide sequence analyses. Fifty percent homology was detected within the 500 nucleotides that neighbour the recombination points in the kde and RS segments. These results indicate that the kde and RS sequences are evolutionarily conserved and may be functionally relevant to normal B cell development.

Animals↗