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W Schuler

Publications and source records attributed to W Schuler.

14 recordsLinked to original sources

Coding joint formation of endogenous T cell receptor genes in lymphoid cells from scid mice: unusual P-nucleotide additions in VJ-coding joints.

The mouse mutation scid adversely affects the process of VDJ recombination. Attempts to form coding joints, that is, to joint V or D to J gene segments generally fail in developing scid lymphocytes. It has been proposed that the scid mutation results a defective VDJ recombinase system. Here we describe five scid T cell lymphomas containing one or two TcR gamma coding joints each, even though the majority of the multiple TcR gamma chain gene rearrangements and all TcR beta rearrangements in these cells were abnormal with the deletions typically found in scid lymphoid cells. One of the five T cell lymphomas was shown to have an active VDJ recombinase system; however, this activity was defective indicating that the scid phenotype has been retained. We conclude that the scid VDJ recombinase system has not completely lost the ability to form coding joints. P-nucleotide additions of unusual length or composition were found at the junctional border in five of the eight TcR gamma coding joints. This might reflect a defect in the activity of a component of the VDJ recombinase system involved in the generation of P-nucleotide additions. In one of the observed rearrangements, a V gamma 5-J gamma 3 coding joint was formed. This establishes the transcriptional orientation of J gamma 3-C gamma 3 and confirms a previously proposed organization of the TcR gamma genes.

Animals

Defective V-to-J recombination of T cell receptor gamma chain genes in scid mice.

The status of T cell receptor gamma chain genes (TcR gamma) in 11 spontaneous T cell lymphomas from mice with severe combined immune deficiency (scid) was analyzed. We found that as a result of large abnormal deletions accompanying attempted site-specific V-to-J recombinations, 36 of 47 rearranged TcR gamma genes lacked the variable (V) and/or joining (J) region gene segment involved in this attempted recombination. No such deletions were found in T cell lymphomas from normal mice. We interpret our data as indicating a defective V-to-J recombination in scid lymphocytes consistent with our earlier observation of faulty D-to-J recombination in transformed scid lymphocytes (Schuler et al., Cell 1986. 46: 963). The present results further support the hypothesis that the scid mutation affects a component of the VDJ-recombinase system used in common by B and T cells to assemble antigen receptor genes.

Animals

Abnormal recombination of Igh D and J gene segments in transformed pre-B cells of scid mice.

Studies of Ig and TCR genes in transformed lymphocytes of scid mice have revealed aberrant DNA rearrangements. Here we present a more detailed analysis of the Igh gene recombination in nine scid pre-B cell lines transformed by Abelson murine leukemia virus. We found 85% of the rearranged Igh alleles to contain abnormal Dh-Jh deletions of varying size. All of these deletions encompassed Jh elements and extended into the Igh enhancer region, occasionally involving the switch (S) region of the C mu gene. Some of these rearrangements removed most of the Dh elements, but none appeared to extend to the Vh genes. DNA sequence analysis of the two abnormally rearranged Igh alleles in one pre-B cell line showed that no Dh or Jh coding sequences were retained at the recombination sites though heptamer-like (CACTGTG) recognition signal sequences were present in the absence of nonamer (GGTTTTTGT) recognition signal sequences. These results imply that a deregulated recombinase activity may be responsible for the abnormal Dh-Jh deletions and the absence of Vh-Dh joining in established lines of Abelson murine leukemia virus-transformed scid pre-B cells.

Animals

Transcription of unrearranged antigen receptor genes in scid mice.

The scid mouse mutant is severely deficient in lymphocytes; cells of the B or T lymphocyte lineage cannot be detected by either serological or functional assays. However, as shown here, germ-line transcripts of B cell immunoglobulin (Ig) constant and variable region genes and of T cell receptor (TCR) genes are detectable in lymphopoietic tissues of scid mice, as well as B and T lineage-specific lambda 5 and T3 delta transcripts. We conclude that B and T lineage-committed cells do arise in scid mice and that their Ig and TCR genes are accessible to enzymes involved in their recombination. This suggests that scid impairs lymphopoiesis at the stage at which antigen receptor genes normally undergo rearrangement.

Animals

T cell receptor genes do not rearrange or express functional transcripts in natural killer cells of scid mice.

The lineage of natural killer (NK) cells is poorly understood. To examine the relationship between NK cells and cells of the T lineage we have examined purified NK cells from a mutant mouse strain (scid) with severe combined immunodeficiency. Approximately 40% of the lymphoid cells in the spleens of scid mice expressed the NK-specific marker NK-2.1. All NK activity of the scid spleen cells could be accounted for by the NK-2.1+ population, similar to results obtained by using normal C57BL/6 X DBA/2 (B6D2F1) mice. Sorted NK-2.1+ cells proliferated in response to human recombinant interleukin 2 (r-IL 2) but not to concanavalin A (Con A), and were maintained in culture for 2 to 3 wk. Cultured NK-2.1+ cells displayed a cell surface phenotype (Asialo-GM1+, Thy-1.2+, L3T4-, Lyt-2-) and lytic activity similar to that described for freshly isolated NK cells of normal mice. Furthermore, T cell receptor (TCR) genes of the TCR-gamma and TCR-beta loci were in germline configuration, and no functional transcripts of TCR-gamma, TCR-beta, or TCR-alpha were detected. We propose that the expression of the TCR is not necessary for functional NK activity, and NK cells are distinct from both mature cytotoxic T lymphocytes and the earliest identifiable T cells.

Animals

Rearrangement of antigen receptor genes is defective in mice with severe combined immune deficiency.

A process unique to lymphocyte differentiation is the rearrangement of genes encoding antigen-specific receptors on B and T cells. A mouse mutant (C.B-17scid) with severe combined immune deficiency, i.e., that lacks functional B and T cells, shows no evidence of such gene rearrangements. However, rearrangements were detected in Abelson murine leukemia virus-transformed bone marrow cells and in spontaneous thymic lymphomas from C.B-17scid mice. Most of these rearrangements were abnormal: approximately 80% of Igh rearrangements deleted the entire Jh region, and approximately 60% of TCR beta rearrangements deleted the entire J beta 2 region. The deletions appeared to result from faulty D-to-J recombination. No such abnormal rearrangements were detected in transformed tissues from control mice. The scid mutation may adversely affect the recombinase system catalyzing the assembly of antigen receptor genes in developing B and T lymphocytes.

Abelson murine leukemia virus

Characterization of syngeneic anti-idiotypic antibody against the idiotype fo BALB/c myeloma protein J558.

BALB/c mice were immunized against the idiotype of BALB/c myeloma J55,. Syngeneic, specific anti-idiotypic antibodies against this germ line idiotype were shown by the isoelectric focusing technique to be markedly heterogeneous. In fact, the heterogeneity of isogeneic anti-idiotypic sera appeared to be comparable to those of allogeneic anti-J558 sera, raised in A/J and CB20 mice. As a rule, individual mice exhibit different clonal spectra. By spleen cell transfer experiments, each individual spectrum of clones could be expanded in order to arrive at an estimate of the size of anti-idiotypic repertoires. These were found to be of the order of 7-16 different anti-idiotypic clones for an individual BALB/c mouse. From the infrequency of clonal repetition we conclude that the repertoire of the BALB/c strain must be well in excess of one hundred anti-idiotypic molecular species.

Animals