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Biomedical subjects

M R Kanter

Publications and source records attributed to M R Kanter.

6 recordsLinked to original sources

Minimal truncation of the c-myb gene product in rapid-onset B-cell lymphoma.

Oncogenic activation of c-myb by insertional mutagenesis has been implicated in rapid-onset B-cell lymphomas induced by the nonacute avian leukosis virus EU-8. In these tumors, proviruses are integrated either upstream of the c-myb coding region or within the first intron of c-myb. Tumors with either type of integration contained identical chimeric mRNAs in which the viral 5' splice site was juxtaposed to the 3' splice site of c-myb exon 2 and myb exon 1 was eliminated. Both classes of integrations generated truncated Myb proteins that were indistinguishable by Western analysis. In contrast to most other examples of c-myb activation, the truncation consisted of only 20 N-terminal amino acids and did not disrupt either the DNA binding domain near the N terminus or the negative regulatory domain near the C terminus of Myb. The significance of the 20-amino-acid Myb truncation to tumorigenesis was tested by infection of chicken embryos with retroviral vectors expressing different myb gene products. While virus expressing either wild-type c-myb or c-myb mutated at the N-terminal casein kinase II sites was only weakly oncogenic at 10 weeks, the minimally truncated myb virus induced a high incidence of rapid-onset tumors, including B-cell lymphomas, sarcomas, and adenocarcinomas.

Alternative Splicing↗

Rapid induction of B-cell lymphomas: insertional activation of c-myb by avian leukosis virus.

EU-8 is a recombinant avian leukosis virus (ALV) constructed in vitro, which carries long terminal repeats and gag and pol genes from ring-necked pheasant virus and the env gene from UR2AV. Unlike either parent virus, when injected into 10-day-old chicken embryos, EU-8 induces a high incidence of clonally arising B-cell lymphomas within an unusually short latent period, often causing death within 5 to 7 weeks after infection. These tumors differ from the classic lymphoid leukosis induced by ALV in several respects, both biologically and at the molecular level. Most notably, in all of the EU-8-induced tumors examined, the provirus was integrated in the c-myb locus, and in no tumors were c-myc integrations found. Most of the proviral integrations were downstream of the initiation codon of c-myb and thus presumably resulted in some truncation of the c-myb gene product, although not to the same extent as has been found in other cases of c-myb activation. In addition, several of the proviruses were integrated well upstream of the c-myb coding region. This is the first report of ALV interaction with the c-myb proto-oncogene and the first report of c-myb activation resulting in tumors of lymphoid rather than myeloid origin, suggesting that the target cell specificity of transformation by the myb gene is not as restricted as previously believed.

Animals↗

Structure, regulatory polymorphisms, and allelic hypervariability regions in murine I-A alpha.

Class II major histocompatibility complex (MHC) molecules, the Ia antigens, are intimately involved in regulating the intensity and specificity of the cellular and humoral responses to T cell-dependent antigens. One approach to understanding the mechanism of this regulation is to analyze the structure and allelic polymorphism of Ia molecules. In addition there are regulatory polymorphisms in the expression of the I-E alpha and I-E beta class II MHC polypeptide chains. Analysis of the cDNA sequence indicates that I-A and I-E alpha chains are similar with short stretches of homology and other regions of nonhomology. Analysis of Northern blots of mRNA indicates that at least three separate types of regulatory polymorphisms result in failure of expression of I-E alpha. Comparison of allelic sequences of six alleles of the I-A alpha chain shows that almost all of the allelic polymorphism is in the first domain and that within the first domain it is clustered in three allelic hypervariable regions within the first domain of I-A alpha. The structural and functional implications of these findings are discussed.

Alleles↗

The murine E alpha immune response gene.

We have isolated and sequenced cDNA and genomic clones of the murine E alpha gene, one of the immune response genes of the major histocompatibility complex. Comparison of our data with those recently reported for the human homolog DR alpha shows an identical intron-exon structure, and a good conservation of the protein-coding sequences, including the amino acids potentially involved in organizing the second external protein domain into an immunoglobulin-like fold. Noncoding sequences are less conserved, with the exception of the promoter region. Finally, we show that differential expression of the gene in various cell types appears to be transcriptionally regulated, and that genomic rearrangements do not seem necessary for expression.

Amino Acid Sequence↗

Regions of allelic hypervariability in the murine A alpha immune response gene.

The murine Ia antigens, a group of cell surface glycoproteins, are involved in the control of the immune response. The structure of one of these class II major histocompatibility complex molecules, A alpha, was recently deduced from sequence analysis of a cDNA clone produced from k haplotype mice. We have now isolated and sequenced A alpha cDNA clones from five other mouse haplotypes: d, b, f, u, and q. Sequence comparison revealed a surprisingly high degree of allelic polymorphism. Interestingly, amino acid substitutions were clustered within the first external domain of this polypeptide chain, particularly at a few highly variable positions. Functional implications of A alpha polymorphism and possible mechanisms for its generation are discussed.

Alleles↗

The murine Ia alpha chains, E alpha and A alpha, show a surprising degree of sequence homology.

The I region of the murine major histocompatibility complex codes for a group of glycoproteins, the Ia antigens, thought to be involved in the control of immune responsiveness. Each Ia antigen complex contains a "heavy chain," a "light chain," and the "invariant chain." We describe here the isolation and characterization of genomic and cDNA clones for one of the heavy chains, Ak alpha. The complete nucleotide sequence of the cDNA clone is presented, and the predicted amino acid sequence is compared with that of another alpha chain, Ek alpha. About 50% of the amino acids are identical, a finding somewhat unexpected on the basis of preliminary protein sequence data.

Amino Acid Sequence↗