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D F Aghib

Publications and source records attributed to D F Aghib.

3 recordsLinked to original sources

The E-cadherin complex contains the src substrate p120.

Using normal MDCK cells, and MDCK cells stably transfected with a temperature-sensitive viral src allele (pp60 ts-v-src), we have examined the composition and tyrosine phosphorylation of the E-cadherin complex. E-cadherin is a transmembrane calcium-dependent cell-cell adhesion molecule that is complexed with cytoplasmic proteins including alpha-catenin, beta-catenin, plakoglobin (gamma-catenin), and actin. We have identified two heterodimeric complexes which demonstrate that alpha-catenin interacts directly with beta-catenin, or with plakoglobin, in the absence of E-cadherin. beta-Catenin has previously been shown to bind directly to E-cadherin. We propose that E-cadherin associates with alpha-catenin, and thereby the actin cytoskeleton, via either beta-catenin or plakoglobin. We have further identified three new but related protein components of the E-cadherin complex, which are each cross-reactive by Western blot analysis to antibodies directed against p120, a phosphotyrosine substrate of src, and a phosphotyrosine, phosphoserine, and phosphothreonine substrate of growth factor-stimulated signaling pathways. Greater quantities of the p120-related proteins were found present in the E-cadherin immunoprecipitates of ts-src MDCK cells compared to normal MDCK cells, while two of the p120 cross-reactive species were significantly tyrosine phosphorylated in both normal and ts-src MDCK cells. The association of p120-related species with the E-cadherin complex adds them to our consideration of possible modulators of cadherin function. Likewise, the newly identified alpha-catenin-beta-catenin and alpha-catenin-plakoglobin dimers may have interesting biological properties, conceivably including the titration of catenins between cadherin and APC complexes.

Animals↗

A 3' truncation of myc caused by chromosomal translocation in a human T-cell leukemia is tumorigenic when tested in established rat fibroblasts.

We have previously identified in human T-leukemia cells a myc gene with an unusual 3' rearrangement, and we have shown that expression of the gene is deregulated by stabilization of mRNA. Here we report that the rearranged gene transforms established rat fibroblasts to a tumorigenic phenotype. In hybrid genes, the transforming capability segregates with the 3' rearrangement. Transformation is apparently due to a more than fivefold enhancement in myc expression, attributable to stabilization of mRNA. The rearranged allele of myc also contains a point mutation in a region upstream of the gene, identified previously as a potential negative regulator of myc expression. The mutation may increase expression of myc, but not sufficiently to cause cellular transformation. Our findings enlarge the variety of genetic lesions that may activate myc to an oncogene and sustain the view that augmented expression of an otherwise normal allele of myc can be pathogenic.

Alleles↗

A 3' truncation of MYC caused by chromosomal translocation in a human T-cell leukemia increases mRNA stability.

The proto-oncogene MYC is rearranged at its 3' end in the human T-cell leukemia line Hut 78 as a result of a translocation between the long arms of chromosomes 8 and 2. The nucleotide sequence at the breakpoint shows that the rearranged allele of MYC is truncated 24 nucleotides before the first poly(A)-addition signal. The 3' truncated MYC lacks a 61 nucleotide AT-rich sequence that has been reported to mediate selective mRNA degradation. We show that the truncation results in prolonged stability of MYC mRNA: the half life of the MYC mRNA in Hut 78, as well as in Rat 1A cells transfected with the truncated allele of MYC is increased by at least 5-fold. Our results document yet another mechanism by which MYC may be rendered pathogenic and dramatize the importance of mRNA stability in the regulation of MYC activity.

Base Sequence↗