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M S Rabson

Publications and source records attributed to M S Rabson.

7 recordsLinked to original sources

The E5 transforming gene of bovine papillomavirus encodes a small, hydrophobic polypeptide.

Bovine papillomavirus (BPV-1) contains two independent transforming genes that have been mapped to the E5 and E6 open reading frames (ORF's). The E5 transforming protein was identified by means of an antiserum against a synthetic peptide corresponding to the 20 COOH-terminal amino acids of the E5 ORF. The E5 polypeptide is the smallest viral transforming protein yet characterized; it had an apparent size of 7 kilodaltons. The transforming polypeptide is encoded entirely within the second half of the E5 ORF and its predicted amino acid composition is very unusual; 68% of the amino acids are strongly hydrophobic and 34% are leucine. Cell fractionation studies localized this polypeptide predominantly to cellular membranes.

Animals↗

Papillomavirus transforming functions.

The bovine papillomavirus type 1 (BPV-1) has served as a model for unravelling the molecular genetics of the papillomaviruses. BPV-1 transformation of rodent cells in tissue culture has provided a means to study the viral functions involved in latent infection of cells and in the induction of cellular proliferation functions. BPV-1 has been shown to encode two independent transforming genes, each of which can induce cellular transformation in susceptible rodent cells. These two genes apparently act synergistically in transforming mouse C127 cells. Deletion mutagenesis studies have shown that the expression of one of these genes (E6) is required for efficient tumorigenesis and anchorage independence. BPV-1 also encodes functions which may act indirectly to affect transformation. BPV-1 contains transcriptional enhancers which can act in a position-independent and orientation-independent manner to increase the transcriptional activity of a heterologous gene. One of these elements, which is located in a non-coding region of the genome, can be trans-activated by a specific viral gene product encoded by the E2 open reading frame. Mutations which eliminate this trans-activation function also have a dramatic effect on transformation and on stable plasmid maintenance.

Animals↗

Palindromic structure and polypeptide expression of 36 kilobase pairs of heterogeneous Epstein-Barr virus (P3HR-1) DNA.

Among the Epstein-Barr virions (EBV) produced by the P3HR-1 (HR-1) cell line are a defective subpopulation with rearranged viral DNA designated heterogeneous DNA (het DNA). These defective virions are responsible for the capacity of HR-1 virus to induce early antigen in Raji c cells and for trans activation of latent EBV in X50-7 cells. Virions with het DNA are independent replicons which pass horizontally from cell to cell rather than being partitioned vertically. We analyzed the structure and defined several polypeptide products of het DNA to understand these remarkable biologic properties. A 36-kilobase-pair (kbp) stretch of het DNA was cloned (as two EcoRI fragments of 20 and 16 kbp) from virions released from a cellular subclone of HR-1 cells. The unusual aspect of the 20-kbp fragment was the linkage of sequences of BamHI-M and BamHI-B', which are not adjacent on the standard EBV genome. The 16-kbp fragment was a palindrome in which at least two additional recombinations on each side of the palindrome had linked regions of the standard EBV genome which are not normally contiguous. The 20-kbp het DNA fragment was attached to at least one and possibly both ends of the 16-kbp het DNA fragment. We identified antigenic polypeptides produced in COS-1 cells after gene transfer of various cloned het DNA fragments. The 20-kbp fragment encoded a cytoplasmic antigen of about 95 kilodaltons (kDa). The 16-kbp fragment encoded antigens located in the nucleus, nuclear membrane, and cytoplasm. These were represented by several polypeptides, the most prominent of which were about 55, 52, and 36 kDa. The 36-kDa polypeptide was localized to a 2.7-kbp BamHI fragment which had homology to standard BamHI-W and BamHI-Z. Another polypeptide of 50 kDa found in the nucleus was mapped to the 7.1-kbp BamHI het DNA fragment which spans the EcoRI site linking the 20- and 16-kbp fragments of het DNA. Thus, HR-1 het DNA encodes several discrete polypeptide products, one or more of which could be responsible for the unusual biologic properties of the virus. The composition, regulation, and ultimately the expression of some of these products relative to standard EBV is probably altered by the genomic rearrangements of het DNA.

Animals↗

Bovine papillomavirus type 1 3' early region transformation and plasmid maintenance functions.

We examined bovine papillomavirus type 1 (BPV-1) DNAs mutated in the E2 open reading frame (ORF) to determine their ability (i) to transform C127 cells and (ii) to remain extrachromosomal in transfected cells. Results obtained with deletion mutants and insertion mutants containing a linker with translational termination codons in all possible reading frames indicated that an E2 ORF gene product(s) is necessary for efficient transformation, as well as viral plasmid replication and maintenance in the context of the full BPV-1 genome. Complementation assays in which mutant BPV-1 DNAs were transfected into cell lines expressing some viral functions from integrated BPV-1 cDNAs demonstrated that the E2 ORF product, when provided in trans, could allow BPV-1 E2 mutants to remain extrachromosomal. The E2 function could also augment transformation of some, but not all, BPV-1 E2 mutants, allowing identification of another region of BPV-1 involved in cellular transformation. It is likely that the role of the BPV-1 E2 product(s) in transformation and plasmid maintenance is indirect. A BPV-1 mutant altered in the E5 ORF is transformation defective and unable to replicate as a stable plasmid in C127 cells.

Animals↗

Localization and analysis of bovine papillomavirus type 1 transforming functions.

Bovine papillomavirus type 1 (BPV-1) or cloned BPV-1 DNA can transform susceptible rodent cells, and the viral DNA remains as a stable extrachromosomal plasmid in the transformed cells. The transforming region of the BPV-1 genome has previously been localized to a specific fragment comprising 69% of the genome, which also contains the elements sufficient for extrachromosomal plasmid maintenance. To define more precisely the viral DNA sequences which are involved in cellular transformation, we have tested the ability of defined deletion mutants of BPV-1 DNA to morphologically transform mouse C127 cells. Cells containing the mutated DNAs have been examined for anchorage independence and tumorigenicity in nude mice. Several distinct regions of the BPV-1 genome were found to influence expression of the viral transformation functions. A transcriptional regulatory region located in the noncoding region 5' to the early open reading frames is essential for transcriptional activity and transformation. A transcriptional enhancer element, located 3' to the polyadenylation site for the viral RNAs expressed in transformed cells, has previously been shown to be essential for transformation (Lusky et al., Mol. Cell. Biol., 3:1108-1122, 1983). Deletion mutants affecting the E2 open reading frame, particularly the NH2 half, are significantly impaired in their ability to transform, suggesting that the E2 gene product is an important transforming protein of BPV-1. Mutants lacking the E6 and E7 open reading frames are still able to induce transformation but at a lowered efficiency, and the transformants have altered characteristics. Mutations localized within the E1 open reading frame do not significantly affect the transforming functions but result in the integration of the viral genome in the transformed cells, implicating the E1 gene product in stable plasmid replication and maintenance.

Animals↗

Dissociation of transforming and trans-activation functions for bovine papillomavirus type 1.

It has been shown that genetic information encoded by the 3' open reading frames (ORFs), E2, E3, E4 and E5, of bovine papillomavirus type 1 (BPV-1), is sufficient to induce cellular transformation of certain mouse cells. The product of the E2 ORF has further been shown to be responsible for the trans-activation of a transcriptional regulatory element located in the noncoding region (NCR) of the BPV-1 genome. To examine whether or not the E2 trans-activation function is encoded by the same gene that encodes the 3' ORF viral transformation function, we have now analysed the expression of the trans-activation function in series of mouse C127 cells transformed by BPV-1 deletion mutants. In addition, using mutated complementary DNA clones generated by the insertion of a premature translational termination linker into different sites of a BPV-1 cDNA clone containing the 3' ORFs intact, we demonstrate that transformation and transcriptional trans-activation functions can be dissociated and that they map respectively to the E5 and E2 ORFs.

Acetyltransferases↗