Transgenic animal welfare.
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Biomedical subjects
Publications and source records attributed to B Whitelaw.
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Bovine herpes virus 4 (BHV-4) is a gamma-herpesvirus not associated with clearly defined clinical entities in cattle. The BHV-4 genome consists of a linear dsDNA of approximately 145 Kbp which is only partially characterized and sequenced. We set up a rapid and practical method to isolate BHV-4 DNA from infected cell culture. Microfuged infected cells after exposure to high salt concentration and detergent allowed viral DNA to be purified. Electrophoretic analysis of the digested DNA showed a complete digestion, corresponding to a classical EcoRI banding pattern of strains Movar 33/63, LVR and DN 599. Moreover the biological integrity of viral DNA here obtained, was demonstrated by transfection experiments. BHV-4 DNA was capable of forming CPE after transfection into BAE-7372 cells. Transfected cells specifically reacted with a BHV-4 infected cow serum demonstrating the presence of viral particles. The possibility of obtaining infectious viral DNA using this method may facilitate the construction of recombinant viruses. Specifically, through the use of cotransfection experiments with deleted or mutated viral DNA sequences, the infectious clones isolated could provide the basis for an increased understanding of BHV-4 viral gene expression, replication and pathogenesis.
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Expression of P0 RNA in some Burkitt lymphoma cell lines varies independently of levels of RNA derived from P1 and P2. These data suggest the possibility that expression of P0 RNA may be capable of independent regulation. In order to investigate this possibility we have isolated putative regulatory domains flanking P0 RNA starts within the human c-myc gene and analysed both their ability to direct expression of control reporter genes and their ability to interact with specific transcription factors. Regulatory regions necessary for expression of P0 RNA have been located within 131 bp 5' of the first major P0 RNA start. DNAase 1 footprint analysis and gel retardation assays demonstrate binding of transcription factors Sp1, NF1 and CBP to this region. NF1 binds specifically to two consensus sequences. The more distal site overlaps with the binding site for CBP, and it is likely that concomitant binding of NF1 and CBP within the distal region of the P0 promoter is not possible. Previous work from our laboratory has described a negative regulatory domain within the 5' flanking region of c-myc. The P0 promoter resides within this domain and therefore may contain a negative regulator of c-myc gene expression.
The involvement of c-myc in the genesis of animal neoplasia is now well documented for several systems. In order to define the precise role played by the myc gene in tumorigenesis, a better understanding of the normal regulation of myc expression is necessary. We have begun a study of the cis-acting regulatory sequences within the 5' flanking domain of the human c-myc gene. Regions important for myc promoter function have been identified by linkage to the coding sequences of the bacterial chloramphenicol acetyltransferase (cat) gene. Promoter deletion studies and in vivo competition assays for c-myc/cat recombinant plasmids have allowed the identification of a proximal 'core' promoter region capable of directing high levels of CAT activity. Further upstream a negative regulatory element (NRE2) has been identified which is capable of repressing cat gene expression and which functions by interaction with a transacting factor(s). Preliminary data suggests detection of NRE2 is dependent on both the type and amount of carrier DNA used in transient CAT assays. Initial experiments further indicate the involvement of at least two other distal regulatory domains, a negative regulatory domain (NRE1) and a putative enhancer-type region (E). In vitro footprint analysis has allowed the identification of DNA binding proteins which interact with NRE2 and the 'core' promoter. NRE2 contains binding sites for transcription factors Sp1 and CTF. The 'core' promoter domain appears to be highly complex and possesses several Sp1 binding sites.