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Biomedical subjects

C W Stephen

Publications and source records attributed to C W Stephen.

4 recordsLinked to original sources

Epitope analysis of the murine p53 tumour suppressor protein.

The identification and characterisation of the p53 tumour suppressor has relied extensively on the use of immunological reagents. To facilitate further characterisation of the murine p53 protein (Mp53), and its interaction with other proteins, we have characterised the antigenic sites of Mp53 in fine detail. Using an overlapping Mp53 peptide library we report the identification by Pepscan ELISA of the epitopes of nine antibodies. We have also used this technique to determine whether corresponding epitopes were present in a human p53 (Hp53) peptide library. This comparison was extended to include polyclonal sera of mice immunized with either Mp53 or Hp53, to compare the overall range of antigenic sites. The range of antigenic sites identified by polyclonal sera is very similar, although the N-terminus of Mp53 is clearly not an immunodominant region, in contrast to the N-terminus of Hp53. However, the N-terminus of Mp53 is immunogenic in rabbits as demonstrated by the Pepscan ELISA of CM5 serum (a rabbit anti-Mp53 serum used in analysing p53 expression in mice). Since, very few new antigenic sites were identified in either Mp53 or Hp53, new approaches will have to be employed to identify novel immunological reagents against human and murine p53.

Animals

Characterisation of epitopes on human p53 using phage-displayed peptide libraries: insights into antibody-peptide interactions.

We previously described the use of a phage-displayed library of random hexapeptides to define and localise the epitope on the human tumor suppressor protein p53 recognised by the monoclonal antibody PAb240. Here we have extended these results to a further eight anti-p53 monoclonal antibodies and to two further libraries, which display 12-mer and 20-mer peptides, respectively. First, we showed that selection of PAb240 binding clones from the 12-mer and 20-mer libraries gives essentially identical results to those obtained by screening the 6-mer library. Second, we used the 6-mer and 12-mer libraries to define the detailed specificity profiles of six antibodies (DO-1, DO-2, DO-7, Bp53-11, Bp53-12 and Bp53-19), which recognise the same short, highly immunogenic N-terminal segment of p53. Finally, we employed all three libraries to reveal the distinct mechanisms by which PAb421 and PAb122, two monoclonal antibodies that allosterically activate sequence-specific DNA binding by p53, react specifically with the same positively-charged C-terminal segment. In each case the epitope locations inferred from the selected sequences were confirmed by probing an array of overlapping synthetic peptides representing the primary sequence of p53. The results emphasise the consequences for epitope mapping of screening random, as opposed to antigen-derived, peptide libraries; specifically (1) that comparison of selected sequences reveals the contribution of individual residues to binding energy and specificity; (2) that heteroclitic reactions can lead to definition of a consensus that is related to but distinct from the immunising epitope and (3) that isolation of non-immunogen-homologous "mimotope" sequences reveals discrete, alternative ligand structures. The results with PAb421 and PAb122 provide examples where, while selection from the 12-mer and 20-mer libraries leads to isolation of immunogen-homologous sequences, selection from the 6-mer library results in the isolation either of no binding clones (PAb122) or solely of "mimotope" sequences with no discernible homology to the original antigen (PAb421). In addition the results with PAb421 reveal that linear epitopes can be longer than previously thought and can be formally discontinuous, consisting of independent contact motifs, which show promiscuous relative positioning.

Amino Acid Sequence

Epitope mapping using bacteriophage peptide libraries.

Vast libraries of random peptides displayed on the surface of bacteriophage potentially allow identification of specific ligands for any peptide receptor of interest. The sequence specificity of antibody-peptide interactions allows these libraries to be used to define and localize continuous epitopes. Remarkably clear-cut results have been obtained with some antibodies; however, the technique has not proved to be generally applicable.

Amino Acid Sequence

Mutant conformation of p53. Precise epitope mapping using a filamentous phage epitope library.

Many naturally occurring point mutations in the p53 gene lead to a proportion of the encoded protein molecules adopting a distinct, "mutant" conformation characterized by exposure of a normally cryptic epitope recognized by the monoclonal antibody PAb240. Here the PAb240 epitope is defined using a filamentous phage epitope library. The hexapeptides displayed by the PAb240-binding phage isolated from the library were all highly related and allowed both direct localization of the epitope and prediction of a specific interaction between PAb240 and Xenopus TFIIIA. This study demonstrates for the first time the power of phage epitope libraries in the precise definition of previously unmapped epitopes. Identification of the PAb240 epitope precisely defines a region of the p53 molecule structurally altered by the mutation-induced conformational shift.

Animals