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Cancer Research|February 15, 1994
Equal transcription of wild-type and mutant p53 using bicistronic vectors results in the wild-type phenotypeT Frebourg, M Sadelain, Y S Ng, et al.Journal of Immunology (Baltimore, Md. : 1950)|March 1, 1984
Identification of distinct predominant epitopes recognized by myoglobin-specific T cells under the control of different Ir genes and characterization of representative T cell clonesI Berkower, L A Matis, G K Buckenmeyer, et al.Journal of Molecular Evolution|July 1, 1980
Evolution of the amino acid substitution in the mammalian myoglobin geneR A Bogardt, B N Jones, F E Dwulet, et al.Biochemistry|October 5, 1976
Complete amino acid sequence of the myoglobin from the Atlantic bottlenosed dolphin, Tursiops truncatusB N Jones, R A Vigna, F E Dwulet, et al.Proceedings of the National Academy of Sciences of the United States of America|February 1, 1988
Site-specific semisynthetic variant of human hemoglobinS A Hefta, S B Lyle, M R Busch, et al.CRC Critical Reviews in Biochemistry|January 1, 1985
pH-dependent processes in proteinsJ B Matthew, F R Gurd, B Garcia-Moreno, et al.Cancer Research|December 15, 1992
A functional screen for germ line p53 mutations based on transcriptional activationT Frebourg, N Barbier, J Kassel, et al.Annals of Oncology : Official Journal of the European Society for Medical Oncology|December 25, 2014
Impact of centralization on aCGH-based genomic profiles for precision medicine in oncologyF Commo, C Ferté, J C Soria, et al.Oncogene|April 20, 1995
Mutational analysis of the carboxy-terminal portion of p53 using both yeast and mammalian cell assays in vivoC Ishioka, C Englert, P Winge, et al.Science (New York, N.Y.)|November 14, 1997
Integrating genetic approaches into the discovery of anticancer drugsL H Hartwell, P Szankasi, C J Roberts, et al.Pageof 10