PURPOSE: Alveolar rhabdomyosarcoma (ARMS) frequently contains the fusion transcription factor PAX3/FKHR. Therefore, clinical studies have been initiated to utilize the PAX3/FKHR translocation point area as a peptide vaccine against ARMS. Our study was directed at identifying antigenic T-lymphocyte epitopes at the PAX3/FKHR translocation point area. EXPERIMENTAL DESIGN: The peptide sequence surrounding the PAX3/FKHR translocation point was evaluated by MHC binding algorithms for potential T-lymphocyte antigenic epitopes (class I molecules HLA-A1, -A2 and -A3; class II molecules HLA-DR1, -DR4 and -DR7). Using in vitro techniques, dendritic cells loaded with PAX3/FKHR peptides were used to stimulate naive T-lymphocytes. T-lymphocyte activity was then evaluated by 51Cr release and 3H-thymidine uptake assays. RESULTS: Only one HLA-A3-restricted epitope was predicted by the algorithms. The peptide was prepared and tested for its ability to stimulate naive cytotoxic T-lymphocytes (CTLs). Unfortunately, the peptide was unsuccessful at stimulating naive CTL. However, induction of naive helper T-lymphocytes (HTL) to recognize and respond to the PAX3/FKHR translocation peptide was successful. Yet, this HTL peptide activity did not translate into recognition of PAX3/FKHR-containing ARMS tumor cells. CONCLUSIONS: It appears that the fusion area of PAX3/FKHR may not be a good source of antigenic anti-tumor peptide epitopes. These results raise serious concerns about the success and applicability of future peptide-based vaccine immunotherapy directed at the PAX3/FKHR translocation point.
PURPOSE:Alveolar rhabdomyosarcoma (ARMS) frequently contains the fusion transcription factor PAX3/FKHR. Therefore, clinical studies have been initiated to utilize the PAX3/FKHR translocation point area as a peptide vaccine against ARMS. Our study was directed at identifying antigenic T-lymphocyte epitopes at the PAX3/FKHR translocation point area. EXPERIMENTAL DESIGN: The peptide sequence surrounding the PAX3/FKHR translocation point was evaluated by MHC binding algorithms for potential T-lymphocyte antigenic epitopes (class I molecules HLA-A1, -A2 and -A3; class II molecules HLA-DR1, -DR4 and -DR7). Using in vitro techniques, dendritic cells loaded with PAX3/FKHR peptides were used to stimulate naive T-lymphocytes. T-lymphocyte activity was then evaluated by 51Cr release and 3H-thymidine uptake assays. RESULTS: Only one HLA-A3-restricted epitope was predicted by the algorithms. The peptide was prepared and tested for its ability to stimulate naive cytotoxic T-lymphocytes (CTLs). Unfortunately, the peptide was unsuccessful at stimulating naive CTL. However, induction of naive helper T-lymphocytes (HTL) to recognize and respond to the PAX3/FKHR translocation peptide was successful. Yet, this HTL peptide activity did not translate into recognition of PAX3/FKHR-containing ARMS tumor cells. CONCLUSIONS: It appears that the fusion area of PAX3/FKHR may not be a good source of antigenic anti-tumor peptide epitopes. These results raise serious concerns about the success and applicability of future peptide-based vaccine immunotherapy directed at the PAX3/FKHR translocation point.
Authors: Hiroya Kobayashi; Ryusuke Omiya; Marta Ruiz; Eduardo Huarte; Pablo Sarobe; Juan José Lasarte; Maite Herraiz; Bruno Sangro; Jesús Prieto; Francisco Borras-Cuesta; Esteban Celis Journal: Clin Cancer Res Date: 2002-10 Impact factor: 12.531
Authors: Ramzi Dagher; Lauren M Long; Elizabeth J Read; Susan F Leitman; Charles S Carter; Maria Tsokos; Theresa J Goletz; Nilo Avila; Jay A Berzofsky; Lee J Helman; Crystal L Mackall Journal: Med Pediatr Oncol Date: 2002-03
Authors: N Galili; R J Davis; W J Fredericks; S Mukhopadhyay; F J Rauscher; B S Emanuel; G Rovera; F G Barr Journal: Nat Genet Date: 1993-11 Impact factor: 38.330
Authors: John W Smith; Edwin B Walker; Bernard A Fox; Daniel Haley; Ketura P Wisner; Teri Doran; Brenda Fisher; Lisa Justice; William Wood; John Vetto; Holden Maecker; Annemiek Dols; Sybren Meijer; Hong-Ming Hu; Pedro Romero; W Gregory Alvord; Walter J Urba Journal: J Clin Oncol Date: 2003-04-15 Impact factor: 44.544
Authors: Eduardo Huarte; Pablo Sarobe; Jun Lu; Noelia Casares; Juan José Lasarte; Javier Dotor; Marta Ruiz; Jesús Prieto; Esteban Celis; Francisco Borrás-Cuesta Journal: Clin Cancer Res Date: 2002-07 Impact factor: 12.531
Authors: Crystal L Mackall; Eunice H Rhee; Elizabeth J Read; Hanh M Khuu; Susan F Leitman; Donna Bernstein; Merertu Tesso; Lauren M Long; David Grindler; Margret Merino; William Kopp; Maria Tsokos; Jay A Berzofsky; Lee J Helman Journal: Clin Cancer Res Date: 2008-08-01 Impact factor: 12.531
Authors: Catalina Ruiz-Mesa; John M Goldberg; Alvaro J Coronado Munoz; Sarah N Dumont; Jonathan C Trent Journal: Curr Treat Options Oncol Date: 2015-06
Authors: Federica Saletta; Carol Wadham; David S Ziegler; Glenn M Marshall; Michelle Haber; Geoffrey McCowage; Murray D Norris; Jennifer A Byrne Journal: BBA Clin Date: 2014-06-28
Authors: Maximilian M L Knott; Tilman L B Hölting; Shunya Ohmura; Thomas Kirchner; Florencia Cidre-Aranaz; Thomas G P Grünewald Journal: Cancer Metastasis Rev Date: 2019-12 Impact factor: 9.264