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Enhancing radiosensitivity of melanoma cells through very high dose rate pulses released by a plasma focus device.
Buontempo, Francesca; Orsini, Ester; Zironi, Isabella; Isolan, Lorenzo; Cappellini, Alessandra; Rapino, Stefania; Tartari, Agostino; Mostacci, Domiziano; Cucchi, Giorgio; Martelli, Alberto Maria; Sumini, Marco; Castellani, Gastone.
Afiliação
  • Buontempo F; University of Bologna, Department of Biomedical and Neuromotor Sciences, Bologna, Italy.
  • Orsini E; University of Bologna, Department of Biomedical and Neuromotor Sciences, Bologna, Italy.
  • Zironi I; University of Bologna, Department of Physics and Astronomy, Bologna, Italy.
  • Isolan L; University of Bologna, Department of Chemistry "G. Ciamician", Bologna, Italy.
  • Cappellini A; Interdepartmental Centre "L. Galvani" (CIG) for integrated studies of bioinformatics, biophysics and biocomplexity, Bologna, Italy.
  • Rapino S; European Institute of Oncology and Monzino Cardiac Center Foundation (IEO-CCM), Milano, Italy.
  • Tartari A; University of Bologna, Department of Industrial Engineering, Bologna, Italy.
  • Mostacci D; University of Cassino and Southern Lazio, Department of Human Social and Health Sciences, Cassino, Italy.
  • Cucchi G; Interdepartmental Centre "L. Galvani" (CIG) for integrated studies of bioinformatics, biophysics and biocomplexity, Bologna, Italy.
  • Martelli AM; National Institute for Nuclear Physics (INFN), Bologna, Italy.
  • Sumini M; European Institute of Oncology and Monzino Cardiac Center Foundation (IEO-CCM), Milano, Italy.
  • Castellani G; European Institute of Oncology and Monzino Cardiac Center Foundation (IEO-CCM), Milano, Italy.
PLoS One ; 13(6): e0199312, 2018.
Article em En | MEDLINE | ID: mdl-29958291
Radiation therapy is a useful and standard tumor treatment strategy. Despite recent advances in delivery of ionizing radiation, survival rates for some cancer patients are still low because of recurrence and radioresistance. This is why many novel approaches have been explored to improve radiotherapy outcome. Some strategies are focused on enhancement of accuracy in ionizing radiation delivery and on the generation of greater radiation beams, for example with a higher dose rate. In the present study we proposed an in vitro research of the biological effects of very high dose rate beam on SK-Mel28 and A375, two radioresistant human melanoma cell lines. The beam was delivered by a pulsed plasma device, a "Mather type" Plasma Focus for medical applications. We hypothesized that this pulsed X-rays generator is significantly more effective to impair melanoma cells survival compared to conventional X-ray tube. Very high dose rate treatments were able to reduce clonogenic efficiency of SK-Mel28 and A375 more than the X-ray tube and to induce a greater, less easy-to-repair DNA double-strand breaks. Very little is known about biological consequences of such dose rate. Our characterization is preliminary but is the first step toward future clinical considerations.
Assuntos

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Tolerância a Radiação / Radioterapia / Melanoma Idioma: En Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Tolerância a Radiação / Radioterapia / Melanoma Idioma: En Ano de publicação: 2018 Tipo de documento: Article