English

Nuclear fusion enhances cancer cell killing efficacy in a protontherapy model

Medical Physics 2017-01-27 v1

Abstract

Protontherapy is hadrontherapy fastest-growing modality and a pillar in the battle against cancer. Hadrontherapy superiority lies in its inverted depth-dose profile, hence tumour-confined irradiation. Protons, however, lack distinct radiobiological advantages over photons or electrons. Higher LET (Linear Energy Transfer) 12^{12}C ions can overcome cancer radioresistance: DNA lesion complexity increases with LET, resulting in efficient cell killing, i.e. higher Relative Biological Effectiveness (RBE). However, economic and radiobiological issues hamper 12^{12}C-ion clinical amenability. Thus, enhancing proton RBE is desirable. To this end, we exploited the p + 11^{11}B \rightarrow3α\alpha reaction to generate high-LET alpha particles with a clinical proton beam. To maximize the reaction rate, we used sodium borocaptate (BSH) with natural boron content. Boron-Neutron Capture Therapy (BNCT) uses 10^{10}B-enriched BSH for neutron irradiation-triggered alpha-particles. We recorded significantly increased cellular lethality and chromosome aberration complexity. A strategy combining protontherapy ballistic precision with the higher RBE promised by BNCT and 12^{12}C-ion therapy is thus demonstrated.

Keywords

Cite

@article{arxiv.1701.07504,
  title  = {Nuclear fusion enhances cancer cell killing efficacy in a protontherapy model},
  author = {GAP Cirrone and L Manti and D Margarone and L Giuffrida and A. Picciotto and G. Cuttone and G. Korn and V. Marchese and G. Milluzzo and G. Petringa and F. Perozziello and F. Romano and V. Scuderi},
  journal= {arXiv preprint arXiv:1701.07504},
  year   = {2017}
}

Comments

Original paper on a significative improvement of proton radiobiological effect