Rezaee Mohammad, Alizadeh Elahe, Cloutier Pierre, Hunting Darel J, Sanche Léon
Department of Nuclear Medicine & Radiobiology, Faculty of Medicine & Health Sciences, University of Sherbrooke, 3001, 12e Ave. Nord, Sherbrooke, QC, J1H 5N4 (Canada).
ChemMedChem. 2014 Jun;9(6):1145-9. doi: 10.1002/cmdc.201300462. Epub 2013 Dec 4.
The sensitization of malignant cells to ionizing radiation is the clinical rationale for the use of platinum-drug-based concurrent chemoradiotherapy (CCRT) for cancer treatment; however, the specific mechanisms of radiosensitization and their respective contributions still remain unknown. Biological mechanisms such as inhibition of DNA repair may contribute to the efficacy of CCRT; nevertheless, there is a dearth of information on the possible contribution of nanoscopic mechanisms to the generation of lethal DNA lesions, such as double-strand breaks (DSB). The present study demonstrates that the abundant near zero-eV (0.5 eV) electrons, created by ionizing radiation during radiotherapy, induce DSB in supercoiled plasmid DNA modified by platinum-containing anticancer drugs (Pt drugs), but not in unmodified DNA. They do so more efficiently than other types of radiation, including soft X-rays and 10 eV electrons. The formation of DSB by 0.5 eV electrons is found to be a single-hit process. These findings reveal insights into the radiosensitization mechanism of Pt drugs that can have implications for the development of optimal clinical protocols for platinum-based CCRT and the deployment of in situ sources of subexcitation-energy electrons (e.g., Auger electron-emitting radionuclides) to efficiently enhance DSB formation in DNA modified by Pt drugs in malignant cells.
恶性细胞对电离辐射的致敏作用是使用铂类药物同步放化疗(CCRT)治疗癌症的临床依据;然而,放射致敏的具体机制及其各自的作用仍不清楚。诸如抑制DNA修复等生物学机制可能有助于CCRT的疗效;然而,关于纳米级机制对致死性DNA损伤(如双链断裂,DSB)产生的可能作用,目前还缺乏相关信息。本研究表明,放疗期间电离辐射产生的大量近零电子伏特(0.5电子伏特)电子,可在含铂抗癌药物(铂类药物)修饰的超螺旋质粒DNA中诱导DSB,但在未修饰的DNA中则不会。与其他类型的辐射(包括软X射线和10电子伏特电子)相比,它们诱导DSB的效率更高。研究发现,0.5电子伏特电子诱导DSB的过程是一个单击中靶过程。这些发现揭示了铂类药物放射致敏机制的相关见解,这可能对制定基于铂类的CCRT最佳临床方案以及部署亚激发能电子原位源(如俄歇电子发射放射性核素)以有效增强恶性细胞中铂类药物修饰的DNA中的DSB形成具有重要意义。