Drexler Guido A, Ruiz-Gómez Miguel J
1Department of Radiation Oncology, University of Munich, Schillerstr. 42, 80336, Munich, Germany,
J Biosci. 2015 Sep;40(3):629-43. doi: 10.1007/s12038-015-9535-3.
The aim of this work is to review the uses of laser microirradiation and ion microbeam techniques within the scope of radiobiological research. Laser microirradiation techniques can be used for many different purposes. In a specific condition, through the use of pulsed lasers, cell lysis can be produced for subsequent separation of different analytes. Microsurgery allows for the identification and isolation of tissue sections, single cells and subcellular components, using different types of lasers. The generation of different types of DNA damage, via this type of microirradiation, allows for the investigation of DNA dynamics. Ion microbeams are important tools in radiobiological research. There are only a limited number of facilities worldwide where radiobiological experiments can be performed. In the beginning, research was mostly focused on the bystander effect. Nowadays, with more sophisticated molecular and cellular biological techniques, ion microirradiation is used to unravel molecular processes in the field of radiobiology. These include DNA repair protein kinetics or chromatin modifications at the site of DNA damage. With the increasing relevance of charged particles in tumour therapy and new concepts on how to generate them, ion microbeam facilities are able to address unresolved questions concerning particle tumour therapy.
这项工作的目的是回顾激光微照射和离子微束技术在放射生物学研究范围内的应用。激光微照射技术可用于许多不同目的。在特定条件下,通过使用脉冲激光,可以产生细胞裂解,以便随后分离不同的分析物。显微手术允许使用不同类型的激光识别和分离组织切片、单细胞和亚细胞成分。通过这种微照射产生不同类型的DNA损伤,有助于研究DNA动力学。离子微束是放射生物学研究中的重要工具。全球范围内能够进行放射生物学实验的设施数量有限。起初,研究主要集中在旁观者效应上。如今,随着分子和细胞生物学技术越来越复杂,离子微照射被用于揭示放射生物学领域的分子过程。这些过程包括DNA损伤部位的DNA修复蛋白动力学或染色质修饰。随着带电粒子在肿瘤治疗中的相关性不断增加以及关于如何产生它们的新概念出现,离子微束设施能够解决有关粒子肿瘤治疗的未解决问题。