首页> 外文期刊>Journal of radiation research >Research and development of focused proton microbeam irradiation system, SPICE for radio-biological studies.
【24h】

Research and development of focused proton microbeam irradiation system, SPICE for radio-biological studies.

机译:聚焦质子微束辐照系统SPICE的研发,用于放射生物学研究。

获取原文
获取外文期刊封面目录资料

摘要

There is continuing interest for the use of microbeam irradiation systems designed to deliver a defined number of charged particles on a single cell with a resolution of a few micrometers. Irradiation of an exact number of charged particles on a single cell means that the limitations of the Poisson distribution of the number of charged particles can be overcome. Moreover, microbeams are particularly useful for the field of radiation-induced non-targeted effects, so-called bystander effects that are considered to be one of the major effects in the low-dose region. Thus, microbeam technique is one of the powerful tools for investigating studies related to radiation effect and risk of low dose in space radiation for astronauts and cosmonauts. Our microbeam irradiation system, the Single-Particle Irradiation system to CEll (SPICE) provides a 3.4 MeV proton microbeam focused with a quadrupole magnetic lens on an upward vertical beam line. SPICE was severely damaged by the Tohoku-oki Earthquake on 11 March 2011, and was out of operation for about a year and a half. We have successfully reconstructed the facility, and it is now operational with system refinements. At present, SPICE is the only proton microbeam facility in Japan at which a single-ion single-cell irradiation can be performed on mammalian cells with stability and high throughput using an upward vertical beam of below 2-μm diameter, focused with a magnetic quadrupole triplet lens [1]. A variety of irradiation modes have been established for radiation-induced bystander effects, cytoplasm irradiation etc. An example of cells targeted with a multi-position targeting mode is shown in Fig. 1, which cells were targeted with five different positions in the nucleus with 50 protons per position. SPICE has been administrated as a ‘Joint-use facility for Collaborative Research', and thus researchers outside NIRS can apply for beam time of SPICE after their research proposals are approved.
机译:使用微束辐照系统引起了人们的持续关注,该系统设计用于在单个细胞上以几微米的分辨率传递一定数量的带电粒子。在单个电池上照射确切数量的带电粒子意味着可以克服带电粒子数的泊松分布的局限性。此外,微束对于辐射诱导的非目标效应(所谓的旁观者效应)领域特别有用,所谓的旁观者效应被认为是低剂量区域的主要效应之一。因此,微束技术是调查与宇航员和宇航员的辐射效应和低剂量空间辐射风险有关的研究的有力工具之一。我们的微束辐照系统,即CEll的单颗粒辐照系统(SPICE),提供了一个3.4 MeV质子微束,其聚焦在向上的垂直光束线上的四极磁透镜上。 SPICE在2011年3月11日的东北冲地震中遭受了严重破坏,并且停运了大约一年半。我们已经成功地重建了该设施,并且现在可以通过完善系统来进行操作。目前,SPICE是日本唯一的质子微束设施,可以使用直径小于2μm的向上垂直束聚焦于磁性四极杆,对哺乳动物细胞进行稳定且高通量的单离子单细胞辐照三重透镜[1]。已经建立了多种辐射模式以用于辐射诱导的旁观者效应,细胞质辐射等。图1显示了采用多位置靶向模式靶向的细胞的示例,其中细胞在细胞核中的五个不同位置被靶向,每个位置50个质子。 SPICE已被作为“协作研究的联合使用设施”进行管理,因此NIRS以外的研究人员在其研究计划获得批准后可以申请SPICE的发射时间。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号