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俄歇电子发射体:体外实验获得的见解。

Auger electron emitters: insights gained from in vitro experiments.

作者信息

Makrigiorgos G, Adelstein S J, Kassis A I

机构信息

Shields Warren Radiation Laboratory, Department of Radiology, Harvard Medical School, Boston, MA 02115.

出版信息

Radiat Environ Biophys. 1990;29(2):75-91. doi: 10.1007/BF01210552.

Abstract

This paper outlines the evolution of the current rationale for research into the biological effects of tissue-incorporated Auger electron emitters. The first section is a brief review of the research conducted by several groups in the last fifteen years. The second section describes the in vitro model used in our studies, dosimetric calculations, experimental techniques and recent findings. The third section focuses on the use of Auger electron emitters as in vitro microprobes for the investigation of the radiosensitivity of distinct subcellular components. Examination of the biological effects of the Auger electron emitter 125I located in different cellular compartments of a single cell line (V 79 hamster lung fibroblast) verifies that DNA is the critical cell structure for radiation damage and that the sensitive sites are of nanometer dimensions. The data from incorporation of several Auger electron emitters at the same location within DNA suggest that there are no saturation effects from the decay of these isotopes (i.e. all the emitted energy is biologically effective) and provide some insight into which of the numerous physical mechanisms accompanying the Auger decay are most important in causing cell damage. Finally the implications of Auger electron emission for radiotherapy and radiation protection in diagnostic nuclear medicine are detailed and further research possibilities are suggested.

摘要

本文概述了当前对组织掺入型俄歇电子发射体生物效应进行研究的理论依据的演变。第一部分简要回顾了几个研究小组在过去十五年中开展的研究。第二部分描述了我们研究中使用的体外模型、剂量计算、实验技术和最新发现。第三部分重点介绍了将俄歇电子发射体用作体外微探针,以研究不同亚细胞成分的放射敏感性。对位于单一细胞系(V 79仓鼠肺成纤维细胞)不同细胞区室中的俄歇电子发射体125I的生物效应进行研究,证实DNA是辐射损伤的关键细胞结构,且敏感位点为纳米尺寸。在DNA内同一位置掺入几种俄歇电子发射体的数据表明,这些同位素的衰变不存在饱和效应(即所有发射的能量都具有生物效应),并为伴随俄歇衰变的众多物理机制中哪些对造成细胞损伤最为重要提供了一些见解。最后,详细阐述了俄歇电子发射在放射治疗和诊断核医学辐射防护中的意义,并提出了进一步的研究可能性。

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