[Biophysical principals in radiotherapy of malignant tumors].

I Vodicka
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Abstract

The successfulness of tumour radiotherapy depends before all on achieving the maximal effect of radiation on the tumour with contemporary minimalization of the injury of normal tissues in its vicinity. Such selectivity of radiation action may be realized by utilization of physical (kind and energy of radiation, irradiation conditions) as well as biological (modification of radiation effects) factors. The aim of this publication is to give a survey of fundamental biophysical and radiobiological principles conditioning the differential action of ionizing radiation on tumorous and normal cell populations from the standpoint of the relevancy of experimental radiobiology (radiation effect on the proliferative capacity of the tumorous and normal tissue) to radiotherapy. More accent than customary in medical literature is put on the physical interactions of radiations in matter and dosimetry as well as microdosimetry of radiation. The importance of microdosimetry will perhaps increase in future in connection with the therapeutic usage of non-conventional kinds of radiation (neutrons, heavy charged particles, pi-mezons). Basic biophysical machanisms of radiation action on cells and cell populations are described and explained in terms of quantum radiobiology (single- and multihit theory, target theory, stochastics of radiation injury development, etc.) as well as the main principles of modification of radiation effects (oxygen effect, radiosensitizers, fractionation of the dose). A brief interpretation of the Strandquist model of isoeffect curves for the fractionated irradiation is presented enabling to relate mutually the total absorbed dose to the total irradiation time and the number of fractions.

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【恶性肿瘤放疗的生物物理原理】。
肿瘤放射治疗的成功首先取决于对肿瘤达到最大的放射效果,同时尽量减少肿瘤附近正常组织的损伤。这种辐射作用的选择性可以通过利用物理因素(辐射的种类和能量、辐射条件)和生物因素(辐射效应的改变)来实现。本出版物的目的是从实验放射生物学(对肿瘤和正常组织的增殖能力的辐射影响)与放射治疗的相关性的角度出发,对电离辐射对肿瘤和正常细胞群的不同作用的基本生物物理和放射生物学原理进行调查。在医学文献中,对辐射在物质和剂量学以及辐射微剂量学方面的物理相互作用的强调比以往更多。随着非常规辐射(中子、重带电粒子、π -mezons)的治疗应用,微剂量学的重要性将来可能会增加。从量子放射生物学(单次和多次撞击理论、靶理论、辐射损伤发展的随机性等)以及辐射效应修饰的主要原理(氧效应、辐射增敏剂、剂量的分次)等方面描述和解释了辐射作用于细胞和细胞群的基本生物物理机制。简要解释了Strandquist模型的分次辐照等效应曲线,使总吸收剂量与总辐照时间和分次辐照次数相互关联。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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