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首页> 外文期刊>Health Physics: Official Journal of the Health Physics Society >Lauriston S. Taylor lecture on radiation protection and measurements: What makes particle radiation so effective?
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Lauriston S. Taylor lecture on radiation protection and measurements: What makes particle radiation so effective?

机译:Lauriston S. Taylor在辐射防护和测量方面的演讲:是什么使粒子辐射如此有效?

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The scientific basis for the physical and biological effectiveness of particle radiations has emerged from many decades of meticulous basic research. A diverse array of biologically relevant consequences at the molecular, cellular, tissue, and organism level have been reported, but what are the key processes and mechanisms that make particle radiation so effective, and what competing processes define dose dependences? Recent studies have shown that individual genotypes control radiation-regulated genes and pathways in response to radiations of varying ionization density. The fact that densely ionizing radiations can affect different gene families than sparsely ionizing radiations, and that the effects are dose-and time-dependent, has opened up new areas of future research. The complex microenvironment of the stroma and the significant contributions of the immune response have added to our understanding of tissue-specific differences across the linear energy transfer (LET) spectrum. The importance of targeted versus nontargeted effects remains a thorny but elusive and important contributor to chronic low dose radiation effects of variable LET that still needs further research. The induction of cancer is also LET-dependent, suggesting different mechanisms of action across the gradient of ionization density. The focus of this 35th Lauriston S. Taylor Lecture is to chronicle the step-by-step acquisition of experimental clues that have refined our understanding of what makes particle radiation so effective, with emphasis on the example of radiation effects on the crystalline lens of the human eye.
机译:数十年来的细致基础研究已经为粒子辐射的物理和生物有效性提供了科学依据。已经报道了在分子,细胞,组织和有机体水平上各种各样与生物学相关的后果,但是使粒子辐射如此有效的关键过程和机制是什么,以及哪些竞争过程定义了剂量依赖性?最近的研究表明,个体基因型响应于变化的电离密度的辐射而控制辐射调节的基因和途径。密集电离辐射会比稀疏电离辐射影响不同的基因家族,而且这种效应是剂量和时间依赖性的,这一事实开辟了未来研究的新领域。基质的复杂微环境和免疫应答的显着贡献增加了我们对线性能量转移(LET)光谱中组织特异性差异的了解。靶向与非靶向效应的重要性仍然是变量LET的慢性低剂量放射效应的棘手但难以捉摸且重要的贡献者,尚需进一步研究。癌症的诱导也是LET依赖性的,提示在整个电离密度梯度上有不同的作用机理。第35届Lauriston S.Taylor讲座的重点是记录逐步获得的实验线索,这些线索进一步完善了我们对使粒子辐射如此有效的理解,并重点介绍了辐射对晶体晶体的影响。人类的眼睛。

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