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Track to the future: historical perspective on the importance of radiation track structure and DNA as a radiobiological target

Purpose: Understanding the mechanisms behind induced biological response following exposure to ionizing radiation is not only important in assessing the risk associated with human exposure, but potentially can help identify ways of improving the efficacy of radiotherapy. Over the decades, there has...

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Autor principal: Hill, Mark A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Taylor & Francis 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6113897/
https://www.ncbi.nlm.nih.gov/pubmed/29219655
http://dx.doi.org/10.1080/09553002.2017.1387304
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author Hill, Mark A.
author_facet Hill, Mark A.
author_sort Hill, Mark A.
collection PubMed
description Purpose: Understanding the mechanisms behind induced biological response following exposure to ionizing radiation is not only important in assessing the risk associated with human exposure, but potentially can help identify ways of improving the efficacy of radiotherapy. Over the decades, there has been much discussion on what is the key biological target for radiation action and its associated size. It was already known in the 1930s that microscopic features of radiation significantly influenced biological outcomes. This resulted in the development of classic target theory, leading to field of microdosimetry and subsequently nanodosimetry, studying the inhomogeneity and stochastics of interactions, along with the identification of DNA as a key target. Conclusions: Ultimately, the biological response has been found to be dependent on the radiation track structure (spatial and temporal distribution of ionization and excitation events). Clustering of energy deposition on the nanometer scale has been shown to play a critical role in determining biological response, producing not just simple isolated DNA lesions but also complex clustered lesions that are more difficult to repair. The frequency and complexity of these clustered damage sites are typically found to increase with increasing LET. However in order to fully understand the consequences, it is important to look at the relative distribution of these lesions over larger dimensions along the radiation track, up to the micrometer scale. Correlation of energy deposition events and resulting sites of DNA damage can ultimately result in complex gene mutations and complex chromosome rearrangements following repair, with the frequency and spectrum of the resulting rearrangements critically dependent on the spatial and temporal distribution of these sites and therefore the radiation track. Due to limitations in the techniques used to identify these rearrangements it is likely that the full complexity of the genetic rearrangements that occur has yet to be revealed. This paper discusses these issues from a historical perspective, with many of these historical studies still having relevance today. These can not only cast light on current studies but guide future studies, especially with the increasing range of biological techniques available. So, let us build on past knowledge to effectively explore the future.
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spelling pubmed-61138972018-09-10 Track to the future: historical perspective on the importance of radiation track structure and DNA as a radiobiological target Hill, Mark A. Int J Radiat Biol Reviews Purpose: Understanding the mechanisms behind induced biological response following exposure to ionizing radiation is not only important in assessing the risk associated with human exposure, but potentially can help identify ways of improving the efficacy of radiotherapy. Over the decades, there has been much discussion on what is the key biological target for radiation action and its associated size. It was already known in the 1930s that microscopic features of radiation significantly influenced biological outcomes. This resulted in the development of classic target theory, leading to field of microdosimetry and subsequently nanodosimetry, studying the inhomogeneity and stochastics of interactions, along with the identification of DNA as a key target. Conclusions: Ultimately, the biological response has been found to be dependent on the radiation track structure (spatial and temporal distribution of ionization and excitation events). Clustering of energy deposition on the nanometer scale has been shown to play a critical role in determining biological response, producing not just simple isolated DNA lesions but also complex clustered lesions that are more difficult to repair. The frequency and complexity of these clustered damage sites are typically found to increase with increasing LET. However in order to fully understand the consequences, it is important to look at the relative distribution of these lesions over larger dimensions along the radiation track, up to the micrometer scale. Correlation of energy deposition events and resulting sites of DNA damage can ultimately result in complex gene mutations and complex chromosome rearrangements following repair, with the frequency and spectrum of the resulting rearrangements critically dependent on the spatial and temporal distribution of these sites and therefore the radiation track. Due to limitations in the techniques used to identify these rearrangements it is likely that the full complexity of the genetic rearrangements that occur has yet to be revealed. This paper discusses these issues from a historical perspective, with many of these historical studies still having relevance today. These can not only cast light on current studies but guide future studies, especially with the increasing range of biological techniques available. So, let us build on past knowledge to effectively explore the future. Taylor & Francis 2017-12-08 /pmc/articles/PMC6113897/ /pubmed/29219655 http://dx.doi.org/10.1080/09553002.2017.1387304 Text en © 2017 Informa UK Limited, trading as Taylor & Francis Group
spellingShingle Reviews
Hill, Mark A.
Track to the future: historical perspective on the importance of radiation track structure and DNA as a radiobiological target
title Track to the future: historical perspective on the importance of radiation track structure and DNA as a radiobiological target
title_full Track to the future: historical perspective on the importance of radiation track structure and DNA as a radiobiological target
title_fullStr Track to the future: historical perspective on the importance of radiation track structure and DNA as a radiobiological target
title_full_unstemmed Track to the future: historical perspective on the importance of radiation track structure and DNA as a radiobiological target
title_short Track to the future: historical perspective on the importance of radiation track structure and DNA as a radiobiological target
title_sort track to the future: historical perspective on the importance of radiation track structure and dna as a radiobiological target
topic Reviews
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6113897/
https://www.ncbi.nlm.nih.gov/pubmed/29219655
http://dx.doi.org/10.1080/09553002.2017.1387304
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