用微核自动评分系统改进辐射剂量学:自动评分错误的修正。

IF 1.5 4区 环境科学与生态学 Q3 BIOLOGY
Younghyun Lee, Young Woo Jin, Ki Moon Seong, Ruth C Wilkins, Seongjae Jang
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引用次数: 0

摘要

通过微核(MN)自动计数进行的辐射剂量估计已被研究用于大规模放射事故后的分类;虽然速度至关重要,但也必须尽可能准确地估计辐射剂量,以便进行长期流行病学随访。在这项研究中,我们的目的是评估和改进使用细胞分裂阻断微核(CBMN)测定法进行生物剂量测定的自动MN计数的性能。我们测量了误检率,并用它们来提高剂量测定的准确性。双核细胞平均假阳性率为1.14%;MN平均假阳性和阴性率分别为1.03%和3.50%。探测误差似乎与辐射剂量有关。通过目视检查用于自动计数的图像来纠正误差,称为半自动和手动评分方法,提高了剂量估计的准确性。我们的研究结果表明,自动化MN评分系统的剂量评估可以通过随后的误差校正来改进,这对于快速、准确和有效地对大量人群进行生物剂量测定是有用的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Improving radiation dosimetry with an automated micronucleus scoring system: correction of automated scoring errors.

Improving radiation dosimetry with an automated micronucleus scoring system: correction of automated scoring errors.

Radiation dose estimations performed by automated counting of micronuclei (MN) have been studied for their utility for triage following large-scale radiological incidents; although speed is essential, it also is essential to estimate radiation doses as accurately as possible for long-term epidemiological follow-up. Our goal in this study was to evaluate and improve the performance of automated MN counting for biodosimetry using the cytokinesis-block micronucleus (CBMN) assay. We measured false detection rates and used them to improve the accuracy of dosimetry. The average false-positive rate for binucleated cells was 1.14%; average false-positive and -negative MN rates were 1.03% and 3.50%, respectively. Detection errors seemed to be correlated with radiation dose. Correction of errors by visual inspection of images used for automated counting, called the semi-automated and manual scoring method, increased accuracy of dose estimation. Our findings suggest that dose assessment of the automated MN scoring system can be improved by subsequent error correction, which could be useful for performing biodosimetry on large numbers of people rapidly, accurately, and efficiently.

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来源期刊
CiteScore
4.00
自引率
5.90%
发文量
53
审稿时长
>36 weeks
期刊介绍: This journal is devoted to fundamental and applied issues in radiation research and biophysics. The topics may include: Biophysics of ionizing radiation: radiation physics and chemistry, radiation dosimetry, radiobiology, radioecology, biophysical foundations of medical applications of radiation, and radiation protection. Biological effects of radiation: experimental or theoretical work on molecular or cellular effects; relevance of biological effects for risk assessment; biological effects of medical applications of radiation; relevance of radiation for biosphere and in space; modelling of ecosystems; modelling of transport processes of substances in biotic systems. Risk assessment: epidemiological studies of cancer and non-cancer effects; quantification of risk including exposures to radiation and confounding factors Contributions to these topics may include theoretical-mathematical and experimental material, as well as description of new techniques relevant for the study of these issues. They can range from complex radiobiological phenomena to issues in health physics and environmental protection.
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