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通过自动双着丝粒染色体识别(ADCI)和剂量估计实现快速辐射生物剂量测定

Expedited Radiation Biodosimetry by Automated Dicentric Chromosome Identification (ADCI) and Dose Estimation.

作者信息

Shirley Ben, Li Yanxin, Knoll Joan H M, Rogan Peter K

机构信息

CytoGnomix Inc.

CytoGnomix Inc.; Department of Pathology and Laboratory Medicine, Western University.

出版信息

J Vis Exp. 2017 Sep 4(127):56245. doi: 10.3791/56245.

Abstract

Biological radiation dose can be estimated from dicentric chromosome frequencies in metaphase cells. Performing these cytogenetic dicentric chromosome assays is traditionally a manual, labor-intensive process not well suited to handle the volume of samples which may require examination in the wake of a mass casualty event. Automated Dicentric Chromosome Identifier and Dose Estimator (ADCI) software automates this process by examining sets of metaphase images using machine learning-based image processing techniques. The software selects appropriate images for analysis by removing unsuitable images, classifies each object as either a centromere-containing chromosome or non-chromosome, further distinguishes chromosomes as monocentric chromosomes (MCs) or dicentric chromosomes (DCs), determines DC frequency within a sample, and estimates biological radiation dose by comparing sample DC frequency with calibration curves computed using calibration samples. This protocol describes the usage of ADCI software. Typically, both calibration (known dose) and test (unknown dose) sets of metaphase images are imported to perform accurate dose estimation. Optimal images for analysis can be found automatically using preset image filters or can also be filtered through manual inspection. The software processes images within each sample and DC frequencies are computed at different levels of stringency for calling DCs, using a machine learning approach. Linear-quadratic calibration curves are generated based on DC frequencies in calibration samples exposed to known physical doses. Doses of test samples exposed to uncertain radiation levels are estimated from their DC frequencies using these calibration curves. Reports can be generated upon request and provide summary of results of one or more samples, of one or more calibration curves, or of dose estimation.

摘要

生物辐射剂量可根据中期细胞中的双着丝粒染色体频率进行估算。传统上,进行这些细胞遗传学双着丝粒染色体检测是一个手工操作、劳动强度大的过程,不太适合处理在大规模伤亡事件后可能需要检查的大量样本。自动双着丝粒染色体识别器和剂量估算器(ADCI)软件通过使用基于机器学习的图像处理技术检查中期图像集,实现了这一过程的自动化。该软件通过去除不合适的图像来选择合适的图像进行分析,将每个物体分类为含着丝粒的染色体或非染色体,进一步将染色体区分为单着丝粒染色体(MCs)或双着丝粒染色体(DCs),确定样本中的双着丝粒染色体频率,并通过将样本双着丝粒染色体频率与使用校准样本计算的校准曲线进行比较来估算生物辐射剂量。本方案描述了ADCI软件的使用方法。通常,会导入校准(已知剂量)和测试(未知剂量)的中期图像集以进行准确的剂量估算。可以使用预设的图像过滤器自动找到用于分析的最佳图像,也可以通过人工检查进行过滤。该软件处理每个样本中的图像,并使用机器学习方法在不同的严格程度下计算双着丝粒染色体频率以识别双着丝粒染色体。根据暴露于已知物理剂量的校准样本中的双着丝粒染色体频率生成线性二次校准曲线。使用这些校准曲线,根据测试样本的双着丝粒染色体频率估算暴露于不确定辐射水平的测试样本的剂量。可根据要求生成报告,提供一个或多个样本、一个或多个校准曲线或剂量估算结果的总结。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5216/5619684/bf7a25ccab46/jove-127-56245-0.jpg

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