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首页> 外文期刊>JALA: Journal of the Association for Laboratory Automation >Toward Automated Interpretation of LC-MS Data for Quality Assurance of a Screening Collection
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Toward Automated Interpretation of LC-MS Data for Quality Assurance of a Screening Collection

机译:寻求LC-MS数据的自动解释以确保筛查样品的质量

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摘要

The AstraZeneca Compound Management group uses high-performance liquid chromatography-mass spectrometry for structure elucidation and purity determination of the AstraZeneca compound collection. These activities are conducted in a high-throughput environment where the rate-limiting step is the review and interpretation of analytical results, which is time-consuming and experience dependent. Despite the development of a semiautomated review system, manual interpretation of results remains a bottleneck. Data-mining techniques were applied to archived data to further automate the review process. Various classification models were evaluated using WEKA and Pipeline Pilot (Pipeline Pilot version 8.5.0.200, BIOVIA, San Diego, CA). Results were assessed using criteria including precision, recall, and receiver operating characteristic area. Each model was evaluated as a cost-insensitive classifier and again using MetaCost to apply cost sensitivity. Pruning and variable importance were also investigated. A 10-tree random forest generated with Pipeline Pilot reduced the number of analyses requiring manual review to 36.4% using a threshold of 90% confidence in predictions. This represents a 45% reduction in manual reviews compared with the previous system, delivering an annual savings of $45,000 or an increase in capacity from 25,000 analyses per month up to 45,000 with the same resource levels.
机译:阿斯利康化合物管理小组使用高效液相色谱-质谱法对阿斯利康化合物集合进行结构解析和纯度测定。这些活动是在高通量环境中进行的,其中限速步骤是对分析结果进行审查和解释,这既费时又取决于经验。尽管开发了半自动审查系统,但是手动解释结果仍然是瓶颈。数据挖掘技术已应用于存档数据,以进一步实现审查过程的自动化。使用WEKA和Pipeline Pilot(Pipeline Pilot版本8.5.0.200,BIOVIA,圣地亚哥,加利福尼亚)评估了各种分类模型。使用包括精度,召回率和接收器工作特性范围在内的标准评估结果。每个模型均被评估为对成本不敏感的分类器,并再次使用MetaCost来应用对成本的敏感性。还研究了修剪和可变重要性。使用Pipeline Pilot生成的10棵树的随机森林使用90%的预测置信度阈值将需要人工审核的分析数量减少到36.4%。与以前的系统相比,这意味着手动审核减少了45%,每年节省45,000美元,或者在相同资源水平下,容量从每月25,000次分析增加到45,000次。

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