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Maui-VIA: A User-Friendly Software for Visual Identification Alignment Correction and Quantification of Gas Chromatography–Mass Spectrometry Data

机译:Maui-VIA:一种用于气相色谱-质谱数据可视化识别对准校正和定量的用户友好软件

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摘要

A current bottleneck in GC–MS metabolomics is the processing of raw machine data into a final datamatrix that contains the quantities of identified metabolites in each sample. While there are many bioinformatics tools available to aid the initial steps of the process, their use requires both significant technical expertise and a subsequent manual validation of identifications and alignments if high data quality is desired. The manual validation is tedious and time consuming, becoming prohibitively so as sample numbers increase. We have, therefore, developed Maui-VIA, a solution based on a visual interface that allows experts and non-experts to simultaneously and quickly process, inspect, and correct large numbers of GC–MS samples. It allows for the visual inspection of identifications and alignments, facilitating a unique and, due to its visualization and keyboard shortcuts, very fast interaction with the data. Therefore, Maui-Via fills an important niche by (1) providing functionality that optimizes the component of data processing that is currently most labor intensive to save time and (2) lowering the threshold of expertise required to process GC–MS data. Maui-VIA projects are initiated with baseline-corrected raw data, peaklists, and a database of metabolite spectra and retention indices used for identification. It provides functionality for retention index calculation, a targeted library search, the visual annotation, alignment, correction interface, and metabolite quantification, as well as the export of the final datamatrix. The high quality of data produced by Maui-VIA is illustrated by its comparison to data attained manually by an expert using vendor software on a previously published dataset concerning the response of Chlamydomonas reinhardtii to salt stress. In conclusion, Maui-VIA provides the opportunity for fast, confident, and high-quality data processing validation of large numbers of GC–MS samples by non-experts.
机译:GC-MS代谢组学的当前瓶颈是将原始机器数据处理成最终数据矩阵,该矩阵包含每个样品中鉴定出的代谢物的数量。尽管有许多生物信息学工具可用于协助流程的初始步骤,但如果需要高数据质量,则其使用既需要大量的技术专长,也需要随后的手动识别和比对验证。手动验证既繁琐又费时,因此随着样本数量的增加而变得令人望而却步。因此,我们已经开发了Maui-VIA,这是一种基于可视界面的解决方案,允许专家和非专家同时快速地处理,检查和校正大量的GC-MS样品。它允许对标识和对齐方式进行视觉检查,从而促进了唯一性,并且由于其可视化和键盘快捷键,可以与数据进行非常快速的交互。因此,毛伊维亚(Maui-Via)通过(1)提供功能来优化当前最耗费人力的数据处理组件来节省时间,并(2)降低处理GC-MS数据所需的专业知识门槛,从而填补了一个重要的市场。 Maui-VIA项目以基线校正后的原始数据,峰列表以及用于鉴定的代谢物谱和保留指数数据库启动。它提供了保留指数计算,目标库搜索,视觉注释,对齐,校正界面和代谢物定量以及最终数据矩阵导出的功能。通过将Maui-VIA与专家使用供应商软件在先前发布的有关莱茵衣藻对盐胁迫的响应的数据集上使用人工软件获得的数据进行比较,可以说明该数据的高质量。总之,Maui-VIA提供了由非专家对大量GC-MS样品进行快速,自信和高质量数据处理验证的机会。

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