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Biblio-MetReS for user-friendly mining of genes and biological processes in scientific documents

机译:Biblio-MetReS可方便用户挖掘科学文献中的基因和生物过程

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摘要

One way to initiate the reconstruction of molecular circuits is by using automated text-mining techniques. Developing more efficient methods for such reconstruction is a topic of active research, and those methods are typically included by bioinformaticians in pipelines used to mine and curate large literature datasets. Nevertheless, experimental biologists have a limited number of available user-friendly tools that use text-mining for network reconstruction and require no programming skills to use. One of these tools is Biblio-MetReS. Originally, this tool permitted an on-the-fly analysis of documents contained in a number of web-based literature databases to identify co-occurrence of proteins/genes. This approach ensured results that were always up-to-date with the latest live version of the databases. However, this ‘up-to-dateness’ came at the cost of large execution times. Here we report an evolution of the application Biblio-MetReS that permits constructing co-occurrence networks for genes, GO processes, Pathways, or any combination of the three types of entities and graphically represent those entities. We show that the performance of Biblio-MetReS in identifying gene co-occurrence is as least as good as that of other comparable applications (STRING and iHOP). In addition, we also show that the identification of GO processes is on par to that reported in the latest BioCreAtIvE challenge. Finally, we also report the implementation of a new strategy that combines on-the-fly analysis of new documents with preprocessed information from documents that were encountered in previous analyses. This combination simultaneously decreases program run time and maintains ‘up-to-dateness’ of the results. Availability: , Contact: .
机译:启动分子回路重建的一种方法是使用自动文本挖掘技术。开发更有效的方法来进行此类重建是积极研究的主题,生物信息学家通常将这些方法包括在用于挖掘和管理大型文献数据集的管道中。尽管如此,实验生物学家拥有有限的可用用户友好工具,这些工具使用文本挖掘进行网络重建,并且不需要使用任何编程技能。这些工具之一是Biblio-MetReS。最初,该工具允许对包含在多个基于网络的文献数据库中的文档进行动态分析,以识别蛋白质/基因的共现现象。这种方法可确保结果始终与数据库的最新实时版本保持同步。但是,这种“最新”的代价是执行时间长。在这里,我们报告了Biblio-MetReS应用程序的演变,该应用程序允许为基因,GO过程,途径或三种类型的实体的任意组合构建共现网络,并以图形方式表示这些实体。我们显示,Biblio-MetReS在识别基因共现方面的性能与其他可比较应用程序(STRING和iHOP)一样好。此外,我们还表明,GO流程的鉴定与最新的BioCreAtIvE挑战中报道的鉴定是同等的。最后,我们还报告了一种新策略的实施,该策略将对新文档的动态分析与先前分析中遇到的文档中的预处理信息相结合。这种组合同时减少了程序运行时间,并保持了结果的“最新性”。可用性:,联系方式:。

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