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RAMONA: a Web application for gene set analysis on multilevel omics data

机译:RAMONA:用于多组学数据的基因组分析的Web应用程序

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摘要

A Summary: Decreasing costs of modern high-throughput experiments allow for the simultaneous analysis of altered gene activity on various molecular levels. However, these multi-omics approaches lead to a large amount of data, which is hard to interpret for a non-bioinformatician. Here, we present the remotely accessible multilevel ontology analysis (RAMONA). It offers an easy-to-use interface for the simultaneous gene set analysis of combined omics datasets and is an extension of the previously introduced MONA approach. RAMONA is based on a Bayesian enrichment method for the inference of overrepresented biological processes among given gene sets. Overrepresentation is quantified by interpretable term probabilities. It is able to handle data from various molecular levels, while in parallel coping with redundancies arising from gene set overlaps and related multiple testing problems. The comprehensive output of RAMONA is easy to interpret and thus allows for functional insight into the affected biological processes. With RAMONA, we provide an efficient implementation of the Bayesian inference problem such that ontologies consisting of thousands of terms can be processed in the order of seconds.
机译:摘要:现代高通量实验成本的降低使得可以同时分析各种分子水平上的基因活性变化。但是,这些多组学方法导致大量数据,这对于非生物信息学家来说很难解释。在这里,我们介绍了可远程访问的多层次本体分析(RAMONA)。它为组合的组学数据集的同时基因组分析提供了易于使用的界面,并且是先前引入的MONA方法的扩展。 RAMONA基于贝叶斯富集方法,用于推断给定基因集中过度代表的生物过程。过度陈述是通过可解释的术语概率来量化的。它能够处理各种分子水平的数据,同时并行处理因基因组重叠和相关的多重测试问题而引起的冗余。 RAMONA的全面输出易于解释,因此可以从功能上洞悉受影响的生物过程。利用RAMONA,我们可以有效地实现贝叶斯推理问题,从而可以在几秒钟的时间内处理包含数千个术语的本体。

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