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SAMNetWeb: identifying condition-specific networks linking signaling and transcription

机译:SAMNetWeb:确定链接信令和转录的特定条件网络

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摘要

>Motivation: High-throughput datasets such as genetic screens, mRNA expression assays and global phospho-proteomic experiments are often difficult to interpret due to inherent noise in each experimental system. Computational tools have improved interpretation of these datasets by enabling the identification of biological processes and pathways that are most likely to explain the measured results. These tools are primarily designed to analyse data from a single experiment (e.g. drug treatment versus control), creating a need for computational algorithms that can handle heterogeneous datasets across multiple experimental conditions at once.>Summary: We introduce SAMNetWeb, a web-based tool that enables functional enrichment analysis and visualization of high-throughput datasets. SAMNetWeb can analyse two distinct data types (e.g. mRNA expression and global proteomics) simultaneously across multiple experimental systems to identify pathways activated in these experiments and then visualize the pathways in a single interaction network. Through the use of a multi-commodity flow based algorithm that requires each experiment ‘share’ underlying protein interactions, SAMNetWeb can identify distinct and common pathways across experiments.>Availability and implementation: SAMNetWeb is freely available at .>Contact:
机译:>动机:由于每个实验系统中固有的噪声,通常难以解释高通量的数据集,例如基因筛选,mRNA表达分析和整体磷酸化蛋白质组学实验。计算工具通过识别最有可能解释测量结果的生物学过程和途径,改善了对这些数据集的解释。这些工具主要用于分析来自单个实验的数据(例如,药物治疗还是对照),因此需要能够同时处理多个实验条件下的异构数据集的计算算法。>摘要:我们介绍了SAMNetWeb ,这是一个基于网络的工具,可以进行功能丰富的分析和高通量数据集的可视化。 SAMNetWeb可以跨多个实验系统同时分析两种不同的数据类型(例如mRNA表达和全局蛋白质组学),以识别在这些实验中激活的途径,然后在单个交互网络中可视化这些途径。通过使用基于多商品流的算法,该算法需要每个实验“共享”底层蛋白质相互作用,SAMNetWeb可以识别整个实验中不同且通用的途径。>可用性和实现:SAMNetWeb可免费获得。 strong>联系方式:

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