Perseus 计算平台,用于全面分析(蛋白质组学)数据。

The Perseus computational platform for comprehensive analysis of (prote)omics data.

机构信息

Computational Systems Biochemistry, Max Planck Institute of Biochemistry, Martinsried, Germany.

Cellular and Molecular Pharmacology, University of California, San Francisco, San Francisco, California, USA.

出版信息

Nat Methods. 2016 Sep;13(9):731-40. doi: 10.1038/nmeth.3901. Epub 2016 Jun 27.

Abstract

A main bottleneck in proteomics is the downstream biological analysis of highly multivariate quantitative protein abundance data generated using mass-spectrometry-based analysis. We developed the Perseus software platform (http://www.perseus-framework.org) to support biological and biomedical researchers in interpreting protein quantification, interaction and post-translational modification data. Perseus contains a comprehensive portfolio of statistical tools for high-dimensional omics data analysis covering normalization, pattern recognition, time-series analysis, cross-omics comparisons and multiple-hypothesis testing. A machine learning module supports the classification and validation of patient groups for diagnosis and prognosis, and it also detects predictive protein signatures. Central to Perseus is a user-friendly, interactive workflow environment that provides complete documentation of computational methods used in a publication. All activities in Perseus are realized as plugins, and users can extend the software by programming their own, which can be shared through a plugin store. We anticipate that Perseus's arsenal of algorithms and its intuitive usability will empower interdisciplinary analysis of complex large data sets.

摘要

蛋白质组学的一个主要瓶颈是使用基于质谱分析的方法生成的高度多变量定量蛋白质丰度数据的下游生物学分析。我们开发了 Perseus 软件平台(http://www.perseus-framework.org),以支持生物学和生物医学研究人员解释蛋白质定量、相互作用和翻译后修饰数据。Perseus 包含了一套全面的统计工具,用于高维组学数据分析,涵盖了归一化、模式识别、时间序列分析、跨组学比较和多重假设检验。机器学习模块支持对患者组进行分类和验证,用于诊断和预后,并检测预测性蛋白质特征。Perseus 的核心是一个用户友好的交互式工作流程环境,为出版物中使用的计算方法提供了完整的文档。Perseus 中的所有活动都是作为插件实现的,用户可以通过编程来扩展软件,这些插件可以通过插件商店共享。我们预计,Perseus 的算法武器库及其直观的易用性将使对复杂大数据集的跨学科分析成为可能。

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