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多组学整合能够准确预测未探索条件下大肠杆菌的细胞状态。

Multi-omics integration accurately predicts cellular state in unexplored conditions for Escherichia coli.

机构信息

Department of Computer Science, University of California, Davis, California 95616, USA.

Genome Center, University of California, Davis, California 95616, USA.

出版信息

Nat Commun. 2016 Oct 7;7:13090. doi: 10.1038/ncomms13090.

Abstract

A significant obstacle in training predictive cell models is the lack of integrated data sources. We develop semi-supervised normalization pipelines and perform experimental characterization (growth, transcriptional, proteome) to create Ecomics, a consistent, quality-controlled multi-omics compendium for Escherichia coli with cohesive meta-data information. We then use this resource to train a multi-scale model that integrates four omics layers to predict genome-wide concentrations and growth dynamics. The genetic and environmental ontology reconstructed from the omics data is substantially different and complementary to the genetic and chemical ontologies. The integration of different layers confers an incremental increase in the prediction performance, as does the information about the known gene regulatory and protein-protein interactions. The predictive performance of the model ranges from 0.54 to 0.87 for the various omics layers, which far exceeds various baselines. This work provides an integrative framework of omics-driven predictive modelling that is broadly applicable to guide biological discovery.

摘要

训练预测细胞模型的一个主要障碍是缺乏集成的数据资源。我们开发了半监督规范化流程,并进行实验表征(生长、转录组、蛋白质组),创建了 Ecomics,这是一个一致的、经过质量控制的大肠杆菌多组学纲要,具有凝聚力的元数据信息。然后,我们使用此资源来训练一个多尺度模型,该模型整合了四个组学层,以预测全基因组浓度和生长动态。从组学数据中重建的遗传和环境本体论与遗传和化学本体论有很大的不同,并且是互补的。不同层的整合赋予了预测性能的增量增加,以及关于已知基因调控和蛋白质-蛋白质相互作用的信息也是如此。该模型对各种组学层的预测性能范围从 0.54 到 0.87,远远超过各种基线。这项工作提供了一个基于组学的预测建模的综合框架,广泛适用于指导生物学发现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4f5e/5059772/a4fe3a76d312/ncomms13090-f1.jpg

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