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Algorithms for modeling global and context-specific functional relationship networks

机译:用于建模全局和特定于上下文的功能关系网络的算法

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摘要

Functional genomics has enormous potential to facilitate our understanding of normal and disease-specific physiology. In the past decade, intensive research efforts have been focused on modeling functional relationship networks, which summarize the probability of gene co-functionality relationships. Such modeling can be based on either expression data only or heterogeneous data integration. Numerous methods have been deployed to infer the functional relationship networks, while most of them target the global (non-context-specific) functional relationship networks. However, it is expected that functional relationships consistently reprogram under different tissues or biological processes. Thus, advanced methods have been developed targeting tissue-specific or developmental stage-specific networks. This article brings together the state-of-the-art functional relationship network modeling methods, emphasizes the need for heterogeneous genomic data integration and context-specific network modeling and outlines future directions for functional relationship networks.
机译:功能基因组学具有巨大的潜力,可促进我们对正常和特定疾病生理学的理解。在过去的十年中,大量的研究工作集中于对功能关系网络进行建模,从而总结了基因共功能关系的可能性。这样的建模可以基于仅表达数据或异构数据集成。已经部署了许多方法来推断功能关系网络,而大多数方法都针对全局(非特定于上下文的)功能关系网络。然而,期望功能关系在不同的组织或生物过程中持续地重新编程。因此,已经开发出针对组织特异性或发育阶段特异性网络的先进方法。本文汇集了最新的功能关系网络建模方法,强调了对异构基因组数据集成和特定于上下文的网络建模的需求,并概述了功能关系网络的未来方向。

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