生物网络中节点的控制特征

IF 2.8 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Bingbo Wang , Yaoqi Shou , Mingjie Zhang , Haiyan Jin , Lin Gao
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引用次数: 0

摘要

研究潜在生物网络的可控性有助于理解生物系统。尽管驱动和关键节点的结构特性已被表征为识别新的疾病基因和潜在的药物靶点,但关键基因干预细胞关键功能结果的假设一直得到支持,而普通基因因其在疾病背景下的低富集而在很大程度上被忽视。本文从四个不同的控制角度对普通基因进行了表征,并提出了一个4元组索引控制特征来精确描述它们的控制特性。重要的是,我们观察到一种小规模的拓扑普通基因对疾病病因学做出了非凡的贡献,我们称之为非凡基因(EGs)。研究EGs在全基因遗传结构中的贡献,通过分析表达数量性状位点、药物靶点和遗传力数据,验证了EGs对疾病核心基因的高调控作用。我们提出了一种新的疾病图模式,其中EGs将外周信号的影响收敛到核心,并提高了疾病邻域的遗传富集度。总之,我们的研究结果首次显示了从普通淋巴结中表征异常疾病相关基因的能力,并提出了一个更全面的疾病干扰社区,进一步解释了全基因模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Control signature of nodes in biological networks
Controllability of underlying biological networks is studied to help understand biological systems. Although structural properties of driver and critical nodes have been characterized for identifying novel disease genes and potential drug targets, the hypothesis that critical genes interpose crucial functional outcomes of cells has been consistently supported, and ordinary genes have been largely ignored because of their lower enrichment in the context of diseases. Here, we characterize ordinary genes from four different control perspectives, and present a 4-tuple index control signature to precisely describe their control properties. Importantly, we observed a small-scale topologically ordinary genes that make extraordinary contributions to disease etiology, which we called extraordinary genes (EGs). Studying the contribution of EGs in the omnigenic genetic architecture, we verified their high regulatory effects on core genes of diseases by analyzing expression quantitative trait loci, drug targets, and heritability data. We proposed a novel graph pattern of disease in which EGs converge the effects of peripheral signals into core, and improve the heritability enrichment of disease neighborhoods. Together, our results show, for the first time, the ability to characterize extraordinary disease-related genes from ordinary nodes, and suggest a more comprehensive disease-perturbed neighborhoods that further explains the omnigenic model.
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来源期刊
CiteScore
7.20
自引率
9.10%
发文量
852
审稿时长
6.6 months
期刊介绍: Physica A: Statistical Mechanics and its Applications Recognized by the European Physical Society Physica A publishes research in the field of statistical mechanics and its applications. Statistical mechanics sets out to explain the behaviour of macroscopic systems by studying the statistical properties of their microscopic constituents. Applications of the techniques of statistical mechanics are widespread, and include: applications to physical systems such as solids, liquids and gases; applications to chemical and biological systems (colloids, interfaces, complex fluids, polymers and biopolymers, cell physics); and other interdisciplinary applications to for instance biological, economical and sociological systems.
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