测量复杂生物网络控制的临界值

IF 3.5 2区 生物学 Q1 MATHEMATICAL & COMPUTATIONAL BIOLOGY NPJ Systems Biology and Applications Pub Date : 2024-01-20 DOI:10.1038/s41540-024-00333-9
Wataru Someya, Tatsuya Akutsu, Jean-Marc Schwartz, Jose C. Nacher
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引用次数: 0

摘要

最近的可控性分析表明,驱动节点往往与重要生物功能和人类疾病相关的基因有关。研究人员一直专注于识别关键节点,但对间歇节点的关注却少得多。在这里,我们提出了一种基于汉明距离的新型高效算法,利用基于最小优势集(MDS)的控制模型计算间歇节点的重要性。我们将这一指标称为临界度。应用所提出的算法计算 MDS 控制框架下的临界度,使我们能够揭示间歇节点在不同网络系统中的生物学重要性和作用,从细胞水平(如信号通路和细胞-细胞相互作用(如细胞因子网络))到线虫的完整神经系统。总之,所开发的计算工具可为研究间歇节点在网络控制背景下的许多生物系统中的作用开辟新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Measuring criticality in control of complex biological networks

Recent controllability analyses have demonstrated that driver nodes tend to be associated to genes related to important biological functions as well as human diseases. While researchers have focused on identifying critical nodes, intermittent nodes have received much less attention. Here, we propose a new efficient algorithm based on the Hamming distance for computing the importance of intermittent nodes using a Minimum Dominating Set (MDS)-based control model. We refer to this metric as criticality. The application of the proposed algorithm to compute criticality under the MDS control framework allows us to unveil the biological importance and roles of the intermittent nodes in different network systems, from cellular level such as signaling pathways and cell-cell interactions such as cytokine networks, to the complete nervous system of the nematode worm C. elegans. Taken together, the developed computational tools may open new avenues for investigating the role of intermittent nodes in many biological systems of interest in the context of network control.

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来源期刊
NPJ Systems Biology and Applications
NPJ Systems Biology and Applications Mathematics-Applied Mathematics
CiteScore
5.80
自引率
0.00%
发文量
46
审稿时长
8 weeks
期刊介绍: npj Systems Biology and Applications is an online Open Access journal dedicated to publishing the premier research that takes a systems-oriented approach. The journal aims to provide a forum for the presentation of articles that help define this nascent field, as well as those that apply the advances to wider fields. We encourage studies that integrate, or aid the integration of, data, analyses and insight from molecules to organisms and broader systems. Important areas of interest include not only fundamental biological systems and drug discovery, but also applications to health, medical practice and implementation, big data, biotechnology, food science, human behaviour, broader biological systems and industrial applications of systems biology. We encourage all approaches, including network biology, application of control theory to biological systems, computational modelling and analysis, comprehensive and/or high-content measurements, theoretical, analytical and computational studies of system-level properties of biological systems and computational/software/data platforms enabling such studies.
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