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探索布尔网络中吸引子循环的可观测性用于生物标志物检测。

Exploring Observability of Attractor Cycles in Boolean Networks for Biomarker Detection.

作者信息

Qiu Yushan, Huang Yulong, Tan Shaobo, Dongqi L I, VAN DER Zijp-Tan Ada Chaeli, Borchert Glen M, Jiang Hao, Huang Jingshan

机构信息

College of Mathematics and Statistics, Shenzhen University, Shenzhen 518000, China.

College of Allied Health Professions, University of South Alabama, Mobile, AL 36688, USA.

出版信息

IEEE Access. 2019;7:127745-127753. doi: 10.1109/access.2019.2937133. Epub 2019 Aug 23.

Abstract

Boolean Network (BN) is a simple and popular mathematical model that has attracted significant attention from systems biology due to its capacity to reveal genetic regulatory network behavior. In addition, observability, as an important network feature, plays a vital role in deciphering the underlying mechanisms driving a genetic regulatory network and has been widely investigated. Prior studies examined observability of BNs and other complex networks. That said, observability of attractor, which can serve as a biomarker for disease, has not been fully examined in the literature. In this study, we formulated a new definition for singleton or cyclic attractor observability in BNs and developed an effective methodology to resolve the captured problem. We also showed complexity is of (), when the maximal period of cyclic attractor is , the number of attractor is and the number of genes is . Importantly, we have confirmed our method can faithfully predict the expression pattern of segment polarity genes in Drosophila melanogaster and showed it can effectively and efficiently deal with the captured observability problem.

摘要

布尔网络(BN)是一种简单且流行的数学模型,因其能够揭示基因调控网络行为而受到系统生物学的广泛关注。此外,可观测性作为一个重要的网络特征,在解读驱动基因调控网络的潜在机制方面起着至关重要的作用,并且已经得到了广泛研究。先前的研究考察了布尔网络和其他复杂网络的可观测性。也就是说,吸引子的可观测性,它可以作为疾病的生物标志物,在文献中尚未得到充分研究。在本研究中,我们为布尔网络中的单元素或循环吸引子可观测性制定了一个新定义,并开发了一种有效的方法来解决所捕获的问题。我们还表明,当循环吸引子的最大周期为 ,吸引子的数量为 且基因的数量为 时,复杂度为()。重要的是,我们已经证实我们的方法可以准确预测黑腹果蝇中节段极性基因的表达模式,并表明它可以有效且高效地处理所捕获的可观测性问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a613/7886255/78c8487ce3aa/nihms-1055802-f0009.jpg

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