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Constraint-based analysis of gene interactions using restricted boolean networks and time-series data

机译:使用受限布尔网络和时间序列数据基于约束的基因相互作用分析

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Background A popular model for gene regulatory networks is the Boolean network model. In this paper, we propose an algorithm to perform an analysis of gene regulatory interactions using the Boolean network model and time-series data. Actually, the Boolean network is restricted in the sense that only a subset of all possible Boolean functions are considered. We explore some mathematical properties of the restricted Boolean networks in order to avoid the full search approach. The problem is modeled as a Constraint Satisfaction Problem (CSP) and CSP techniques are used to solve it. Results We applied the proposed algorithm in two data sets. First, we used an artificial dataset obtained from a model for the budding yeast cell cycle. The second data set is derived from experiments performed using HeLa cells. The results show that some interactions can be fully or, at least, partially determined under the Boolean model considered. Conclusions The algorithm proposed can be used as a first step for detection of gene/protein interactions. It is able to infer gene relationships from time-series data of gene expression, and this inference process can be aided by a priori knowledge available.
机译:背景技术基因调控网络的流行模型是布尔网络模型。在本文中,我们提出了一种使用布尔网络模型和时间序列数据对基因调控相互作用进行分析的算法。实际上,在仅考虑所有可能的布尔函数的子集的意义上,布尔网络受到限制。我们探索了受限布尔网络的一些数学属性,以避免完全搜索方法。该问题被建模为约束满足问题(CSP),并使用CSP技术来解决它。结果我们将提出的算法应用于两个数据集。首先,我们使用了从模型中获得的人工数据集,用于萌芽的酵母细胞周期。第二个数据集来自使用HeLa细胞进行的实验。结果表明,在所考虑的布尔模型下,某些交互可以完全或至少部分确定。结论所提出的算法可作为检测基因/蛋白质相互作用的第一步。它能够从基因表达的时间序列数据推断出基因关系,并且这种推断过程可以借助现有的先验知识来辅助。

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