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首页> 外文期刊>Bioinformatics >DDGni: Dynamic delay gene-network inference from high-temporal data using gapped local alignment
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DDGni: Dynamic delay gene-network inference from high-temporal data using gapped local alignment

机译:DDGni:使用有缺口的局部比对从高时间数据动态延迟基因网络推断

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Motivation: Inferring gene-regulatory networks is very crucial in decoding various complex mechanisms in biological systems. Synthesis of a fully functional transcriptional factor/ protein from DNA involves series of reactions, leading to a delay in gene regulation. The complexity increases with the dynamic delay induced by other small molecules involved in gene regulation, and noisy cellular environment. The dynamic delay in gene regulation is quite evident in high-temporal live cell lineage-imaging data. Although a number of gene-networkinference methods are proposed, most of them ignore the associated dynamic time delay. Results: Here, we propose DDGni (dynamic delay gene-network inference), a novel gene-network-inference algorithm based on the gapped local alignment of gene-expression profiles. The local alignment can detect short-term gene regulations, that are usually overlooked by traditional correlation and mutual Information based methods. DDGni uses 'gaps' to handle the dynamic delay and non-uniform sampling frequency in high-temporal data, like live cell imaging data. Our algorithm is evaluated on synthetic and yeast cell cycle data, and Caenorhabditis elegans live cell imaging data against other prominent methods. The area under the curve of our method is significantly higher when compared to other methods on all three datasets.
机译:动机:推断基因调控网络对于解码生物系统中各种复杂的机制至关重要。从DNA合成功能齐全的转录因子/蛋白质涉及一系列反应,从而导致基因调控的延迟。随着涉及基因调控的其他小分子和嘈杂的细胞环境引起的动态延迟,复杂性也随之增加。基因调控的动态延迟在高温活细胞谱系成像数据中非常明显。尽管提出了许多基因网络推断方法,但大多数方法都忽略了相关的动态时间延迟。结果:在这里,我们提出了DDGni(动态延迟基因网络推断),这是一种基于基因表达谱的缺口局部比对的新型基因网络推断算法。本地比对可以检测短期的基因调控,而传统的相关性和基于互信息的方法通常会忽略这些调控。 DDGni使用“间隙”来处理实时数据(例如活细胞成像数据)中的动态延迟和不均匀的采样频率。我们的算法是根据合成和酵母细胞周期数据进行评估的,而秀丽隐杆线虫活细胞成像数据则相对于其他重要方法。与所有这三个数据集上的其他方法相比,我们方法的曲线下面积明显更高。

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