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A data integration framework for prediction of transcription factor targets: a BCL6 case study

机译:预测转录因子靶标的数据整合框架:BCL6案例研究

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摘要

We present a computational framework for predicting targets of transcription factor regulation. The framework is based on the integration of a number of sources of evidence, derived from DNA sequence and gene expression data, using a weighted sum approach. Sources of evidence are prioritized based on a training set, and their relative contributions are then optimized. The performance of the proposed framework is demonstrated in the context of BCL6 target prediction. We show that this framework is able to uncover BCL6 targets reliably when biological prior information is utilized effectively, particularly in the case of sequence analysis. The framework results in a considerable gain in performance over scores in which sequence information was not incorporated. This analysis shows that with assessment of the quality and biological relevance of the data, reliable predictions can be obtained with this computational framework.
机译:我们提出了一个预测转录因子调控目标的计算框架。该框架基于使用加权总和法从DNA序列和基因表达数据中获得的大量证据来源的整合。根据训练集确定证据来源的优先级,然后优化其相对贡献。在BCL6目标预测的背景下证明了所提出框架的性能。我们表明,该框架能够有效地利用生物学先验信息,尤其是在序列分析的情况下,可靠地发现BCL6靶标。与未结合序列信息的得分相比,该框架可显着提高性能。该分析表明,通过评估数据的质量和生物学相关性,可以使用此计算框架获得可靠的预测。

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