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Integrating regulatory DNA sequence and gene expression to predict genome-wide chromatin accessibility across cellular contexts

机译:整合调节DNA序列和基因表达以预测细胞背景下的基因组染色质染色质

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摘要

Motivation Genome-wide profiles of chromatin accessibility and gene expression in diverse cellular contexts are critical to decipher the dynamics of transcriptional regulation. Recently, convolutional neural networks have been used to learn predictive cis-regulatory DNA sequence models of context-specific chromatin accessibility landscapes. However, these context-specific regulatory sequence models cannot generalize predictions across cell types.
机译:多种细胞背景下的染色质可用性和基因表达的刺激基因组曲线对于破译转录调节的动态至关重要。 最近,卷积神经网络已被用于学习特异性染色质可接近性景观的预测性CIS调节DNA序列模型。 但是,这些特定于上下文的调节序列模型不能概括跨细胞类型的预测。

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