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APEC: an accesson-based method for single-cell chromatin accessibility analysis

机译:APEC:一种基于Accesson的单细胞染色质辅助性分析方法

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The development of sequencing technologies has promoted the survey of genome-wide chromatin accessibility at single-cell resolution. However, comprehensive analysis of single-cell epigenomic profiles remains a challenge. Here, we introduce an accessibility pattern-based epigenomic clustering (APEC) method, which classifies each cell by groups of accessible regions with synergistic signal patterns termed "accessons". This python-based package greatly improves the accuracy of unsupervised single-cell clustering for many public datasets. It also predicts gene expression, identifies enriched motifs, discovers super-enhancers, and projects pseudotime trajectories. APEC is available at https://github.com/QuKunLab/APEC.
机译:测序技术的开发促进了单细胞分辨率下对基因组染色质可接受性的调查。然而,对单细胞外形谱的综合分析仍然是一个挑战。在这里,我们介绍基于可访问的模式的表观簇聚类(APEC)方法,其通过一组可访问区域分类每个小区,所述可访问区域具有称为“accessons”的协同信号模式。基于Python的封装大大提高了许多公共数据集的无监督单单元聚类的准确性。它还预测基因表达,识别富集的主题,发现超级增强剂,并项目伪轨迹。 APEC可在https://github.com/qukunlab/apec提供。

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