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染色体接触图谱的标准化:矩阵平衡和可视化。

Normalization of Chromosome Contact Maps: Matrix Balancing and Visualization.

机构信息

Institut Pasteur, Unité Régulation Spatiale des Génomes, Paris, France.

Sorbonne Université, Collège Doctoral, Paris, France.

出版信息

Methods Mol Biol. 2022;2301:1-15. doi: 10.1007/978-1-0716-1390-0_1.

Abstract

Over the last decade, genomic proximity ligation approaches have reshaped our vision of chromosomes 3D organizations, from bacteria nucleoids to larger eukaryotic genomes. The different protocols (3Cseq, Hi-C, TCC, MicroC [XL], Hi-CO, etc.) rely on common steps (chemical fixation digestion, ligation…) to detect pairs of genomic positions in close proximity. The most common way to represent these data is a matrix, or contact map, which allows visualizing the different chromatin structures (compartments, loops, etc.) that can be associated to other signals such as transcription, protein occupancy, etc. as well as, in some instances, to biological functions.In this chapter we present and discuss the filtering of the events recovered in proximity ligation experiments as well as the application of the balancing normalization procedure on the resulting contact map. We also describe a computational tool for visualizing normalized contact data dubbed Scalogram.The different processes described here are illustrated and supported by the laboratory custom-made scripts pooled into "hicstuff," an open-access python package accessible on github ( https://github.com/koszullab/hicstuff ).

摘要

在过去的十年中,基因组邻近连接方法改变了我们对染色体三维结构的认识,从细菌类核到更大的真核基因组。不同的方案(3Cseq、Hi-C、TCC、MicroC [XL]、Hi-CO 等)依赖于共同的步骤(化学固定、消化、连接等)来检测近距离接近的基因组位置对。表示这些数据的最常见方法是矩阵或接触图,它可以可视化不同的染色质结构(隔室、环等),这些结构可以与转录、蛋白质占有率等其他信号相关联,在某些情况下,还可以与生物功能相关联。在本章中,我们介绍并讨论了邻近连接实验中恢复的事件的过滤,以及对所得接触图应用平衡归一化程序。我们还描述了一个用于可视化归一化接触数据的计算工具,称为 Scalogram。这里描述的不同过程由汇集在“hicstuff”中的实验室定制脚本进行说明和支持,“hicstuff”是一个可在 github 上访问的开放访问 python 包(https://github.com/koszullab/hicstuff)。

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