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map3C: a computational tool for processing multiomic single-cell Hi-C data

Jul 2026 · Bioinform. · Vol 42 · 0 citations · 38 references
Medicine Computer Science

TL;DR

It is demonstrated that map3C facilitates multiomic scHi-C processing, quality control, and identification of structural variant locations in the genome.

Abstract

Abstract Summary The emergence of multiomic single-cell Hi-C (scHi-C) methods, which simultaneously profile chromatin conformation and other modalities such as gene expression or DNA methylation, creates tremendous opportunities for studying the genome’s structure-function relationships. Existing tools for processing multiomic scHi-C datasets lack certain key functions for downstream bioinformatics analysis. We present map3C, a software tool that incorporates additional key functions. Specifically, we demonstrate that map3C facilitates multiomic scHi-C processing, quality control, and identification of structural variant locations in the genome. Availability and implementation map3C is available at https://github.com/luogenomics/map3C and is archived at https://doi.org/10.5281/zenodo.20724719.

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