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Updated: Jan 28, 2026

Purifying the Impure: Sequencing Metagenomes and Metatranscriptomes from Complex Animal-associated Samples
Published on: December 22, 2014
bin3C: exploiting Hi-C sequencing data to accurately resolve metagenome-assembled genomes
Matthew Z DeMaere1, Aaron E Darling2
1The ithree institute, University of Technology Sydney, 15 Broadway, Ultimo, 2007, NSW, Australia. matthew.demaere@uts.edu.au.
Abstract:
Most microbes cannot be easily cultured, and metagenomics provides a means to study them. Current techniques aim to resolve individual genomes from metagenomes, so-called metagenome-assembled genomes (MAGs). Leading approaches depend upon time series or transect studies, the efficacy of which is a function of community complexity, target abundance, and sequencing depth. We describe an unsupervised method that exploits the hierarchical nature of Hi-C interaction rates to resolve MAGs using a single time point. We validate the method and directly compare against a recently announced proprietary service, ProxiMeta. bin3C is an open-source pipeline and makes use of the Infomap clustering algorithm ( https://github.com/cerebis/bin3C ).
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