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Zhigulev, A.

Publications and source records attributed to Zhigulev, A..

2 recordsLinked to original sources

Controlling for DNA dosage with Whole Genome Sequencing improves ATAC-seq peak calling

The Assay for Transposase-Accessible Chromatin using sequencing (ATAC-seq) is a scalable and sensitive method for profiling chromatin accessibility, enabling the identification of cis-regulatory elements (CREs) that govern gene expression in diverse cellular contexts. Although ATAC-seq is routinely applied to both bulk and single-cell samples, we reveal that its peak calling process is compromised by local biases in DNA dosage, arising not only from copy number variations (CNVs) but also from DNA replication timing (RT). These biases can distort read coverage and compromise peak detection accuracy. As part of the FANTOM consortiums efforts to elucidate genomic regulation, we propose enhancing the MACS pipeline by integrating whole-genome sequencing (WGS) data to account for local DNA dosage effects, analogous to the use of input controls in ChIP-seq analyses. By incorporating WGS data, we demonstrate an increase in both the number and width of ATAC peaks, with improved proximity to transcription start sites (TSSs). WGS-controlled ATAC peaks exhibit canonical CRE epigenetic marks and are enriched for trait- and disease-associated genetic variants. Furthermore, the number of WGS-controlled peaks correlates more strongly with gene expression levels compared to peaks called without WGS control. Collectively, these results demonstrate that integrating WGS as a control significantly enhances the accuracy of ATAC-seq peak calling. Critically, we show that even low-depth WGS data is sufficient to improve peak calling performance, making this approach both cost-effective and readily adoptable for routine analyses. To ensure accessibility and reproducibility, we implemented this method as an open-source Nextflow pipeline. By challenging the assumption of uniform genomic visibility, our approach also holds broad implications for other DNA sequencing-based technologies.

bioinformatics↗

Extending cis-regulatory networks using chromatin-RNA interactions

Cis-regulatory networks are essential for determining gene transcriptional states, yet the mechanisms that mediate cellular signaling and enhancer-promoter communications are not yet well understood. Here, we integrate high-resolution enhancer-promoter interactions obtained using targeted chromosome conformation capture and RNA-DNA contacts from RADICL-seq to uncover the role of RNA in modulating enhancer-promoter interactions. Both datasets were generated from human induced pluripotent cells at different stages across neural differentiation. As expected, most enhancer-promoter interactions were dynamic with only 38% shared across all cell states and 68% of promoter interacting regions overlapped at least one annotated neural enhancer. Integration with RADICL-seq data revealed a 9.3-fold enrichment for cis-interacting DNA regions to associate with at least one RNA. Among 18,346 cis-interacting promoters, only 1,170 (6.3%) lacked any RNA association, whereas 3,702 (28%) showed stable RNA association and 13,579 (74%) displayed dynamic RNA association across differentiation. Promoters associated with RNA engaged with higher number of enhancers and exhibited higher expression levels, while enhancers with RNA associations showed higher levels of chromatin activation marks. Promoters with dynamic RNA association were also more likely to be differentially expressed and enriched for relevant biological processes, phenotypes and diseases. Importantly, RNA-DNA association dynamics correlated strongly with DNA-DNA interaction dynamics; gain of RNA association on enhancers was typically accompanied by enhancer-promoter interaction gain, whereas concurrent RNA association gain on both promoter and enhancers frequently led to interaction loss. The correlation of RNA association on cis-interaction dynamics across differentiation were also captured in the community structure of the DNA-RNA network. Together, our results reveal extensive coupling between RNA-DNA and DNA-DNA networks supporting a coordinating role of RNA in gene regulation.

genomics↗