Topoisomerase-modulated genome-wide DNA supercoiling domains colocalize with nuclear compartments and regulate human gene expression.

Nat Struct Mol Biol

Laboratory of Biochemistry and Molecular Biology, National Cancer Institute, National Institutes of Health, Bethesda, MD, USA.

Published: August 2024

AI Article Synopsis

  • DNA supercoiling is crucial for various biological processes, but its understanding in chromatin is still limited.
  • A new method called azide-trimethylpsoralen sequencing (ATMP-seq) was developed to accurately measure DNA supercoiling without significant bias or noise, revealing both positive and negative supercoiling near genes in the human genome.
  • The study identified large-scale supercoiling domains regulated by specific enzymes and demonstrated that transcription influences these domains, affecting gene expression and highlighting the role of supercoiling dynamics in chromatin function.

Article Abstract

DNA supercoiling is a biophysical feature of the double helix with a pivotal role in biological processes. However, understanding of DNA supercoiling in the chromatin remains limited. Here, we developed azide-trimethylpsoralen sequencing (ATMP-seq), a DNA supercoiling assay offering quantitative accuracy while minimizing genomic bias and background noise. Using ATMP-seq, we directly visualized transcription-dependent negative and positive twin-supercoiled domains around genes and mapped kilobase-resolution DNA supercoiling throughout the human genome. Remarkably, we discovered megabase-scale supercoiling domains (SDs) across all chromosomes that are modulated mainly by topoisomerases I and IIβ. Transcription activities, but not the consequent supercoiling accumulation in the local region, contribute to SD formation, indicating the long-range propagation of transcription-generated supercoiling. Genome-wide SDs colocalize with A/B compartments in both human and Drosophila cells but are distinct from topologically associating domains (TADs), with negative supercoiling accumulation at TAD boundaries. Furthermore, genome-wide DNA supercoiling varies between cell states and types and regulates human gene expression, underscoring the importance of supercoiling dynamics in chromatin regulation and function.

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Source
http://dx.doi.org/10.1038/s41594-024-01377-5DOI Listing

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