Near-atomistic simulations reveal the molecular principles that control chromatin structure and phase separation

Abstract Understanding how chromatin’s physicochemical properties shape its emergent organization is central to deciphering genome function. To address this, we present OpenCGChromatin, a high-performance coarse-grained model that achieves near-atomistic simulations of chromatin systems an order of magnitude larger than previously possible, spanning biomolecular condensates and fibers tens of kilobases in length. OpenCGChromatin simulations independently predict, from physicochemical principles, the linker-DNA-dependent chromatin structures observed by cryo-ET and the relative thermodynamic stability of condensates inferred from biochemical assays. Crucially, OpenCGChromatin resolves histone-tail dynamics and interaction networks that remain inaccessible experimentally, explaining how linker-DNA length controls histone tail accessibility and the resulting multiscale structure of chromatin condensates. Extending simulations to 108-nucleosome fibers shows that acetylation disrupts chromatin compaction in a pattern-specific manner by weakening key tail-mediated interactions, with H4K16 and H3K9 emerging as the most energetically disruptive modifications. These results position OpenCGChromatin as a powerful framework for linking molecular detail to emergent chromatin organization.

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Publication Details

Journal
Nature Communications
Published
2026-10-03
DOI
https://doi.org/10.1038/s41467-026-78050-6
Primary Topic
Genomics and Chromatin Dynamics
Type
article
Field-Weighted Citation Impact
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article

Near-atomistic simulations reveal the molecular principles that control chromatin structure and phase separation

Modesto Orozco, Kieran O. Russell, Michael K. Rosen, Huabin Zhou et al.
Nature Communications
Genomics and Chromatin Dynamics
article

Near-atomistic simulations reveal the molecular principles that control chromatin structure and phase separation

Modesto Orozco, Kieran O. Russell, Michael K. Rosen, Huabin Zhou, Jorge R. Espinosa, Maria Julia Maristany, Rosana Collepardo‐Guevara, Jose Ignacio Perez Lopez, David Farré-Gil, Jan Huertas, Yifang Chen
article en

Abstract

Abstract Understanding how chromatin’s physicochemical properties shape its emergent organization is central to deciphering genome function. To address this, we present OpenCGChromatin, a high-performance coarse-grained model that achieves near-atomistic simulations of chromatin systems an order of magnitude larger than previously possible, spanning biomolecular condensates and fibers tens of kilobases in length. OpenCGChromatin simulations independently predict, from physicochemical principles, the linker-DNA-dependent chromatin structures observed by cryo-ET and the relative thermodynamic stability of condensates inferred from biochemical assays. Crucially, OpenCGChromatin resolves histone-tail dynamics and interaction networks that remain inaccessible experimentally, explaining how linker-DNA length controls histone tail accessibility and the resulting multiscale structure of chromatin condensates. Extending simulations to 108-nucleosome fibers shows that acetylation disrupts chromatin compaction in a pattern-specific manner by weakening key tail-mediated interactions, with H4K16 and H3K9 emerging as the most energetically disruptive modifications. These results position OpenCGChromatin as a powerful framework for linking molecular detail to emergent chromatin organization.

Nature Communications
Universidad Complutense de Madrid (ES), Marine Biological Laboratory (US), Howard Hughes Medical Institute (US), University of Cambridge (GB), Institute for Research in Biomedicine (ES), Barcelona Institute of Science and Technology (ES), Universitat de Barcelona (ES), The University of Texas Southwestern Medical Center (US)
Openalex Percentile: Top 19%
Genomics and Chromatin Dynamics
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