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January 25, 20260 citationsOpen Access

Multiscale structure of chromatin condensates explains phase separation and material properties.

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HZHuabin ZhouJHJan HuertasMMM Julia Maristany

Key Points

  • To investigate how the structure of chromatin condensates affects their phase separation and material properties.
  • Cryo-electron tomography was used to visualize chromatin condensates.
  • Molecular dynamics simulations analyzed interactions at different scales.
  • Internucleosomal DNA linker lengths were studied to see their effect on nucleosome arrangement.
  • Internucleosomal DNA linker length influences nucleosome organization and histone interactions.
  • Structural changes modulate intramolecular and intermolecular interactions in chromatin.
  • Findings correlate dense clusters of nucleosomes in mammalian nuclei with reconstituted condensate structures.

Abstract

The structure and interaction networks of molecules within biomolecular condensates are poorly understood. Using cryo-electron tomography and molecular dynamics simulations, we elucidated the structure of phase-separated chromatin condensates across scales, from individual amino acids to network architecture. We found that internucleosomal DNA linker length controls nucleosome arrangement and histone tail interactions, shaping the structure of individual chromatin molecules within and outside condensates. This structural modulation determines the balance between intra- and intermolecular interactions, which governs the molecular network, thermodynamic stability, and material properties of chromatin condensates. Mammalian nuclei contain dense clusters of nucleosomes whose nonrandom organization is mirrored by the reconstituted condensates. Our work explains how the structure of individual chromatin molecules determines physical properties of chromatin condensates and cellular chromatin organization.

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Cite This Study

Zhou et al. (2025) studied this question.

synapsesocial.com/papers/6975b306feba4585c2d6e8c3https://doi.org/10.17863/cam.124657
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