ArticleJournal of molecular biology2021
The Dynamic Influence of Linker Histone Saturation within the Poly-Nucleosome Array.
Article in Journal of molecular biology, 2021. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 16 papers.
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Who cites it
16 citing papers in PubMed, 26 citations in OpenAlex.
- Nucleosome condensate and linker DNA alter chromatin folding pathways and rates.Biophysical journal · 2026Article
- Structural insights into γH2Ax containing nucleosomes.Nucleic acids research · 2025Article
- Nanoscale Characterization of Interaction of Nucleosomes with H1 Linker Histone.International journal of molecular sciences · 2024Article
- Geometric variations in nucleosomal DNA dictate higher-order chromatin structure and enhancer-promoter communication.The Journal of chemical physics · 2024Article
- From Nucleosomes to Compartments: Physicochemical Interactions Underlying Chromatin Organization.Annual review of biophysics · 2024Review
- Regulation of chromatin architecture by protein binding: insights from molecular modeling.Biophysical reviews · 2024Review
- Article
- Explicit Ion Modeling Predicts Physicochemical Interactions for Chromatin Organization.bioRxiv : the preprint server for biology · 2023Article
- Brownian dynamics simulations of mesoscale chromatin fibers.Biophysical journal · 2023Article
- Machines on Genes through the Computational Microscope.Journal of chemical theory and computation · 2023Review
- The effects of RNA.DNA-DNA triple helices on nucleosome structures and dynamics.Biophysical journal · 2023Article
- Genome modeling: From chromatin fibers to genes.Current opinion in structural biology · 2023Review
- CENP-N promotes the compaction of centromeric chromatin.Nature structural & molecular biology · 2022Article
- A glitch in the snitch: the role of linker histone H1 in shaping the epigenome in normal and diseased cells.Open biology · 2021Review
- Multiscale modeling of genome organization with maximum entropy optimization.The Journal of chemical physics · 2021Article
- Effects of H2A.B incorporation on nucleosome structures and dynamics.Biophysical journal · 2021Article
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Authors and funding
3 authors at 1 institution in 1 country.
Funding
Abstract
Linker histones bind to nucleosomes and modify chromatin structure and dynamics as a means of epigenetic regulation. Biophysical studies have shown that chromatin fibers can adopt a plethora of conformations with varying levels of compaction. Linker histone condensation, and its specific binding disposition, has been associated with directly tuning this ensemble of states. However, the atomistic dynamics and quantification of this mechanism remains poorly understood. Here, we present molecular dynamics simulations of octa-nucleosome arrays, based on a cryo-EM structure of the 30-nm chromatin fiber, with and without the globular domains of the H1 linker histone to determine how they influence fiber structures and dynamics. Results show that when bound, linker histones inhibit DNA flexibility and stabilize repeating tetra-nucleosomal units, giving rise to increased chromatin compaction. Furthermore, upon the removal of H1, there is a significant destabilization of this compact structure as the fiber adopts less strained and untwisted states. Interestingly, linker DNA sampling in the octa-nucleosome is exaggerated compared to its mono-nucleosome counterparts, suggesting that chromatin architecture plays a significant role in DNA strain even in the absence of linker histones. Moreover, H1-bound states are shown to have increased stiffness within tetra-nucleosomes, but not between them. This increased stiffness leads to stronger long-range correlations within the fiber, which may result in the propagation of epigenetic signals over longer spatial ranges. These simulations highlight the effects of linker histone binding on the internal dynamics and global structure of poly-nucleosome arrays, while providing physical insight into a mechanism of chromatin compaction.
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