ReviewBiophysical journal2018
Formation of Chromatin Subcompartments by Phase Separation.
Review in Biophysical journal, 2018. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 221 papers.
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Who cites it
221 citing papers in PubMed.
- Nuclear mechanobiology rules immune cells' functions: from differentiation to cell trafficking and pathogen killing.Nucleus (Austin, Tex.) · 2026Review
- Bridging-driven condensation by eukaryotic SMC complexes is a conserved feature of genome organization.Nucleic acids research · 2026Article
- Mixing chromatin fibers with different nucleosome repeat lengths changes dynamics of chromatin phase separation.The Journal of biological chemistry · 2026Article
- Current Challenges of Transcription Compartmentalization Research.Advanced science (Weinheim, Baden-Wurttemberg, Germany) · 2026Review
- The role of the 2'-OH group in phase separation and percolation transitions of RNA.Nature communications · 2026Article
- RepliSage: a stochastic graph-based framework for 3D chromatin modeling across the cell cycle.Nucleic acids research · 2026Article
- The Critical Role of the 2'-OH group in Phase Separation and Percolation Transitions of RNA.bioRxiv : the preprint server for biology · 2026Article
- Architecture and regulation of nanoscale chromatin domains.Nature communications · 2026Review
- From chromosomal protein disorder to chromatin phase separation.Epigenetics & chromatin · 2026Review
- Self-clustering of three CBX2 molecules drives PRC2 to promote facultative heterochromatinization of Polycomb target genes.Molecular cell · 2026Article
- In vitro reconstitution of heterochromatin compartments reveals the spontaneous formation of tunable liquid-liquid interfaces.Nucleic acids research · 2026Article
- The TRIP12's intrinsically disordered region induces chromatin condensates and interferes with nuclear processes.iScience · 2026Article
- Atomic Force Microscopy Analysis of Bridging-Induced Phase Separation Mediated by SMC Proteins.Methods in molecular biology (Clifton, N.J.) · 2026Article
- Dynamic networks of intrinsically disordered regions in nuclear proteins.Biophysics and physicobiology · 2026Article
- Phase separation as an emerging regulatory framework in antibody class switching and genome stability.Frontiers in immunology · 2026Review
- The Role of Transient Crosslinks in the Chromatin Search Response to DNA Damage.International journal of molecular sciences · 2025Article
- Analysis of long-range contacts across cell types outlines a core sequence determinant of 3D genome organization.NAR genomics and bioinformatics · 2025Article
- Tuning nuclear rheology through transient chromatin cross-links.Physical review. E · 2025Article
- Dynamics of microcompartment formation at the mitosis-to-G1 transition.Nature structural & molecular biology · 2025Article
- Heterochromatome wide analyses reveal MBD2 as a phase separation scaffold for heterochromatin compartmentalization and composition.Nucleic acids research · 2025Article
161 more citing papers are in PubMed but not listed here.
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Authors and funding
2 authors.
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No grant is acknowledged in the PubMed record.
Abstract
Chromatin is partitioned on multiple length scales into subcompartments that differ from each other with respect to their molecular composition and biological function. It is a key question how these compartments can form even though diffusion constantly mixes the nuclear interior and rapidly balances concentration gradients of soluble nuclear components. Different biophysical concepts are currently used to explain the formation of "chromatin bodies" in a self-organizing manner and without consuming energy. They rationalize how soluble protein factors that are dissolved in the liquid nuclear phase, the nucleoplasm, bind and organize transcriptionally active or silenced chromatin domains. In addition to cooperative binding of proteins to a preformed chromatin structure, two different mechanisms for the formation of phase-separated chromatin subcompartments have been proposed. One is based on bridging proteins that cross-link polymer segments with particular properties. Bridging can induce a collapse of the nucleosome chain and associated factors into an ordered globular phase. The other mechanism is based on multivalent interactions among soluble molecules that bind to chromatin. These interactions can induce liquid-liquid phase separation, which drives the assembly of liquid-like nuclear bodies around the respective binding sites on chromatin. Both phase separation mechanisms can explain that chromatin bodies are dynamic spherical structures, which can coalesce and are in constant and rapid exchange with the surrounding nucleoplasm. However, they make distinct predictions about how the size, density, and stability of chromatin bodies depends on the concentration and interaction behavior of the molecules involved. Here, we compare the different biophysical mechanisms for the assembly of chromatin bodies and discuss experimental strategies to distinguish them from each other. Furthermore, we outline the implications for the establishment and memory of functional chromatin state patterns.
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