Home LiteratureArticle Details
PMID: 25092923 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Modeling epigenome folding: formation and dynamics of topologically associated chromatin domains.

Nucleic acids research ·Vol. 42 ·No. 15 ·2014-09-00 ·Pages 9553-61

Jost D, Carrivain P, Cavalli G, Vaillant C

Abstract

Genomes of eukaryotes are partitioned into domains of functionally distinct chromatin states. These domains are stably inherited across many cell generations and can be remodeled in response to developmental and external cues, hence contributing to the robustness and plasticity of expression patterns and cell phenotypes. Remarkably, recent studies indicate that these 1D epigenomic domains tend to fold into 3D topologically associated domains forming specialized nuclear chromatin compartments. However, the general mechanisms behind such compartmentalization including the contribution of epigenetic regulation remain unclear. Here, we address the question of the coupling between chromatin folding and epigenome. Using polymer physics, we analyze the properties of a block copolymer model that accounts for local epigenomic information. Considering copolymers build from the epigenomic landscape of Drosophila, we observe a very good agreement with the folding patterns observed in chromosome conformation capture experiments. Moreover, this model provides a physical basis for the existence of multistability in epigenome folding at sub-chromosomal scale. We show how experiments are fully consistent with multistable conformations where topologically associated domains of the same epigenomic state interact dynamically with each other. Our approach provides a general framework to improve our understanding of chromatin folding during cell cycle and differentiation and its relation to epigenetics.

MeSH Terms
Animals Biopolymers/chemistry Chromatin/chemistry,metabolism Drosophila melanogaster/genetics Epigenesis, Genetic Models, Genetic Polycomb-Group Proteins/metabolism
Chemicals
Biopolymers Chromatin Polycomb-Group Proteins
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Jost Daniel
Laboratoire de Physique, Ecole Normale Supérieure de Lyon, CNRS UMR 5672, Lyon 69007, France.
Carrivain Pascal
Institute of Human Genetics, CNRS UPR 1142, Montpellier 34000, France.
Cavalli Giacomo
Institute of Human Genetics, CNRS UPR 1142, Montpellier 34000, France cedric.vaillant@ens-lyon.fr.
Vaillant Cédric
Laboratoire de Physique, Ecole Normale Supérieure de Lyon, CNRS UMR 5672, Lyon 69007, France cedric.vaillant@ens-lyon.fr.
References (49)
49 references, click to expand
  1. Comprehensive mapping of long-range interactions reveals folding principles of the human genome.
    Science. 2009 Oct 9;326(5950):289-93 PMID: 19815776
  2. Looping probabilities in model interphase chromosomes.
    Biophys J. 2010 Jun 2;98(11):2410-9 PMID: 20513384
  3. Global chromatin architecture reflects pluripotency and lineage commitment in the early mouse embryo.
    PLoS One. 2010 May 07;5(5):e10531 PMID: 20479880
  4. Integrative epigenomic mapping defines four main chromatin states in Arabidopsis.
    EMBO J. 2011 May 18;30(10):1928-38 PMID: 21487388
  5. High-throughput chromatin motion tracking in living yeast reveals the flexibility of the fiber throughout the genome.
    Genome Res. 2013 Nov;23(11):1829-38 PMID: 24077391
  6. The dynamic architecture of Hox gene clusters.
    Science. 2011 Oct 14;334(6053):222-5 PMID: 21998387
  7. Gene density, transcription, and insulators contribute to the partition of the Drosophila genome into physical domains.
    Mol Cell. 2012 Nov 9;48(3):471-84 PMID: 23041285
  8. A predictive computational model of the dynamic 3D interphase yeast nucleus.
    Curr Biol. 2012 Oct 23;22(20):1881-90 PMID: 22940469
  9. Independence of repressive histone marks and chromatin compaction during senescent heterochromatic layer formation.
    Mol Cell. 2012 Jul 27;47(2):203-14 PMID: 22795131
  10. Cohesin-mediated interactions organize chromosomal domain architecture.
    EMBO J. 2013 Dec 11;32(24):3119-29 PMID: 24185899
  11. Mapping and analysis of chromatin state dynamics in nine human cell types.
    Nature. 2011 May 5;473(7345):43-9 PMID: 21441907
  12. Integrative analysis of the Caenorhabditis elegans genome by the modENCODE project.
    Science. 2010 Dec 24;330(6012):1775-87 PMID: 21177976
  13. Systematic protein location mapping reveals five principal chromatin types in Drosophila cells.
    Cell. 2010 Oct 15;143(2):212-24 PMID: 20888037
  14. Simulation of stochastic network dynamics via entropic matching.
    Phys Rev E Stat Nonlin Soft Matter Phys. 2013 Feb;87(2):022719 PMID: 23496560
  15. Molecular dynamics simulation study of nonconcatenated ring polymers in a melt. I. Statics.
    J Chem Phys. 2011 May 28;134(20):204904 PMID: 21639474
  16. Structure and dynamics of interphase chromosomes.
    PLoS Comput Biol. 2008 Aug 22;4(8):e1000153 PMID: 18725929
  17. Enhancer function: new insights into the regulation of tissue-specific gene expression.
    Nat Rev Genet. 2011 Apr;12(4):283-93 PMID: 21358745
  18. Bifurcation in epigenetics: implications in development, proliferation, and diseases.
    Phys Rev E Stat Nonlin Soft Matter Phys. 2014 Jan;89(1):010701 PMID: 24580158
  19. LBR and lamin A/C sequentially tether peripheral heterochromatin and inversely regulate differentiation.
    Cell. 2013 Jan 31;152(3):584-98 PMID: 23374351
  20. Diffusion-driven looping provides a consistent framework for chromatin organization.
    PLoS One. 2010 Aug 25;5(8):e12218 PMID: 20811620
  21. GC- and AT-rich chromatin domains differ in conformation and histone modification status and are differentially modulated by Rpd3p.
    Genome Biol. 2007;8(6):R116 PMID: 17577398
  22. Colocalization of coregulated genes: a steered molecular dynamics study of human chromosome 19.
    PLoS Comput Biol. 2013;9(3):e1003019 PMID: 23555238
  23. Mediator and cohesin connect gene expression and chromatin architecture.
    Nature. 2010 Sep 23;467(7314):430-5 PMID: 20720539
  24. Expression-dependent folding of interphase chromatin.
    PLoS One. 2012;7(5):e37525 PMID: 22649534
  25. Ring polymers in the melt state: the physics of crumpling.
    Phys Rev Lett. 2014 Mar 21;112(11):118302 PMID: 24702424
  26. How chromatin looping and nuclear envelope attachment affect genome organization in eukaryotic cell nuclei.
    Int Rev Cell Mol Biol. 2014;307:351-81 PMID: 24380599
  27. Constitutive nuclear lamina-genome interactions are highly conserved and associated with A/T-rich sequence.
    Genome Res. 2013 Feb;23(2):270-80 PMID: 23124521
  28. Complexity of chromatin folding is captured by the strings and binders switch model.
    Proc Natl Acad Sci U S A. 2012 Oct 2;109(40):16173-8 PMID: 22988072
  29. A conformational switch in HP1 releases auto-inhibition to drive heterochromatin assembly.
    Nature. 2013 Apr 18;496(7445):377-81 PMID: 23485968
  30. Chromatin architectures and Hox gene collinearity.
    Curr Top Dev Biol. 2013;104:113-48 PMID: 23587240
  31. A bridging model for persistence of a polycomb group protein complex through DNA replication in vitro.
    Mol Cell. 2012 Jun 29;46(6):784-96 PMID: 22749399
  32. Architectural protein subclasses shape 3D organization of genomes during lineage commitment.
    Cell. 2013 Jun 6;153(6):1281-95 PMID: 23706625
  33. Nuclear pore proteins nup153 and megator define transcriptionally active regions in the Drosophila genome.
    PLoS Genet. 2010 Feb 12;6(2):e1000846 PMID: 20174442
  34. Chromatin compaction by a polycomb group protein complex.
    Science. 2004 Nov 26;306(5701):1574-7 PMID: 15567868
  35. Comprehensive analysis of the chromatin landscape in Drosophila melanogaster.
    Nature. 2011 Mar 24;471(7339):480-5 PMID: 21179089
  36. Theoretical analysis of the role of chromatin interactions in long-range action of enhancers and insulators.
    Proc Natl Acad Sci U S A. 2011 Dec 13;108(50):19919-24 PMID: 22123989
  37. Recovering ensembles of chromatin conformations from contact probabilities.
    Nucleic Acids Res. 2013 Jan 7;41(1):63-75 PMID: 23143266
  38. Master transcription factors and mediator establish super-enhancers at key cell identity genes.
    Cell. 2013 Apr 11;153(2):307-19 PMID: 23582322
  39. Chromosome positioning from activity-based segregation.
    Nucleic Acids Res. 2014 Apr;42(7):4145-59 PMID: 24459132
  40. Nuclear organization of the genome and the potential for gene regulation.
    Nature. 2007 May 24;447(7143):413-7 PMID: 17522674
  41. Chromatin: constructing the big picture.
    EMBO J. 2011 May 18;30(10):1885-95 PMID: 21527910
  42. A view of the chromatin landscape.
    Micron. 2012 Feb;43(2-3):150-8 PMID: 22172345
  43. Single-cell Hi-C reveals cell-to-cell variability in chromosome structure.
    Nature. 2013 Oct 3;502(7469):59-64 PMID: 24067610
  44. Topological domains in mammalian genomes identified by analysis of chromatin interactions.
    Nature. 2012 Apr 11;485(7398):376-80 PMID: 22495300
  45. SAM domain polymerization links subnuclear clustering of PRC1 to gene silencing.
    Dev Cell. 2013 Sep 30;26(6):565-77 PMID: 24091011
  46. Organization of the mitotic chromosome.
    Science. 2013 Nov 22;342(6161):948-53 PMID: 24200812
  47. Genome-wide chromatin state transitions associated with developmental and environmental cues.
    Cell. 2013 Jan 31;152(3):642-54 PMID: 23333102
  48. Distinct epigenomic landscapes of pluripotent and lineage-committed human cells.
    Cell Stem Cell. 2010 May 7;6(5):479-91 PMID: 20452322
  49. Three-dimensional folding and functional organization principles of the Drosophila genome.
    Cell. 2012 Feb 3;148(3):458-72 PMID: 22265598
Article Info
Journal
Nucleic acids research
Abbr.
Nucleic Acids Res
ISSN
1362-4962
Published
2014-09-00
Epub
2014-00-04
Pages
9553-61
Language
English
Region
England
NLM ID
0411011
PMCID
PMC4150797
Subset
IM
Grants
European Research Council · 232947 · International
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com