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PMID: 19289035 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Computer modeling reveals that modifications of the histone tail charges define salt-dependent interaction of the nucleosome core particles.

Biophysical journal ·Vol. 96 ·No. 6 ·2009-03-18 ·Pages 2082-94

Yang Y, Lyubartsev AP, Korolev N, Nordenskiöld L

Abstract

Coarse-grained Langevin molecular dynamics computer simulations were conducted for systems that mimic solutions of nucleosome core particles (NCPs). The NCP was modeled as a negatively charged spherical particle representing the complex of DNA and the globular part of the histones combined with attached strings of connected charged beads modeling the histone tails. The size, charge, and distribution of the tails relative to the core were built to match real NCPs. Three models of NCPs were constructed to represent different extents of covalent modification on the histone tails: (nonmodified) recombinant (rNCP), acetylated (aNCP), and acetylated and phosphorylated (paNCP). The simulation cell contained 10 NCPs in a dielectric continuum with explicit mobile counterions and added salt. The NCP-NCP interaction is decisively dependent on the modification state of the histone tails and on salt conditions. Increasing the monovalent salt concentration (KCl) from salt-free to physiological concentration leads to NCP aggregation in solution for rNCP, whereas NCP associates are observed only occasionally in the system of aNCPs. In the presence of divalent salt (Mg(2+)), rNCPs form dense stable aggregates, whereas aNCPs form aggregates less frequently. Aggregates are formed via histone-tail bridging and accumulation of counterions in the regions of NCP-NCP contacts. The paNCPs do not show NCP-NCP interaction upon addition of KCl or in the presence of Mg(2+). Simulations for systems with a gradual substitution of K(+) for Mg(2+), to mimic the Mg(2+) titration of an NCP solution, were performed. The rNCP system showed stronger aggregation that occurred at lower concentrations of added Mg(2+), compared to the aNCP system. Additional molecular dynamics simulations performed with a single NCP in the simulation cell showed that detachment of the tails from the NCP core was modest under a wide range of salt concentrations. This implies that salt-induced tail dissociation of the histone tails from the globular NCP is not in itself a major factor in NCP-NCP aggregation. The approximation of coarse-graining, with respect to the description of the NCP as a sphere with uniform charge distribution, was tested in control simulations. A more detailed description of the NCP did not change the main features of the results. Overall, the results of this work are in agreement with experimental data reported for NCP solutions and for chromatin arrays.

MeSH Terms
Acetylation Computer Simulation DNA/chemistry Histones/chemistry Magnesium/chemistry Models, Molecular Nucleosomes/chemistry Phosphorylation Potassium Chloride/chemistry Salts/chemistry Titrimetry
Chemicals
Histones Nucleosomes Salts Potassium Chloride DNA Magnesium
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Yang Ye
School of Biological Sciences, Nanyang Technological University, Singapore.
Lyubartsev Alexander P
Korolev Nikolay
Nordenskiöld Lars
References (65)
65 references, click to expand
  1. Histone hyperacetylation. Its effects on nucleosome core particle transitions.
    Biophys J. 1988 Apr;53(4):477-87 PMID: 3132988
  2. Histone acetylation and control of gene expression.
    J Cell Sci. 1991 May;99 ( Pt 1):13-20 PMID: 1757496
  3. Salt-induced conformation and interaction changes of nucleosome core particles.
    Biophys J. 2002 Jan;82(1 Pt 1):345-56 PMID: 11751321
  4. Activation of chromatin by acetylation of histone side chains.
    Proc Natl Acad Sci U S A. 1976 Nov;73(11):3937-41 PMID: 1069278
  5. On the biological role of histone acetylation.
    Biochem J. 1990 Jan 1;265(1):23-38 PMID: 2405837
  6. A charged and contoured surface on the nucleosome regulates chromatin compaction.
    Nat Struct Mol Biol. 2007 Nov;14(11):1105-7 PMID: 17965723
  7. Effects of histone acetylation on the solubility and folding of the chromatin fiber.
    J Biol Chem. 2001 Apr 20;276(16):12764-8 PMID: 11279082
  8. Electrostatic mechanism of chromatin folding.
    J Mol Biol. 1990 Feb 20;211(4):883-96 PMID: 2313700
  9. Tail-induced attraction between nucleosome core particles.
    Phys Rev E Stat Nonlin Soft Matter Phys. 2006 Sep;74(3 Pt 1):031919 PMID: 17025679
  10. X-ray diffraction characterization of the dense phases formed by nucleosome core particles.
    Biophys J. 2003 Apr;84(4):2570-84 PMID: 12668465
  11. Molecular dynamics simulation of multivalent-ion mediated attraction between DNA molecules.
    Phys Rev Lett. 2008 Mar 21;100(11):118301 PMID: 18517834
  12. Histone H4-K16 acetylation controls chromatin structure and protein interactions.
    Science. 2006 Feb 10;311(5762):844-7 PMID: 16469925
  13. The nucleosomal surface as a docking station for Kaposi's sarcoma herpesvirus LANA.
    Science. 2006 Feb 10;311(5762):856-61 PMID: 16469929
  14. Conformational dynamics of the chromatin fiber in solution: determinants, mechanisms, and functions.
    Annu Rev Biophys Biomol Struct. 2002;31:361-92 PMID: 11988475
  15. Histones and histone modifications.
    Curr Biol. 2004 Jul 27;14(14):R546-51 PMID: 15268870
  16. Acetylation mimics within individual core histone tail domains indicate distinct roles in regulating the stability of higher-order chromatin structure.
    Mol Cell Biol. 2008 Jan;28(1):227-36 PMID: 17938198
  17. Acetylation and chromosomal functions.
    Curr Opin Cell Biol. 2000 Jun;12(3):326-33 PMID: 10801466
  18. Molecular biology. Chromatin higher order folding--wrapping up transcription.
    Science. 2002 Sep 13;297(5588):1824-7 PMID: 12228709
  19. What determines the folding of the chromatin fiber?
    Proc Natl Acad Sci U S A. 1996 Oct 1;93(20):10548-55 PMID: 8855215
  20. The histone tails of the nucleosome.
    Curr Opin Genet Dev. 1998 Apr;8(2):140-6 PMID: 9610403
  21. Counting nucleosomes in living cells with a combination of fluorescence correlation spectroscopy and confocal imaging.
    J Mol Biol. 2003 Nov 21;334(2):229-40 PMID: 14607115
  22. Site-specific binding affinities within the H2B tail domain indicate specific effects of lysine acetylation.
    J Biol Chem. 2007 Nov 9;282(45):32867-76 PMID: 17711854
  23. The nucleosome surface regulates chromatin compaction and couples it with transcriptional repression.
    Nat Struct Mol Biol. 2007 Nov;14(11):1070-6 PMID: 17965724
  24. Role of histone tails in the conformation and interactions of nucleosome core particles.
    Biochemistry. 2004 Apr 27;43(16):4773-80 PMID: 15096046
  25. Covalent modifications of histones: expression from chromatin templates.
    Curr Opin Genet Dev. 1998 Apr;8(2):173-8 PMID: 9610407
  26. Role of histone tails in chromatin folding revealed by a mesoscopic oligonucleosome model.
    Proc Natl Acad Sci U S A. 2006 Oct 31;103(44):16236-41 PMID: 17060627
  27. Signaling to chromatin through histone modifications.
    Cell. 2000 Oct 13;103(2):263-71 PMID: 11057899
  28. Disruption of higher-order folding by core histone acetylation dramatically enhances transcription of nucleosomal arrays by RNA polymerase III.
    Mol Cell Biol. 1998 Aug;18(8):4629-38 PMID: 9671473
  29. Structure and phase diagram of nucleosome core particles aggregated by multivalent cations.
    Biophys J. 2007 Nov 15;93(10):3652-63 PMID: 17693471
  30. Salt-dependent intra- and internucleosomal interactions of the H3 tail domain in a model oligonucleosomal array.
    J Biol Chem. 2005 Sep 30;280(39):33552-7 PMID: 16079127
  31. Histone hyperacetylation: its effects on nucleosome conformation and stability.
    Biochemistry. 1986 Mar 25;25(6):1421-8 PMID: 3964683
  32. Efficient global biopolymer sampling with end-transfer configurational bias Monte Carlo.
    J Chem Phys. 2007 Jan 28;126(4):044107 PMID: 17286462
  33. Structure and function of the core histone N-termini: more than meets the eye.
    Biochemistry. 1998 Dec 22;37(51):17637-41 PMID: 9922128
  34. Mapping global histone acetylation patterns to gene expression.
    Cell. 2004 Jun 11;117(6):721-33 PMID: 15186774
  35. Phase diagram of nucleosome core particles.
    J Mol Biol. 2003 Nov 7;333(5):907-16 PMID: 14583189
  36. Aggregation of nucleosomes by divalent cations.
    Biophys J. 2001 Aug;81(2):1127-32 PMID: 11463653
  37. Functional interaction between GCN5 and polyamines: a new role for core histone acetylation.
    EMBO J. 1999 Oct 15;18(20):5622-33 PMID: 10523306
  38. H3 and H4 histone tails play a central role in the interactions of recombinant NCPs.
    Biophys J. 2007 Apr 1;92(7):2633-45 PMID: 17237203
  39. Modulation of chromatin folding by histone acetylation.
    J Biol Chem. 1995 Jul 28;270(30):17923-8 PMID: 7629098
  40. Histone acetylation and an epigenetic code.
    Bioessays. 2000 Sep;22(9):836-45 PMID: 10944586
  41. Histone acetylation increases the solubility of chromatin and occurs sequentially over most of the chromatin. A novel model for the biological role of histone acetylation.
    J Biol Chem. 1982 Jul 10;257(13):7336-47 PMID: 7085629
  42. Nucleosome and chromatin fiber dynamics.
    Curr Opin Struct Biol. 2005 Apr;15(2):188-96 PMID: 15837178
  43. Differential dissociation of histone tails from core chromatin.
    Biochemistry. 1984 Nov 6;23(23):5622-8 PMID: 6509040
  44. Nucleosome repeat length and linker histone stoichiometry determine chromatin fiber structure.
    Proc Natl Acad Sci U S A. 2008 Jul 1;105(26):8872-7 PMID: 18583476
  45. The H3 tail domain participates in multiple interactions during folding and self-association of nucleosome arrays.
    Mol Cell Biol. 2007 Mar;27(6):2084-91 PMID: 17242202
  46. Higher-order structure of chromatin and chromosomes.
    Curr Opin Genet Dev. 2001 Apr;11(2):130-5 PMID: 11250134
  47. The nonessential H2A N-terminal tail can function as an essential charge patch on the H2A.Z variant N-terminal tail.
    Mol Cell Biol. 2003 Apr;23(8):2778-89 PMID: 12665578
  48. Role of histone modification in chromatin dynamics.
    J Biochem. 2007 May;141(5):609-14 PMID: 17405795
  49. Partial purification of the template-active fraction of chromatin: a preliminary report.
    Proc Natl Acad Sci U S A. 1974 Jun;71(6):2193-7 PMID: 4526205
  50. Analytical ultracentrifugation and the characterization of chromatin structure.
    Biophys Chem. 2000 Aug 30;86(2-3):141-53 PMID: 11026679
  51. Chromatin disruption and modification.
    Nucleic Acids Res. 1999 Feb 1;27(3):711-20 PMID: 9889264
  52. 30 nm chromatin fibre decompaction requires both H4-K16 acetylation and linker histone eviction.
    J Mol Biol. 2008 Sep 12;381(4):816-25 PMID: 18653199
  53. Flexible histone tails in a new mesoscopic oligonucleosome model.
    Biophys J. 2006 Jul 1;91(1):133-50 PMID: 16603492
  54. Computer modeling demonstrates that electrostatic attraction of nucleosomal DNA is mediated by histone tails.
    Biophys J. 2006 Jun 15;90(12):4305-16 PMID: 16565063
  55. H4 histone tail mediated DNA-DNA interaction and effects on DNA structure, flexibility, and counterion binding: a molecular dynamics study.
    Biopolymers. 2007 Aug 5-15;86(5-6):409-23 PMID: 17471473
  56. Histone accessibility determined by lysine-specific acetylation in chicken erythrocyte nuclei.
    Eur J Biochem. 1988 Feb 15;172(1):135-45 PMID: 3126068
  57. Solvent mediated interactions in the structure of the nucleosome core particle at 1.9 a resolution.
    J Mol Biol. 2002 Jun 21;319(5):1097-113 PMID: 12079350
  58. EM measurements define the dimensions of the "30-nm" chromatin fiber: evidence for a compact, interdigitated structure.
    Proc Natl Acad Sci U S A. 2006 Apr 25;103(17):6506-11 PMID: 16617109
  59. Chromatin fiber folding: requirement for the histone H4 N-terminal tail.
    J Mol Biol. 2003 Mar 14;327(1):85-96 PMID: 12614610
  60. The effect of histone hyperacetylation on the nuclease sensitivity and the solubility of chromatin.
    J Biol Chem. 1981 Apr 10;256(7):3313-8 PMID: 6259161
  61. Crystal structure of the nucleosome core particle at 2.8 A resolution.
    Nature. 1997 Sep 18;389(6648):251-60 PMID: 9305837
  62. Coarse-grained force field for the nucleosome from self-consistent multiscaling.
    J Comput Chem. 2008 Jul 15;29(9):1429-39 PMID: 18270964
  63. Electrostatic mechanism of nucleosomal array folding revealed by computer simulation.
    Proc Natl Acad Sci U S A. 2005 Jun 7;102(23):8180-5 PMID: 15919827
  64. Long-range histone acetylation: biological significance, structural implications, and mechanisms.
    Biochem Cell Biol. 2006 Aug;84(4):518-27 PMID: 16936824
  65. Structures and interactions of the core histone tail domains.
    Biopolymers. 2003 Apr;68(4):539-46 PMID: 12666178
Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
1542-0086
Published
2009-03-18
Pages
2082-94
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC2717301
Subset
IM
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