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PMID: 20858435 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Electrostatic origin of salt-induced nucleosome array compaction.

Biophysical journal ·Vol. 99 ·No. 6 ·2010-09-22 ·Pages 1896-905

Korolev N, Allahverdi A, Yang Y, Fan Y, Lyubartsev AP, Nordenskiöld L

Abstract

The physical mechanism of the folding and unfolding of chromatin is fundamentally related to transcription but is incompletely characterized and not fully understood. We experimentally and theoretically studied chromatin compaction by investigating the salt-mediated folding of an array made of 12 positioning nucleosomes with 177 bp repeat length. Sedimentation velocity measurements were performed to monitor the folding provoked by addition of cations Na(+), K(+), Mg(2+), Ca(2+), spermidine(3+), Co(NH(3))(6)(3+), and spermine(4+). We found typical polyelectrolyte behavior, with the critical concentration of cation needed to bring about maximal folding covering a range of almost five orders of magnitude (from 2 μM for spermine(4+) to 100 mM for Na(+)). A coarse-grained model of the nucleosome array based on a continuum dielectric description and including the explicit presence of mobile ions and charged flexible histone tails was used in computer simulations to investigate the cation-mediated compaction. The results of the simulations with explicit ions are in general agreement with the experimental data, whereas simple Debye-Hückel models are intrinsically incapable of describing chromatin array folding by multivalent cations. We conclude that the theoretical description of the salt-induced chromatin folding must incorporate explicit mobile ions that include ion correlation and ion competition effects.

MeSH Terms
Animals Computer Simulation Hydrogen Bonding/drug effects Molecular Dynamics Simulation Nucleic Acid Conformation/drug effects Nucleosomes/chemistry,drug effects Protein Conformation/drug effects Protein Folding/drug effects Salts/pharmacology Static Electricity Ultracentrifugation Water/chemistry Xenopus laevis
Chemicals
Nucleosomes Salts Water
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Korolev Nikolay
School of Biological Sciences, Nanyang Technological University, Singapore.
Allahverdi Abdollah
Yang Ye
Fan Yanping
Lyubartsev Alexander P
Nordenskiöld Lars
References (38)
38 references, click to expand
  1. What determines the folding of the chromatin fiber?
    Proc Natl Acad Sci U S A. 1996 Oct 1;93(20):10548-55 PMID: 8855215
  2. 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
  3. Na+ shows a markedly higher potential than K+ in DNA compaction in a crowded environment.
    Biophys J. 2005 Jun;88(6):4118-23 PMID: 15778438
  4. Intra- and inter-nucleosomal protein-DNA interactions of the core histone tail domains in a model system.
    J Biol Chem. 2003 Jun 27;278(26):24217-24 PMID: 12697747
  5. The core histone N-terminal tail domains function independently and additively during salt-dependent oligomerization of nucleosomal arrays.
    J Biol Chem. 2005 Oct 7;280(40):33701-6 PMID: 16033758
  6. 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
  7. The H4 tail domain participates in intra- and internucleosome interactions with protein and DNA during folding and oligomerization of nucleosome arrays.
    Mol Cell Biol. 2009 Jan;29(2):538-46 PMID: 19001093
  8. 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
  9. New DNA sequence rules for high affinity binding to histone octamer and sequence-directed nucleosome positioning.
    J Mol Biol. 1998 Feb 13;276(1):19-42 PMID: 9514715
  10. A universal description for the experimental behavior of salt-(in)dependent oligocation-induced DNA condensation.
    Nucleic Acids Res. 2009 Nov;37(21):7137-50 PMID: 19773427
  11. Histone H4-K16 acetylation controls chromatin structure and protein interactions.
    Science. 2006 Feb 10;311(5762):844-7 PMID: 16469925
  12. 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
  13. Structures and interactions of the core histone tail domains.
    Biopolymers. 2003 Apr;68(4):539-46 PMID: 12666178
  14. Preparation of nucleosome core particle from recombinant histones.
    Methods Enzymol. 1999;304:3-19 PMID: 10372352
  15. Conformational dynamics of the chromatin fiber in solution: determinants, mechanisms, and functions.
    Annu Rev Biophys Biomol Struct. 2002;31:361-92 PMID: 11988475
  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. Physicochemical studies of the folding of the 100 A nucleosome filament into the 300 A filament. Cation dependence.
    J Mol Biol. 1986 Aug 5;190(3):411-24 PMID: 3783706
  18. Molecular biology. Chromatin higher order folding--wrapping up transcription.
    Science. 2002 Sep 13;297(5588):1824-7 PMID: 12228709
  19. Competitive substitution of hexammine cobalt(III) for Na+ and K+ ions in oriented DNA fibers.
    Biopolymers. 2001 Mar;58(3):268-78 PMID: 11169387
  20. Computer modeling reveals that modifications of the histone tail charges define salt-dependent interaction of the nucleosome core particles.
    Biophys J. 2009 Mar 18;96(6):2082-94 PMID: 19289035
  21. Electrostatic screening and charge correlation effects in micellization of ionic surfactants.
    J Phys Chem B. 2009 May 7;113(18):6314-20 PMID: 19361177
  22. Evidence for heteromorphic chromatin fibers from analysis of nucleosome interactions.
    Proc Natl Acad Sci U S A. 2009 Aug 11;106(32):13317-22 PMID: 19651606
  23. Computational modeling of the chromatin fiber.
    Semin Cell Dev Biol. 2007 Oct;18(5):659-67 PMID: 17936653
  24. 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
  25. How are small ions involved in the compaction of DNA molecules?
    Colloids Surf B Biointerfaces. 2007 Apr 15;56(1-2):126-33 PMID: 17254757
  26. A method for the in vitro reconstitution of a defined "30 nm" chromatin fibre containing stoichiometric amounts of the linker histone.
    J Mol Biol. 2005 Feb 4;345(5):957-68 PMID: 15644197
  27. A tale of tails: how histone tails mediate chromatin compaction in different salt and linker histone environments.
    J Phys Chem A. 2009 Apr 23;113(16):4045-59 PMID: 19298048
  28. Nucleosome geometry and internucleosomal interactions control the chromatin fiber conformation.
    Biophys J. 2008 Oct;95(8):3692-705 PMID: 18212006
  29. Functional interaction between GCN5 and polyamines: a new role for core histone acetylation.
    EMBO J. 1999 Oct 15;18(20):5622-33 PMID: 10523306
  30. 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
  31. Flexible histone tails in a new mesoscopic oligonucleosome model.
    Biophys J. 2006 Jul 1;91(1):133-50 PMID: 16603492
  32. 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
  33. DNA condensation by multivalent cations.
    Biopolymers. 1997;44(3):269-82 PMID: 9591479
  34. Chromatin fiber folding: requirement for the histone H4 N-terminal tail.
    J Mol Biol. 2003 Mar 14;327(1):85-96 PMID: 12614610
  35. X-ray structure of a tetranucleosome and its implications for the chromatin fibre.
    Nature. 2005 Jul 7;436(7047):138-41 PMID: 16001076
  36. Crystal structure of the nucleosome core particle at 2.8 A resolution.
    Nature. 1997 Sep 18;389(6648):251-60 PMID: 9305837
  37. Computer simulation of the 30-nanometer chromatin fiber.
    Biophys J. 2002 Jun;82(6):2847-59 PMID: 12023209
  38. Molecular dynamics simulation of multivalent-ion mediated attraction between DNA molecules.
    Phys Rev Lett. 2008 Mar 21;100(11):118301 PMID: 18517834
Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
1542-0086
Published
2010-09-22
Pages
1896-905
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC2941033
Subset
IM
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