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PMID: 21047799 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

The effects of histone H4 tail acetylations on cation-induced chromatin folding and self-association.

Nucleic acids research ·Vol. 39 ·No. 5 ·2011-03-00 ·Pages 1680-91

Allahverdi A, Yang R, Korolev N, Fan Y, Davey CA, Liu CF, Nordenskiöld L

Abstract

Understanding the molecular mechanisms behind regulation of chromatin folding through covalent modifications of the histone N-terminal tails is hampered by a lack of accessible chromatin containing precisely modified histones. We study the internal folding and intermolecular self-association of a chromatin system consisting of saturated 12-mer nucleosome arrays containing various combinations of completely acetylated lysines at positions 5, 8, 12 and 16 of histone H4, induced by the cations Na(+), K(+), Mg(2+), Ca(2+), cobalt-hexammine(3+), spermidine(3+) and spermine(4+). Histones were prepared using a novel semi-synthetic approach with native chemical ligation. Acetylation of H4-K16, but not its glutamine mutation, drastically reduces cation-induced folding of the array. Neither acetylations nor mutations of all the sites K5, K8 and K12 can induce a similar degree of array unfolding. The ubiquitous K(+), (as well as Rb(+) and Cs(+)) showed an unfolding effect on unmodified arrays almost similar to that of H4-K16 acetylation. We propose that K(+) (and Rb(+)/Cs(+)) binding to a site on the H2B histone (R96-L99) disrupts H4K16 ε-amino group binding to this specific site, thereby deranging H4 tail-mediated nucleosome-nucleosome stacking and that a similar mechanism operates in the case of H4-K16 acetylation. Inter-array self-association follows electrostatic behavior and is largely insensitive to the position or nature of the H4 tail charge modification.

MeSH Terms
Acetylation Cations/chemistry Chromatin/chemistry Computer Simulation Histones/chemistry,genetics,metabolism Lysine/metabolism Mutation Nucleic Acid Conformation Nucleosomes/chemistry Potassium/chemistry Protein Conformation Static Electricity
Chemicals
Cations Chromatin Histones Nucleosomes Lysine Potassium
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Allahverdi Abdollah
School of Biological Sciences, Nanyang Technological University, 60 Nanyang Drive, 637551 Singapore.
Yang Renliang
Korolev Nikolay
Fan Yanping
Davey Curt A
Liu Chuan-Fa
Nordenskiöld Lars
References (58)
58 references, click to expand
  1. Histone H4 lysine 16 acetylation breaks the genome's silence.
    Genome Biol. 2006;7(5):217 PMID: 16689998
  2. 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
  3. Using soft X-rays for a detailed picture of divalent metal binding in the nucleosome.
    J Mol Biol. 2010 May 21;398(5):633-40 PMID: 20350553
  4. Condensation of chromatin: role of multivalent cations.
    Biochemistry. 1986 Apr 8;25(7):1495-503 PMID: 3707889
  5. A native peptide ligation strategy for deciphering nucleosomal histone modifications.
    J Biol Chem. 2003 May 2;278(18):15744-8 PMID: 12595522
  6. 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
  7. Synthesis of proteins by native chemical ligation.
    Science. 1994 Nov 4;266(5186):776-9 PMID: 7973629
  8. 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
  9. Influence of alkali cation nature on structural transitions and reactions of biopolyelectrolytes.
    Biomacromolecules. 2000 Winter;1(4):648-55 PMID: 11710195
  10. Insights from atomic-resolution X-ray structures of chemically synthesized HIV-1 protease in complex with inhibitors.
    J Mol Biol. 2007 Oct 26;373(3):573-86 PMID: 17869270
  11. Higher-order structures of chromatin: the elusive 30 nm fiber.
    Cell. 2007 Feb 23;128(4):651-4 PMID: 17320503
  12. Conformational dynamics of the chromatin fiber in solution: determinants, mechanisms, and functions.
    Annu Rev Biophys Biomol Struct. 2002;31:361-92 PMID: 11988475
  13. Histones and histone modifications.
    Curr Biol. 2004 Jul 27;14(14):R546-51 PMID: 15268870
  14. Chemical approaches for studying histone modifications.
    J Biol Chem. 2010 Apr 9;285(15):11045-50 PMID: 20147749
  15. 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
  16. 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
  17. Molecular biology. Chromatin higher order folding--wrapping up transcription.
    Science. 2002 Sep 13;297(5588):1824-7 PMID: 12228709
  18. Creating designer histones by native chemical ligation.
    Methods Enzymol. 2004;375:62-76 PMID: 14870659
  19. 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
  20. Chromatin higher-order structure and dynamics.
    Cold Spring Harb Perspect Biol. 2010 May;2(5):a000596 PMID: 20452954
  21. The nucleosome surface regulates chromatin compaction and couples it with transcriptional repression.
    Nat Struct Mol Biol. 2007 Nov;14(11):1070-6 PMID: 17965724
  22. UCSF Chimera--a visualization system for exploratory research and analysis.
    J Comput Chem. 2004 Oct;25(13):1605-12 PMID: 15264254
  23. Electrostatic origin of salt-induced nucleosome array compaction.
    Biophys J. 2010 Sep 22;99(6):1896-905 PMID: 20858435
  24. DNA-dependent divalent cation binding in the nucleosome core particle.
    Proc Natl Acad Sci U S A. 2002 Aug 20;99(17):11169-74 PMID: 12169666
  25. Asymmetries in the nucleosome core particle at 2.5 A resolution.
    Acta Crystallogr D Biol Crystallogr. 2000 Dec;56(Pt 12):1513-34 PMID: 11092917
  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. Single-molecule force spectroscopy reveals a highly compliant helical folding for the 30-nm chromatin fiber.
    Nat Struct Mol Biol. 2009 May;16(5):534-40 PMID: 19377481
  29. Cation-induced polyelectrolyte-polyelectrolyte attraction in solutions of DNA and nucleosome core particles.
    Adv Colloid Interface Sci. 2010 Jul 12;158(1-2):32-47 PMID: 19758583
  30. A charged and contoured surface on the nucleosome regulates chromatin compaction.
    Nat Struct Mol Biol. 2007 Nov;14(11):1105-7 PMID: 17965723
  31. 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
  32. A method for genetically installing site-specific acetylation in recombinant histones defines the effects of H3 K56 acetylation.
    Mol Cell. 2009 Oct 9;36(1):153-63 PMID: 19818718
  33. 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
  34. Expression and purification of recombinant histones and nucleosome reconstitution.
    Methods Mol Biol. 1999;119:1-16 PMID: 10804500
  35. Electrostatic mechanism of chromatin folding.
    J Mol Biol. 1990 Feb 20;211(4):883-96 PMID: 2313700
  36. 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
  37. Structural insight into the sequence dependence of nucleosome positioning.
    Structure. 2010 Mar 14;18(4):528-36 PMID: 20399189
  38. Cracking the enigmatic linker histone code.
    J Biochem. 2008 Mar;143(3):287-93 PMID: 18234717
  39. Chromatin structure: does the 30-nm fibre exist in vivo?
    Curr Opin Cell Biol. 2010 Jun;22(3):291-7 PMID: 20346642
  40. The site-specific installation of methyl-lysine analogs into recombinant histones.
    Cell. 2007 Mar 9;128(5):1003-12 PMID: 17350582
  41. Chromatin disruption and modification.
    Nucleic Acids Res. 1999 Feb 1;27(3):711-20 PMID: 9889264
  42. 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
  43. Bilayers of nucleosome core particles.
    Biophys J. 2001 Oct;81(4):2414-21 PMID: 11566811
  44. DNA condensation by multivalent cations.
    Biopolymers. 1997;44(3):269-82 PMID: 9591479
  45. Nucleosome arrays reveal the two-start organization of the chromatin fiber.
    Science. 2004 Nov 26;306(5701):1571-3 PMID: 15567867
  46. 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
  47. 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
  48. Chromatin fiber folding: requirement for the histone H4 N-terminal tail.
    J Mol Biol. 2003 Mar 14;327(1):85-96 PMID: 12614610
  49. X-ray structure of a tetranucleosome and its implications for the chromatin fibre.
    Nature. 2005 Jul 7;436(7047):138-41 PMID: 16001076
  50. Crystal structure of the nucleosome core particle at 2.8 A resolution.
    Nature. 1997 Sep 18;389(6648):251-60 PMID: 9305837
  51. Perturbations in nucleosome structure from heavy metal association.
    Nucleic Acids Res. 2010 Oct;38(18):6301-11 PMID: 20494975
  52. Histone H4-K16 acetylation controls chromatin structure and protein interactions.
    Science. 2006 Feb 10;311(5762):844-7 PMID: 16469925
  53. What do linker histones do in chromatin?
    Bioessays. 1997 Mar;19(3):249-55 PMID: 9080775
  54. Structures and interactions of the core histone tail domains.
    Biopolymers. 2003 Apr;68(4):539-46 PMID: 12666178
  55. MOF and histone H4 acetylation at lysine 16 are critical for DNA damage response and double-strand break repair.
    Mol Cell Biol. 2010 Jul;30(14):3582-95 PMID: 20479123
  56. Preparation of nucleosome core particle from recombinant histones.
    Methods Enzymol. 1999;304:3-19 PMID: 10372352
  57. The nucleosomal surface as a docking station for Kaposi's sarcoma herpesvirus LANA.
    Science. 2006 Feb 10;311(5762):856-61 PMID: 16469929
  58. Peptide synthesis using unprotected peptides through orthogonal coupling methods.
    Proc Natl Acad Sci U S A. 1995 Dec 19;92(26):12485-9 PMID: 8618926
Article Info
Journal
Nucleic acids research
Abbr.
Nucleic Acids Res
ISSN
1362-4962
Published
2011-03-00
Epub
2010-00-02
Pages
1680-91
Language
English
Region
England
NLM ID
0411011
PMCID
PMC3061077
Subset
IM
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