Home LiteratureArticle Details
PMID: 22988066 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Regulation of the H4 tail binding and folding landscapes via Lys-16 acetylation.

Potoyan DA, Papoian GA

Abstract

Intrinsically disordered proteins (IDP) are a broad class of proteins with relatively flat energy landscapes showing a high level of functional promiscuity, which are frequently regulated through posttranslational covalent modifications. Histone tails, which are the terminal segments of the histone proteins, are prominent IDPs that are implicated in a variety of signaling processes, which control chromatin organization and dynamics. Although a large body of work has been done on elucidating the roles of posttranslational modifications in functional regulation of IDPs, molecular mechanisms behind the observed behaviors are not fully understood. Using extensive atomistic molecular dynamics simulations, we found in this work that H4 tail mono-acetylation at LYS-16, which is a key covalent modification, induces a significant reorganization of the tail's conformational landscape, inducing partial ordering and enhancing the propensity for alpha-helical segments. Furthermore, our calculations of the potentials of mean force between the H4 tail and a DNA fragment indicate that contrary to the expectations based on simple electrostatic reasoning, the Lys-16 mono-acetylated H4 tail binds to DNA stronger than the unacetylated protein. Based on these results, we propose a molecular mechanism for the way Lys-16 acetylation might lead to experimentally observed disruption of compact chromatin fibers.

MeSH Terms
Acetylation Histones/chemistry,metabolism Lysine/metabolism Molecular Dynamics Simulation Protein Binding Static Electricity
Chemicals
Histones Lysine
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Potoyan Davit A
Department of Chemistry and Biochemistry, Institute for Physical Science and Technology, Chemical Physics Program, University of Maryland, College Park, MD 20742, USA.
Papoian Garegin A
References (48)
48 references, click to expand
  1. A positive role for histone acetylation in transcription factor access to nucleosomal DNA.
    Cell. 1993 Jan 15;72(1):73-84 PMID: 8422685
  2. Chromatin higher-order structure and dynamics.
    Cold Spring Harb Perspect Biol. 2010 May;2(5):a000596 PMID: 20452954
  3. Deconstructing the native state: energy landscapes, function, and dynamics of globular proteins.
    J Phys Chem B. 2009 Jul 2;113(26):8800-12 PMID: 19453123
  4. The effects of histone H4 tail acetylations on cation-induced chromatin folding and self-association.
    Nucleic Acids Res. 2011 Mar;39(5):1680-91 PMID: 21047799
  5. The energy landscapes and motions of proteins.
    Science. 1991 Dec 13;254(5038):1598-603 PMID: 1749933
  6. Understanding protein non-folding.
    Biochim Biophys Acta. 2010 Jun;1804(6):1231-64 PMID: 20117254
  7. Acetylation increases the alpha-helical content of the histone tails of the nucleosome.
    J Biol Chem. 2000 Nov 10;275(45):35013-20 PMID: 10938086
  8. Energy landscape analyses of disordered histone tails reveal special organization of their conformational dynamics.
    J Am Chem Soc. 2011 May 18;133(19):7405-15 PMID: 21517079
  9. 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
  10. On the magnitude of the electrostatic contribution to ligand-DNA interactions.
    Proc Natl Acad Sci U S A. 1995 May 9;92(10):4691-5 PMID: 7753866
  11. Histone H4-K16 acetylation controls chromatin structure and protein interactions.
    Science. 2006 Feb 10;311(5762):844-7 PMID: 16469925
  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. Chromatin modifications and their function.
    Cell. 2007 Feb 23;128(4):693-705 PMID: 17320507
  14. Theory of protein folding.
    Curr Opin Struct Biol. 2004 Feb;14(1):70-5 PMID: 15102452
  15. Coupling of local folding to site-specific binding of proteins to DNA.
    Science. 1994 Feb 11;263(5148):777-84 PMID: 8303294
  16. The physics and bioinformatics of binding and folding-an energy landscape perspective.
    Biopolymers. 2003 Mar;68(3):333-49 PMID: 12601793
  17. Structural variability of nucleosomes detected by single-pair Förster resonance energy transfer: histone acetylation, sequence variation, and salt effects.
    J Phys Chem B. 2009 Mar 5;113(9):2604-13 PMID: 18950220
  18. Uncoupled binding and folding of immune signaling-related intrinsically disordered proteins.
    Prog Biophys Mol Biol. 2011 Sep;106(3):525-36 PMID: 21867726
  19. Refinement of the AMBER force field for nucleic acids: improving the description of alpha/gamma conformers.
    Biophys J. 2007 Jun 1;92(11):3817-29 PMID: 17351000
  20. Determination of alkali and halide monovalent ion parameters for use in explicitly solvated biomolecular simulations.
    J Phys Chem B. 2008 Jul 31;112(30):9020-41 PMID: 18593145
  21. Dynamics of folded proteins.
    Nature. 1977 Jun 16;267(5612):585-90 PMID: 301613
  22. Energy landscape theory, funnels, specificity, and optimal criterion of biomolecular binding.
    Phys Rev Lett. 2003 May 9;90(18):188101 PMID: 12786043
  23. Fuzziness: linking regulation to protein dynamics.
    Mol Biosyst. 2012 Jan;8(1):168-77 PMID: 21927770
  24. Effects of histone acetylation on the equilibrium accessibility of nucleosomal DNA target sites.
    J Mol Biol. 2001 Apr 6;307(4):977-85 PMID: 11286549
  25. A single-molecule characterization of p53 search on DNA.
    Proc Natl Acad Sci U S A. 2011 Jan 11;108(2):563-8 PMID: 21178072
  26. Functions of site-specific histone acetylation and deacetylation.
    Annu Rev Biochem. 2007;76:75-100 PMID: 17362198
  27. Effects of histone tail domains on the rate of transcriptional elongation through a nucleosome.
    Mol Cell Biol. 2000 Dec;20(23):8866-78 PMID: 11073987
  28. Regulation of chromatin by histone modifications.
    Cell Res. 2011 Mar;21(3):381-95 PMID: 21321607
  29. Preferential interaction of the core histone tail domains with linker DNA.
    Proc Natl Acad Sci U S A. 2001 Jun 5;98(12):6599-604 PMID: 11381129
  30. Speeding molecular recognition by using the folding funnel: the fly-casting mechanism.
    Proc Natl Acad Sci U S A. 2000 Aug 1;97(16):8868-73 PMID: 10908673
  31. The N tails of histones H3 and H4 adopt a highly structured conformation in the nucleosome.
    J Mol Biol. 1997 Oct 31;273(3):503-8 PMID: 9356240
  32. Acetylation of p53 augments its site-specific DNA binding both in vitro and in vivo.
    Proc Natl Acad Sci U S A. 2004 Feb 24;101(8):2259-64 PMID: 14982997
  33. Fly-casting in protein-DNA binding: frustration between protein folding and electrostatics facilitates target recognition.
    J Am Chem Soc. 2007 Jan 31;129(4):738-9 PMID: 17243791
  34. Optimized Monte Carlo data analysis.
    Phys Rev Lett. 1989 Sep 18;63(12):1195-1198 PMID: 10040500
  35. The language of covalent histone modifications.
    Nature. 2000 Jan 6;403(6765):41-5 PMID: 10638745
  36. Chromatin fiber folding: requirement for the histone H4 N-terminal tail.
    J Mol Biol. 2003 Mar 14;327(1):85-96 PMID: 12614610
  37. The nature of folded states of globular proteins.
    Biopolymers. 1992 Jun;32(6):695-709 PMID: 1643270
  38. Counterion atmosphere and hydration patterns near a nucleosome core particle.
    J Am Chem Soc. 2009 Oct 21;131(41):15005-13 PMID: 19778017
  39. How do site-specific DNA-binding proteins find their targets?
    Nucleic Acids Res. 2004 Jun 03;32(10):3040-52 PMID: 15178741
  40. Chromatin compaction at the mononucleosome level.
    Biochemistry. 2006 Feb 14;45(6):1591-8 PMID: 16460006
  41. Fuzzy complexes: polymorphism and structural disorder in protein-protein interactions.
    Trends Biochem Sci. 2008 Jan;33(1):2-8 PMID: 18054235
  42. Positively charged residues in DNA-binding domains of structural proteins follow sequence-specific positions of DNA phosphate groups.
    J Phys Chem B. 2009 Apr 2;113(13):4242-7 PMID: 19256532
  43. Single-molecule fluorescence experiments determine protein folding transition path times.
    Science. 2012 Feb 24;335(6071):981-4 PMID: 22363011
  44. Optimized molecular dynamics force fields applied to the helix-coil transition of polypeptides.
    J Phys Chem B. 2009 Jul 2;113(26):9004-15 PMID: 19514729
  45. Experimental snapshots of a protein-DNA binding landscape.
    Proc Natl Acad Sci U S A. 2010 Apr 27;107(17):7751-6 PMID: 20375284
  46. Proteins with weakly funneled energy landscapes challenge the classical structure-function paradigm.
    Proc Natl Acad Sci U S A. 2008 Sep 23;105(38):14237-8 PMID: 18799750
  47. Expanding the proteome: disordered and alternatively folded proteins.
    Q Rev Biophys. 2011 Nov;44(4):467-518 PMID: 21729349
  48. Acetylation of lysine 120 of p53 endows DNA-binding specificity at effective physiological salt concentration.
    Proc Natl Acad Sci U S A. 2011 May 17;108(20):8251-6 PMID: 21525412
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
1091-6490
Published
2012-10-30
Epub
2012-00-17
Pages
17857-62
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC3497739
Subset
IM
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