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PMID: 12023209 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Computer simulation of the 30-nanometer chromatin fiber.

Biophysical journal ·Vol. 82 ·No. 6 ·2002-06-00 ·Pages 2847-59

Wedemann G, Langowski J

Abstract

A new Monte Carlo model for the structure of chromatin is presented here. Based on our previous work on superhelical DNA and polynucleosomes, it reintegrates aspects of the "solenoid" and the "zig-zag" models. The DNA is modeled as a flexible elastic polymer chain, consisting of segments connected by elastic bending, torsional, and stretching springs. The electrostatic interaction between the DNA segments is described by the Debye-Hückel approximation. Nucleosome core particles are represented by oblate ellipsoids; their interaction potential has been parameterized by a comparison with data from liquid crystals of nucleosome solutions. DNA and chromatosomes are linked either at the surface of the chromatosome or through a rigid nucleosome stem. Equilibrium ensembles of 100-nucleosome chains at physiological ionic strength were generated by a Metropolis-Monte Carlo algorithm. For a DNA linked at the nucleosome stem and a nucleosome repeat of 200 bp, the simulated fiber diameter of 32 nm and the mass density of 6.1 nucleosomes per 11 nm fiber length are in excellent agreement with experimental values from the literature. The experimental value of the inclination of DNA and nucleosomes to the fiber axis could also be reproduced. Whereas the linker DNA connects chromatosomes on opposite sides of the fiber, the overall packing of the nucleosomes leads to a helical aspect of the structure. The persistence length of the simulated fibers is 265 nm. For more random fibers where the tilt angles between two nucleosomes are chosen according to a Gaussian distribution along the fiber, the persistence length decreases to 30 nm with increasing width of the distribution, whereas the other observable parameters such as the mass density remain unchanged. Polynucleosomes with repeat lengths of 212 bp also form fibers with the expected experimental properties. Systems with larger repeat length form fibers, but the mass density is significantly lower than the measured value. The theoretical characteristics of a fiber with a repeat length of 192 bp where DNA and nucleosomes are connected at the core particle are in agreement with the experimental values. Systems without a stem and a repeat length of 217 bp do not form fibers.

MeSH Terms
Biophysical Phenomena Biophysics Chromatin/chemistry,ultrastructure Computer Simulation DNA/chemistry,ultrastructure Elasticity Models, Molecular Monte Carlo Method Nucleosomes/chemistry,ultrastructure Static Electricity Thermodynamics
Chemicals
Chromatin Nucleosomes DNA
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Wedemann Gero
German Cancer Research Center (DKFZ), Division Biophysics of Macromolecules (H0500), Im Neuenheimer Feld 280, 69120 Heidelberg, Germany.
Langowski Jörg
References (29)
29 references, click to expand
  1. Crystal structure of the nucleosome core particle at 2.8 A resolution.
    Nature. 1997 Sep 18;389(6648):251-60 PMID: 9305837
  2. Reinterpretation of linear dichroism of chromatin supports a perpendicular linker orientation in the folded state.
    J Biomol Struct Dyn. 1990 Aug;8(1):37-54 PMID: 2275796
  3. Modeling salt-mediated electrostatics of macromolecules: the discrete surface charge optimization algorithm and its application to the nucleosome.
    Biopolymers. 2001 Jan;58(1):106-15 PMID: 11072233
  4. Overstretching B-DNA: the elastic response of individual double-stranded and single-stranded DNA molecules.
    Science. 1996 Feb 9;271(5250):795-9 PMID: 8628994
  5. Computational modeling predicts the structure and dynamics of chromatin fiber.
    Structure. 2001 Feb 7;9(2):105-14 PMID: 11250195
  6. A chromatin folding model that incorporates linker variability generates fibers resembling the native structures.
    Proc Natl Acad Sci U S A. 1993 Oct 1;90(19):9021-5 PMID: 8415647
  7. Interactions of highly charged colloidal cylinders with applications to double-stranded.
    Biopolymers. 1977 Jul;16(7):1435-48 PMID: 880366
  8. A Brownian dynamics model for the chromatin fiber.
    Comput Appl Biosci. 1997 Jun;13(3):271-9 PMID: 9183532
  9. Chromatin organization re-viewed.
    Trends Cell Biol. 1995 Jul;5(7):272-7 PMID: 14732111
  10. Chromatin conformation in living cells: support for a zig-zag model of the 30 nm chromatin fiber.
    J Mol Biol. 1998 Nov 20;284(1):71-84 PMID: 9811543
  11. Elasticity and structure of eukaryote chromosomes studied by micromanipulation and micropipette aspiration.
    J Cell Biol. 1997 Oct 6;139(1):1-12 PMID: 9314524
  12. Evidence for the organization of chromatin in megabase pair-sized loops arranged along a random walk path in the human G0/G1 interphase nucleus.
    J Cell Biol. 1995 Sep;130(6):1239-49 PMID: 7559748
  13. Spheroid chromatin units (v bodies).
    Science. 1974 Jan 25;183(4122):330-2 PMID: 4128918
  14. Nucleosome core particles suppress the thermal untwisting of core DNA and adjacent linker DNA.
    Proc Natl Acad Sci U S A. 1985 Jul;82(14):4653-7 PMID: 3860814
  15. Estimating genomic distance from DNA sequence location in cell nuclei by a random walk model.
    Science. 1992 Sep 4;257(5075):1410-2 PMID: 1388286
  16. Electrical double layer, zeta potential, and electrophoretic charge of double-stranded DNA.
    Biopolymers. 1977 Jul;16(7):1415-34 PMID: 880365
  17. Modulation of the higher-order folding of chromatin by deletion of histone H3 and H4 terminal domains.
    Biochem J. 1996 Jun 1;316 ( Pt 2):395-400 PMID: 8687379
  18. Solenoidal model for superstructure in chromatin.
    Proc Natl Acad Sci U S A. 1976 Jun;73(6):1897-901 PMID: 1064861
  19. Chromatin higher order structure: chasing a mirage?
    J Biol Chem. 1995 Apr 14;270(15):8373-6 PMID: 7721727
  20. Chromatin structure: a repeating unit of histones and DNA.
    Science. 1974 May 24;184(4139):868-71 PMID: 4825889
  21. The superstructure of chromatin and its condensation mechanism. I. Synchrotron radiation X-ray scattering results.
    Eur Biophys J. 1986;13(3):157-73 PMID: 3956445
  22. Nucleosomes, linker DNA, and linker histone form a unique structural motif that directs the higher-order folding and compaction of chromatin.
    Proc Natl Acad Sci U S A. 1998 Nov 24;95(24):14173-8 PMID: 9826673
  23. Higher-order structures of chromatin in solution.
    Eur J Biochem. 1979 Jul;97(2):593-602 PMID: 467433
  24. Liquid crystalline ordering of nucleosome core particles under macromolecular crowding conditions: evidence for a discotic columnar hexagonal phase.
    Biophys J. 1997 Oct;73(4):1771-6 PMID: 9336172
  25. Pulling a single chromatin fiber reveals the forces that maintain its higher-order structure.
    Proc Natl Acad Sci U S A. 2000 Jan 4;97(1):127-32 PMID: 10618382
  26. Chromatin higher-order structure studied by neutron scattering and scanning transmission electron microscopy.
    Proc Natl Acad Sci U S A. 1987 Nov;84(22):7802-6 PMID: 3479765
  27. The chromatin fiber: structure and conformational transitions as revealed by optical anisotropy studies.
    J Biomol Struct Dyn. 1990 Aug;8(1):23-35 PMID: 2275795
  28. Pulling chromatin fibers: computer simulations of direct physical micromanipulations.
    J Mol Biol. 2000 Jan 7;295(1):29-40 PMID: 10623506
  29. Light scattering measurements supporting helical structures for chromatin in solution.
    Nucleic Acids Res. 1978 May;5(5):1571-80 PMID: 662693
Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
0006-3495
Published
2002-06-00
Pages
2847-59
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC1302074
Subset
IM
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