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Biophys J
2005 May 01;885:3572-83. doi: 10.1529/biophysj.104.053074.
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Single chromatin fiber stretching reveals physically distinct populations of disassembly events.
Pope LH
,
Bennink ML
,
van Leijenhorst-Groener KA
,
Nikova D
,
Greve J
,
Marko JF
.
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Eukaryotic DNA is packaged into the cell nucleus as a nucleoprotein complex, chromatin. Despite this condensed state, access to the DNA sequence must occur during gene expression and other essential genetic events. Here we employ optical tweezers stretching of reconstituted chromatin fibers to investigate the release of DNA from its protein-bound structure. Analysis of fiber length increase per unbinding event revealed discrete values of approximately 30 and approximately 60 nm. Furthermore, a loading rate analysis of the disruption forces revealed three individual energy barriers. The heights of these barriers were found to be approximately 20 k(B)T, approximately 25 k(B)T, and approximately 28 k(B)T. For subsequent stretches of the fiber it was found that events corresponding to the approximately 28 k(B)T energy barrier were significantly reduced. No correlation between energy barrier crossed and DNA length release was found. These studies clearly demonstrate that optical tweezers stretching of chromatin provides insight into the energetic penalties imposed by chromatin structure. Furthermore these studies reveal possible pathways via which chromatin may be disrupted during genetic code access.
Arnan,
Interaction of nucleoplasmin with core histones.
2003, Pubmed,
Xenbase
Arnan,
Interaction of nucleoplasmin with core histones.
2003,
Pubmed
,
Xenbase
Baumann,
Stretching of single collapsed DNA molecules.
2000,
Pubmed
Bednar,
Nucleosomes, linker DNA, and linker histone form a unique structural motif that directs the higher-order folding and compaction of chromatin.
1998,
Pubmed
Bednar,
Chromatin conformation and salt-induced compaction: three-dimensional structural information from cryoelectron microscopy.
1995,
Pubmed
Bennink,
Unfolding individual nucleosomes by stretching single chromatin fibers with optical tweezers.
2001,
Pubmed
,
Xenbase
Brower-Toland,
Mechanical disruption of individual nucleosomes reveals a reversible multistage release of DNA.
2002,
Pubmed
Bustamante,
Entropic elasticity of lambda-phage DNA.
1994,
Pubmed
Bustamante,
Visualization and analysis of chromatin by scanning force microscopy.
1997,
Pubmed
Clark,
Electrostatic mechanism of chromatin folding.
1990,
Pubmed
Cluzel,
DNA: an extensible molecule.
1996,
Pubmed
Cox,
DNA replication occurs at discrete sites in pseudonuclei assembled from purified DNA in vitro.
1991,
Pubmed
,
Xenbase
Cui,
Pulling a single chromatin fiber reveals the forces that maintain its higher-order structure.
2000,
Pubmed
Dilworth,
Two complexes that contain histones are required for nucleosome assembly in vitro: role of nucleoplasmin and N1 in Xenopus egg extracts.
1987,
Pubmed
,
Xenbase
Dimitrov,
Remodeling sperm chromatin in Xenopus laevis egg extracts: the role of core histone phosphorylation and linker histone B4 in chromatin assembly.
1994,
Pubmed
,
Xenbase
Evans,
Strength of a weak bond connecting flexible polymer chains.
1999,
Pubmed
Evans,
Probing the relation between force--lifetime--and chemistry in single molecular bonds.
2001,
Pubmed
Evans,
Dynamic strength of molecular adhesion bonds.
1997,
Pubmed
Evans,
Energy landscapes of biomolecular adhesion and receptor anchoring at interfaces explored with dynamic force spectroscopy.
1998,
Pubmed
Felsenfeld,
Controlling the double helix.
2003,
Pubmed
Finch,
Solenoidal model for superstructure in chromatin.
1976,
Pubmed
Forbes,
Spontaneous formation of nucleus-like structures around bacteriophage DNA microinjected into Xenopus eggs.
1983,
Pubmed
,
Xenbase
Garcia-Ramirez,
Role of the histone "tails" in the folding of oligonucleosomes depleted of histone H1.
1992,
Pubmed
Glikin,
Chromatin assembly in Xenopus oocytes: in vitro studies.
1984,
Pubmed
,
Xenbase
Hansen,
Influence of chromatin folding on transcription initiation and elongation by RNA polymerase III.
1992,
Pubmed
,
Xenbase
Hansen,
Homogeneous reconstituted oligonucleosomes, evidence for salt-dependent folding in the absence of histone H1.
1989,
Pubmed
Horowitz,
The three-dimensional architecture of chromatin in situ: electron tomography reveals fibers composed of a continuously variable zig-zag nucleosomal ribbon.
1994,
Pubmed
Jackson,
Chromatin fractionation procedure that yields nucleosomes containing near-stoichiometric amounts of high mobility group nonhistone chromosomal proteins.
1979,
Pubmed
Kleinschmidt,
Soluble acidic complexes containing histones H3 and H4 in nuclei of Xenopus laevis oocytes.
1982,
Pubmed
,
Xenbase
Ladoux,
Fast kinetics of chromatin assembly revealed by single-molecule videomicroscopy and scanning force microscopy.
2000,
Pubmed
,
Xenbase
Laitinen,
Polyamines may regulate S-phase progression but not the dynamic changes of chromatin during the cell cycle.
1998,
Pubmed
Laskey,
Assembly of SV40 chromatin in a cell-free system from Xenopus eggs.
1977,
Pubmed
,
Xenbase
Leno,
Cell-free systems to study chromatin remodeling.
1998,
Pubmed
Leuba,
Single-molecule analysis of chromatin.
2004,
Pubmed
Leuba,
Three-dimensional structure of extended chromatin fibers as revealed by tapping-mode scanning force microscopy.
1994,
Pubmed
Leuba,
Linker histone tails and N-tails of histone H3 are redundant: scanning force microscopy studies of reconstituted fibers.
1998,
Pubmed
Leuba,
Contributions of linker histones and histone H3 to chromatin structure: scanning force microscopy studies on trypsinized fibers.
1998,
Pubmed
Lever,
Rapid exchange of histone H1.1 on chromatin in living human cells.
2000,
Pubmed
Luger,
DNA binding within the nucleosome core.
1998,
Pubmed
Luger,
Structure and dynamic behavior of nucleosomes.
2003,
Pubmed
,
Xenbase
Luger,
Crystal structure of the nucleosome core particle at 2.8 A resolution.
1997,
Pubmed
Merkel,
Energy landscapes of receptor-ligand bonds explored with dynamic force spectroscopy.
1999,
Pubmed
Misteli,
Dynamic binding of histone H1 to chromatin in living cells.
2000,
Pubmed
Nikova,
Unexpected binding motifs for subnucleosomal particles revealed by atomic force microscopy.
2004,
Pubmed
Pope,
Force-induced melting of a short DNA double helix.
2001,
Pubmed
Pope,
Optical tweezers stretching of chromatin.
2002,
Pubmed
Schwarz,
Formation and stability of higher order chromatin structures. Contributions of the histone octamer.
1994,
Pubmed
Skoko,
Micromechanical analysis of the binding of DNA-bending proteins HMGB1, NHP6A, and HU reveals their ability to form highly stable DNA-protein complexes.
2004,
Pubmed
Smith,
Expression of a histone H1-like protein is restricted to early Xenopus development.
1988,
Pubmed
,
Xenbase
Smith,
Overstretching B-DNA: the elastic response of individual double-stranded and single-stranded DNA molecules.
1996,
Pubmed
Strunz,
Dynamic force spectroscopy of single DNA molecules.
1999,
Pubmed
Thåström,
Measurement of histone-DNA interaction free energy in nucleosomes.
2004,
Pubmed
Tremethick,
The transcription complex of the 5 S RNA gene, but not transcription factor IIIA alone, prevents nucleosomal repression of transcription.
1990,
Pubmed
,
Xenbase
Tyler,
Chromatin assembly. Cooperation between histone chaperones and ATP-dependent nucleosome remodeling machines.
2002,
Pubmed
van Noort,
Dual architectural roles of HU: formation of flexible hinges and rigid filaments.
2004,
Pubmed
Wang,
Force and velocity measured for single molecules of RNA polymerase.
1998,
Pubmed
Widom,
Structure of the 300A chromatin filament: X-ray diffraction from oriented samples.
1985,
Pubmed
Wolffe,
Dominant and specific repression of Xenopus oocyte 5S RNA genes and satellite I DNA by histone H1.
1989,
Pubmed
,
Xenbase
Yin,
Transcription against an applied force.
1995,
Pubmed
Yodh,
Mapping nucleosome locations on the 208-12 by AFM provides clear evidence for cooperativity in array occupation.
2002,
Pubmed