EM measurements define the dimensions of the “30-nm” chromatin fiber: Evidence for a compact, interdigitated structure
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- 25 April 2006
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 103 (17) , 6506-6511
- https://doi.org/10.1073/pnas.0601212103
Abstract
Chromatin structure plays a fundamental role in the regulation of nuclear processes such as DNA transcription, replication, recombination, and repair. Despite considerable efforts during three decades, the structure of the 30-nm chromatin fiber remains controversial. To define fiber dimensions accurately, we have produced very long and regularly folded 30-nm fibers from in vitro reconstituted nucleosome arrays containing the linker histone and with increasing nucleosome repeat lengths (10 to 70 bp of linker DNA). EM measurements show that the dimensions of these fully folded fibers do not increase linearly with increasing linker length, a finding that is inconsistent with two-start helix models. Instead, we find that there are two distinct classes of fiber structure, both with unexpectedly high nucleosome density: arrays with 10 to 40 bp of linker DNA all produce fibers with a diameter of 33 nm and 11 nucleosomes per 11 nm, whereas arrays with 50 to 70 bp of linker DNA all produce 44-nm-wide fibers with 15 nucleosomes per 11 nm. Using the physical constraints imposed by these measurements, we have built a model in which tight nucleosome packing is achieved through the interdigitation of nucleosomes from adjacent helical gyres. Importantly, the model closely matches raw image projections of folded chromatin arrays recorded in the solution state by using electron cryo-microscopy.Keywords
This publication has 57 references indexed in Scilit:
- X-ray structure of a tetranucleosome and its implications for the chromatin fibreNature, 2005
- New DNA sequence rules for high affinity binding to histone octamer and sequence-directed nucleosome positioningJournal of Molecular Biology, 1998
- Major Role of the Histones H3-H4 in the Folding of the Chromatin FiberBiochemical and Biophysical Research Communications, 1997
- Cryo-electron microscopy of vitrified specimensQuarterly Reviews of Biophysics, 1988
- Higher-order structure of chromatin: evidence from photochemically detected linear dichroismBiochemistry, 1986
- Structure of the 3000Å chromatin filament: X-ray diffraction from oriented samplesCell, 1985
- Histone H5 promotes the association of condensed chromatin fragments to give pseudo‐higher‐order structuresEuropean Journal of Biochemistry, 1985
- Changes in chromatin folding in solutionJournal of Molecular Biology, 1980
- Action of micrococcal nuclease on chromatin and the location of histone H1Journal of Molecular Biology, 1977
- Structural Units in Chromatin and their Orientation on MembranesNature, 1968