Literature DB >> 15377519

Unexpected binding motifs for subnucleosomal particles revealed by atomic force microscopy.

Dessy N Nikova1, Lisa H Pope, Martin L Bennink, Kirsten A van Leijenhorst-Groener, Kees van der Werf, Jan Greve.   

Abstract

The structure of individual nucleosomes organized within reconstituted 208-12 arrays at different levels of compaction was examined by tapping mode atomic force microscopy in air and liquid. Reconstitution at lower histone octamer to DNA weight ratios showed an extended beads-on-a-string morphology with less than the expected maximum of 12 nucleosome core particles per array, each particle located in the most favored positioning site. A correlation of the contour lengths of these arrays with the number of observed particles revealed two distinct populations of particles, one with approximately 50 nm of bound DNA and a second population with approximately 25 nm. The measured nucleosome center-to-center distances indicate that this approximately 25 nm is not necessarily symmetrically bound about the dyad axis, but can also correspond to DNA bound from either the entry or exit point of the particle to a location at or close to the dyad axis. An assessment of particle heights suggests that particles wrapping approximately 25 nm of DNA are most likely to be subnucleosomal particles, which lack either one or both H2A-H2B dimers. At a higher reconstitution ratio, folded compact arrays fully populated with 12 nucleosome core particles, were observed. Liquid measurements demonstrated dynamic movements of DNA loops protruding from these folded arrays.

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Year:  2004        PMID: 15377519      PMCID: PMC1304922          DOI: 10.1529/biophysj.104.048983

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  43 in total

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  11 in total

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8.  Organisation of nucleosomal arrays reconstituted with repetitive African green monkey alpha-satellite DNA as analysed by atomic force microscopy.

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9.  Nanoscale Nucleosome Dynamics Assessed with Time-lapse AFM.

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10.  Single-pair FRET microscopy reveals mononucleosome dynamics.

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