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Originally published as Biophys J. BioFAST on April 27, 2007.
doi:10.1529/biophysj.107.105569
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Biophysical Journal 93:566-578 (2007)
© 2007 The Biophysical Society

Atomic Force Microscopy Imaging of SWI/SNF Action: Mapping the Nucleosome Remodeling and Sliding

Fabien Montel, Emeline Fontaine, Philippe St-Jean, Martin Castelnovo and Cendrine Faivre-Moskalenko

Laboratoire Joliot-Curie (CNRS USR 3010) et Laboratoire de Physique (CNRS UMR 5672), Ecole Normale Supérieure de Lyon, 69007 Lyon, France

Correspondence: Address reprint requests to Cendrine Faivre-Moskalenko, E-mail: cendrine.moskalenko{at}ens-lyon.fr.

We propose a combined experimental (atomic force microscopy) and theoretical study of the structural and dynamical properties of nucleosomes. In contrast to biochemical approaches, this method allows us to determine simultaneously the DNA-complexed length distribution and nucleosome position in various contexts. First, we show that differences in the nucleoproteic structure observed between conventional H2A and H2A.Bbd variant nucleosomes induce quantitative changes in the length distribution of DNA-complexed with histones. Then, the sliding action of remodeling complex SWI/SNF is characterized through the evolution of the nucleosome position and wrapped DNA length mapping. Using a linear energetic model for the distribution of DNA-complexed length, we extract the net-wrapping energy of DNA onto the histone octamer and compare it to previous studies.







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Copyright © 2007 by the Biophysical Society.