Nucleosome spacing can fine-tune higher-order chromatin assembly
Abstract
Abstract Cellular chromatin displays heterogeneous structure and dynamics, properties that control diverse nuclear processes. Models invoke phase separation of conformational ensembles of chromatin fibers as a mechanism regulating chromatin organization in vivo. Here we combine biochemistry and molecular dynamics simulations to examine, at single base-pair resolution, how nucleosome spacing controls chromatin phase separation. We show that as DNA linkers extend from 25 bp to 30 bp, as exemplars of 10 N + 5 and 10 N (integer N) bp lengths, chromatin condensates become less thermodynamically stable and nucleosome mobility increases. Simulations reveal that this is due to trade-offs between inter- and intramolecular nucleosome stacking, favored by rigid 10 N + 5 and 10 N bp linkers, respectively. A remodeler can induce or inhibit phase separation by moving nucleosomes, changing the balance between intra- and intermolecular stacking. The intrinsic phase separation capacity of chromatin enables fine tuning of compaction and dynamics, likely contributing to heterogeneous chromatin organization in vivo.
Article Details
Authors (11)
Lifeng Chen
M. Julia Maristany
Stephen E. Farr
Jinyue Luo
Bryan A. Gibson
Lynda K. Doolittle
Department of Biophysics, University of Texas Southwestern Medical Center
Jorge R. Espinosa
Dpto. Química Física I, Fac. Ciencias Químicas, Universidad Complutense de Madrid 2 , Madrid 28040,
Jan Huertas
Sy Redding
Rosana Collepardo-Guevara
Cavendish Laboratory, Department of Physics
Michael K. Rosen
Department of Biophysics, University of Texas Southwestern Medical Center