Polymer physics of nuclear organization and function
Polymer physics of nuclear organization and function
Abstract We review here recent progress to link the nuclear organization to its function, based on elementary physical processes such as diffusion, polymer dynamics of DNA, chromatin and the search mechanism for a small target by double-stranded DNA (dsDNA) break. These physical models and their analysis make it possible to compute critical rates involved in cell reorganization timing, which depends on many parameters. In the framework of polymer models, various empirical observations are interpreted as anomalous diffusion of chromatin at various time scales. The reviewed theoretical approaches offer a framework for extracting features, biophysical parameters, predictions, and so on, based on a large variety of experimental data, such as chromosomal capture data, single particle trajectories, and more. Combining theoretical approaches with live cell microscopy data should unveil some of the still unexplained behavior of the nucleus in carrying out some of its key function involved in survival, DNA repair or gene activation.
Amitai A.、Holcman D.
IMES, MITDepartment of Applied Mathematics and Theoretical physics (DAMTP), University of Cambridge||Ecole Normale Superieure
生物物理学物理学
polymer modelsnucleus organizationchromatinmodelingstochastic processesfirst passage timessearch timenarrow escape theorysingle particle trajectoriesanomalous diffusionlooping eigenvalue expansionFokker-Planck equationasymptotic formulaboundary layerchromosomal capture dataHi-C analysisdiffusion processestethering forcepotential wellsstochastic simulationscoarse-grained analysismean square displacementtelomeresclusteringaggregationDNA repairhomologous recombination
Amitai A.,Holcman D..Polymer physics of nuclear organization and function[EB/OL].(2025-03-28)[2025-05-06].https://www.biorxiv.org/content/10.1101/076661.点此复制
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