Dynamics as a cause for the nanoscale organization of the genome.

Nucleus

Spectroscopy Department, Physics Division, National Research Centre, Cairo, Egypt.

Published: January 2020

AI Article Synopsis

  • Researchers identified transient chromatin 'blobs' using advanced imaging techniques but are unsure of how they form and their functional roles.
  • The study investigates the relationship between chromatin dynamics and blob characteristics using a method for causal analysis, finding that chromatin behavior significantly affects blob size and density.
  • The findings suggest that randomness is a major factor in chromatin organization, with potential insights from polymer theory to help understand how these blobs are structured within the nucleus.*

Article Abstract

Chromatin 'blobs' were recently identified by live super-resolution imaging of labeled nucleosomes as pervasive but fleeting structural entities. However, the mechanisms leading to the formation of these blobs and their functional implications are unknown. We explore here whether causal relationships exist between parameters that characterize the chromatin blob dynamics and structure, by adapting a framework for spatio-temporal Granger-causality inference. Our analysis reveals that chromatin dynamics is a key determinant for both blob area and local density. Such causality, however, could be demonstrated only in 10-20% of the nucleus, suggesting that chromatin dynamics and structure at the nanometer scale are dominated by stochasticity. We show that the theory of active semiflexible polymers can be invoked to provide potential mechanisms leading to the organization of chromatin into blobs. Our results represent a first step toward elucidating the mechanisms that govern the dynamic and stochastic organization of chromatin in the cell nucleus.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7529413PMC
http://dx.doi.org/10.1080/19491034.2020.1763093DOI Listing

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