Are the processes of DNA replication and DNA repair reading a common structural chromatin unit?

Decades of investigation on genomic DNA have brought us deeper insights into its organization within the nucleus and its metabolic mechanisms. This was fueled by the parallel development of experimental techniques and has stimulated model building to simulate genome conformation in agreement with th...

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Main Authors: Stefania Mamberti, M. Cristina Cardoso
Format: Article
Language:English
Published: Taylor & Francis Group 2020-01-01
Series:Nucleus
Subjects:
Online Access:http://dx.doi.org/10.1080/19491034.2020.1744415
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author Stefania Mamberti
M. Cristina Cardoso
author_facet Stefania Mamberti
M. Cristina Cardoso
author_sort Stefania Mamberti
collection DOAJ
description Decades of investigation on genomic DNA have brought us deeper insights into its organization within the nucleus and its metabolic mechanisms. This was fueled by the parallel development of experimental techniques and has stimulated model building to simulate genome conformation in agreement with the experimental data. Here, we will discuss our recent discoveries on the chromatin units of DNA replication and DNA damage response. We will highlight their remarkable structural similarities and how both revealed themselves as clusters of nanofocal structures each on the hundred thousand base pair size range corresponding well with chromatin loop sizes. We propose that the function of these two global genomic processes is determined by the loop level organization of chromatin structure with structure dictating function. Abbreviations: 3D-SIM: 3D-structured illumination microscopy; 3C: chromosome conformation capture; DDR: DNA damage response; FISH: fluorescent in situ hybridization; Hi-C: high conformation capture; HiP-HoP: highly predictive heteromorphic polymer model; IOD: inter-origin distance; LAD: lamina associated domain; STED: stimulated emission depletion microscopy; STORM: stochastic optical reconstruction microscopy; SBS: strings and binders switch model; TAD: topologically associated domain
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spelling doaj.art-dc2c28cbbe2a4efdb2b6e11de373fc882022-12-21T22:10:51ZengTaylor & Francis GroupNucleus1949-10341949-10422020-01-01111668210.1080/19491034.2020.17444151744415Are the processes of DNA replication and DNA repair reading a common structural chromatin unit?Stefania Mamberti0M. Cristina Cardoso1Technische Universität DarmstadtTechnische Universität DarmstadtDecades of investigation on genomic DNA have brought us deeper insights into its organization within the nucleus and its metabolic mechanisms. This was fueled by the parallel development of experimental techniques and has stimulated model building to simulate genome conformation in agreement with the experimental data. Here, we will discuss our recent discoveries on the chromatin units of DNA replication and DNA damage response. We will highlight their remarkable structural similarities and how both revealed themselves as clusters of nanofocal structures each on the hundred thousand base pair size range corresponding well with chromatin loop sizes. We propose that the function of these two global genomic processes is determined by the loop level organization of chromatin structure with structure dictating function. Abbreviations: 3D-SIM: 3D-structured illumination microscopy; 3C: chromosome conformation capture; DDR: DNA damage response; FISH: fluorescent in situ hybridization; Hi-C: high conformation capture; HiP-HoP: highly predictive heteromorphic polymer model; IOD: inter-origin distance; LAD: lamina associated domain; STED: stimulated emission depletion microscopy; STORM: stochastic optical reconstruction microscopy; SBS: strings and binders switch model; TAD: topologically associated domainhttp://dx.doi.org/10.1080/19491034.2020.1744415chromatin structurechromatin functiondna structuredna replicationdna repairhigh resolution microscopypolymer modeling
spellingShingle Stefania Mamberti
M. Cristina Cardoso
Are the processes of DNA replication and DNA repair reading a common structural chromatin unit?
Nucleus
chromatin structure
chromatin function
dna structure
dna replication
dna repair
high resolution microscopy
polymer modeling
title Are the processes of DNA replication and DNA repair reading a common structural chromatin unit?
title_full Are the processes of DNA replication and DNA repair reading a common structural chromatin unit?
title_fullStr Are the processes of DNA replication and DNA repair reading a common structural chromatin unit?
title_full_unstemmed Are the processes of DNA replication and DNA repair reading a common structural chromatin unit?
title_short Are the processes of DNA replication and DNA repair reading a common structural chromatin unit?
title_sort are the processes of dna replication and dna repair reading a common structural chromatin unit
topic chromatin structure
chromatin function
dna structure
dna replication
dna repair
high resolution microscopy
polymer modeling
url http://dx.doi.org/10.1080/19491034.2020.1744415
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