An integrated machine-learning model to predict nucleosome architecture

Author:

Sala Alba1ORCID,Labrador Mireia1,Buitrago Diana1,De Jorge Pau1,Battistini Federica12ORCID,Heath Isabelle Brun1,Orozco Modesto12

Affiliation:

1. Institute for Research in Biomedicine (IRB Barcelona), The Barcelona Institute of Science and Technology , Barcelona , Spain

2. Departament de Bioquímica i Biomedicina, Universitat de Barcelona , Barcelona , Spain

Abstract

Abstract We demonstrate that nucleosomes placed in the gene body can be accurately located from signal decay theory assuming two emitters located at the beginning and at the end of genes. These generated wave signals can be in phase (leading to well defined nucleosome arrays) or in antiphase (leading to fuzzy nucleosome architectures). We found that the first (+1) and the last (-last) nucleosomes are contiguous to regions signaled by transcription factor binding sites and unusual DNA physical properties that hinder nucleosome wrapping. Based on these analyses, we developed a method that combines Machine Learning and signal transmission theory able to predict the basal locations of the nucleosomes with an accuracy similar to that of experimental MNase-seq based methods.

Funder

Ministerio de Ciencia e Innovación

European Regional Development Fund

Catalan Government AGAUR

Center of Excellence for HPC H2020 European Commission

Fondo Europeo de Desarrollo Regional

Publisher

Oxford University Press (OUP)

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