Publication:
Human THO-Sin3A interaction reveals new mechanisms to prevent R-loops that cause genome instability.

No Thumbnail Available

Date

2017-10-26

Authors

Salas-Armenteros, Irene
Pérez-Calero, Carmen
Bayona-Feliu, Aleix
Tumini, Emanuela
Luna, Rosa
Aguilera, Andrés

Advisors

Journal Title

Journal ISSN

Volume Title

Publisher

Metrics
Google Scholar
Export

Research Projects

Organizational Units

Journal Issue

Abstract

R-loops, formed by co-transcriptional DNA-RNA hybrids and a displaced DNA single strand (ssDNA), fulfill certain positive regulatory roles but are also a source of genomic instability. One key cellular mechanism to prevent R-loop accumulation centers on the conserved THO/TREX complex, an RNA-binding factor involved in transcription elongation and RNA export that contributes to messenger ribonucleoprotein (mRNP) assembly, but whose precise function is still unclear. To understand how THO restrains harmful R-loops, we searched for new THO-interacting factors. We found that human THO interacts with the Sin3A histone deacetylase complex to suppress co-transcriptional R-loops, DNA damage, and replication impairment. Functional analyses show that histone hypo-acetylation prevents accumulation of harmful R-loops and RNA-mediated genomic instability. Diminished histone deacetylase activity in THO- and Sin3A-depleted cell lines correlates with increased R-loop formation, genomic instability, and replication fork stalling. Our study thus uncovers physical and functional crosstalk between RNA-binding factors and chromatin modifiers with a major role in preventing R-loop formation and RNA-mediated genome instability.

Description

MeSH Terms

Acetylation
Cell Cycle Proteins
DNA, Single-Stranded
DNA-Binding Proteins
Gene Knockdown Techniques
Genomic Instability
HEK293 Cells
HeLa Cells
Histones
Humans
Models, Biological
Nuclear Proteins
RNA
RNA Processing, Post-Transcriptional
RNA-Binding Proteins
Repressor Proteins
Sin3 Histone Deacetylase and Corepressor Complex
Transcription, Genetic

DeCS Terms

CIE Terms

Keywords

DNA–RNA hybrids, Sin3A deacetylase, THO/TREX, genome instability, histone acetylation

Citation