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Drouineau, E.

Publications and source records attributed to Drouineau, E..

2 recordsLinked to original sources

Oct4 interacts with subnucleosomal particles generated by Brg1 at enhancers

BRG1, the catalytic subunit of the mammalian SWI/SNF complexes, is essential for chromatin opening at enhancers. However, the nature of the open chromatin remains unclear. Here we show that in addition to producing histone-free DNA, BRG1 generates hemisome-like subnucleosomal particles containing the four core histones associated with 50-80 base pairs of DNA. Our genome-wide analysis indicates that BRG1 makes these particles by targeting and splitting fragile nucleosomes. In mouse embryonic stem cells, these subnucleosomes become an in vivo binding substrate for the master transcription factor OCT4 independently of the presence of OCT4 DNA motifs. At enhancers, the OCT4-subnucleosome interaction increases OCT4 occupancy and amplifies the genomic interval bound by OCT4 by up to one order of magnitude, compared to the region occupied on histone-free DNA. We suggest that BRG1-dependent subnucleosomes orchestrate an epigenetic mechanism that projects OCT4 function in chromatin opening beyond its DNA motifs.

genomics↗

Identification of RNAs bound by Hfq reveals widespread RNA partners and a sporulation regulator in the human pathogen Clostridioides difficile

Noncoding RNAs (ncRNA) have emerged as important components of regulatory networks governing bacterial physiology and virulence. Previous deep-sequencing analysis identified a large diversity of ncRNAs in the human enteropathogen Clostridioides (Clostridium) difficile. Some of them are trans-encoded RNAs that could require the RNA chaperone protein Hfq for their action. Recent analysis suggested a pleiotropic role of Hfq in C. difficile with the most pronounced effect on sporulation, a key process during the infectious cycle of this pathogen. However, a global view of RNAs interacting with C. difficile Hfq is missing. In the present study, we performed RNA immunoprecipitation high-throughput sequencing (RIP-Seq) to identify Hfq-associated RNAs in C. difficile. Our work revealed a large set of Hfq-interacting mRNAs and ncRNAs, including mRNA leaders and coding regions, known and potential new ncRNAs. In addition to trans-encoded RNAs, new categories of Hfq ligands were found including cis-antisense RNAs, riboswitches and CRISPR RNAs. ncRNA-mRNA and ncRNA-ncRNA pairings were postulated through computational predictions. Investigation of one of the Hfq-associated ncRNAs, RCd1, suggests that this RNA contributes to the control of late stages of sporulation in C. difficile. Altogether, these data provide essential molecular basis for further studies of post-transcriptional regulatory network in this enteropathogen.

microbiology↗