We have accumulated a number of evidences that suggest a connection between R-loop formation and alternative splicing regulation, which was not expected before starting this project. With the use of cutting edge techniques, such as RNA sequencing of nuclear RNA, we have identified a repertoire of deregulated alternative splicing events after DNA damage induction, which characteristics helped us to understand the underlying mechanisms. In fact, computational analysis, using a package dedicated to alternative splicing developed in the lab, indicated that the deregulated events were enriched in GC-rich regions, the main condition of R-loop formation.
Then, we have validated that R-loops were stabilized after DNA damage using super resolution microscopy. For the first time, we showed that R-loops formed in the nucleus, when other publications using confocal microscopy were unable to show it. Moreover, we showed that R-loops are quickly formed after DNA damage, after 5 min, when alternative splicing, on chromatin RNA, is affected after around 45 min – 1 hour, depending on transcription rate, suggesting a possible role for R-loop formation in alternative splicing regulation.
Using minigene based experiments, we showed that R-loop were stabilized on a DNA template which mRNA suffered alternative splicing deregulation. Moreover, the removal of R-loop by an enzyme that specifically cleaves this structure could reverse this effect, indicating a role of R-loops in alternative splicing regulation after DNA damage. Next, we precisely mapped R-loop formation genome wide by developing a new technique, based on the immunoprecipitation of R-loops using a specific antibody and sequencing the RNA caught in the R-loop. Their localization suggested a possible role in alternative splicing regulation genome wide, as R-loops were enriched close to many alternative splicing events. We are currently investigating by which mechanism R-loops regulate alternative splicing.
These results were presented as an oral presentation at the 2017 RNA meeting in Prague and at the EMBO 3’ end processing in eukaryotic genomes meeting in Oxford