Mapping enhancers undergoing activity changes to EMT-specific alternatively spliced genes.
In order to establish a direct functional link between enhancer activity and AS patterns, we first needed to map both alternatively spliced axons and enhancers undergoing activity changes during the EMT.
We therefore started by determining which axons are alternatively spliced during the EMT at 3 different time points, T0 (untreated cells), T1 (EMT induction for 1 day) and T7 (EMT induction for 7 days). This was done using RNA-seq generated in the laboratory. Using stringent criteria, we have found over 300 skipped or mutually exclusive exons being significantly alternatively spliced during the EMT.
The next step was to map all enhancers with altered activity states during EMT. To do this, we undertook ChIP-seq (of 8 post-translational modifications, 2 proteins) and ATAC-seq experiments as well as collaborated with the Adelman laboratory (Harvard University, USA) in order to observe enhancer transcription. Preliminary analysis of the genome-wide sequencing data shows that over 2000 potential distal regulatory elements were deactivated while over 3500 were activated during the 7 day EMT.
In collaboration with the Sexton lab (IGBMC, Strasbourg, France), we are now currently undertaking a 4C-seq analysis of specific candidate regions in order to physically link the alternatively spliced axons to potential distal regulatory elements whose activity changes during EMT.
Being that, after 4 months, this project is still in its preliminary phase, the results have yet to be disseminated, aside from during internal seminars at the host institution.