Resumen
Specialized chromatin structures such as nucleosomes with specific histone modifications decorate exons in eukaryotic genomes, suggesting a functional connection between chromatin organization and the regulation of pre-mRNA splicing. Through profiling the functional location of Poly (ADP) ribose polymerase, we observed that it is associated with the nucleosomes at exon/intron boundaries of specific genes, suggestive of a role for this enzyme in alternative splicing. Poly (ADP) ribose polymerase has previously been implicated in the PARylation of splicing factors as well as regulation of the histone modification H3K4me3, a mark critical for co-transcriptional splicing. In light of these studies, we hypothesized that interaction of the chromatin-modifying factor, Poly (ADP) ribose polymerase with nucleosomal structures at exon-intron boundaries, might regulate pre-mRNA splicing. Using genome-wide approaches validated by gene-specific assays, we show that depletion of PARP1 or inhibition of its PARylation activity results in changes in alternative splicing of a specific subset of genes. Furthermore, we observed that PARP1 bound to RNA, splicing factors and chromatin, suggesting that Poly (ADP) ribose polymerase serves as a gene regulatory hub to facilitate co-transcriptional splicing. These studies add another function to the multi-functional protein, Poly (ADP) ribose polymerase, and provide a platform for further investigation of this protein's function in organizing chromatin during gene regulatory processes.
| Idioma original | English |
|---|---|
| Número de artículo | 15046 |
| Publicación | Cell Discovery |
| Volumen | 2 |
| DOI | |
| Estado | Published - feb 16 2016 |
Nota bibliográfica
Funding Information:We thank the Northwestern University Genomic Core and the University of Southwestern Texas Genomic Facility for DNA and RNA sequencing, and the University of Kentucky Small Molecule Mass Spectrometry Core Laboratory for mass spectrometric analyses. We also thank Dr. Louis Hersh. This research was supported by NIH grants P20 GM103436 (ECR); 2P20 RR020171, 1RO1ES024478, NSF and IRSF grant (YNF-M).
Financiación
We thank the Northwestern University Genomic Core and the University of Southwestern Texas Genomic Facility for DNA and RNA sequencing, and the University of Kentucky Small Molecule Mass Spectrometry Core Laboratory for mass spectrometric analyses. We also thank Dr. Louis Hersh. This research was supported by NIH grants P20 GM103436 (ECR); 2P20 RR020171, 1RO1ES024478, NSF and IRSF grant (YNF-M).
| Financiadores | Número del financiador |
|---|---|
| National Science Foundation Arctic Social Science Program | |
| National Institutes of Health (NIH) | P20 GM103436, 1RO1ES024478, 2P20 RR020171 |
| International Rett Syndrome Foundation |
ASJC Scopus subject areas
- Biochemistry
- Molecular Biology
- Genetics
- Cell Biology
Huella
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