TY - JOUR
T1 - CTCF-promoted RNA polymerase II pausing links DNA methylation to splicing
AU - Shukla, Sanjeev
AU - Kavak, Ersen
AU - Gregory, Melissa
AU - Imashimizu, Masahiko
AU - Shutinoski, Bojan
AU - Kashlev, Mikhail
AU - Oberdoerffer, Philipp
AU - Sandberg, Rickard
AU - Oberdoerffer, Shalini
N1 - Funding Information:
Acknowledgements We thank A. Rao, C. Burge and K. Lynch for critical reading of this manuscript. We also thank A. Rao for reagents and K. Nyswaner and M. Prigge for technical assistance. This work is supported by the Intramural Research Program of NIH,the NationalCancerInstitute, The Center for Cancer Research(S.O., P.O.,M.K.),and the Swedish Research Council Foundation and the Foundation for Strategic Research (R.S.).
PY - 2011/11/3
Y1 - 2011/11/3
N2 - Alternative splicing of pre-messenger RNA is a key feature of transcriptome expansion in eukaryotic cells, yet its regulation is poorly understood. Spliceosome assembly occurs co-transcriptionally, raising the possibility that DNA structure may directly influence alternative splicing. Supporting such an association, recent reports have identified distinct histone methylation patterns, elevated nucleosome occupancy and enriched DNA methylation at exons relative to introns. Moreover, the rate of transcription elongation has been linked to alternative splicing. Here we provide the first evidence that a DNA-binding protein, CCCTC-binding factor (CTCF), can promote inclusion of weak upstream exons by mediating local RNA polymerase II pausing both in a mammalian model system for alternative splicing, CD45, and genome-wide. We further show that CTCF binding to CD45 exon 5 is inhibited by DNA methylation, leading to reciprocal effects on exon 5 inclusion. These findings provide a mechanistic basis for developmental regulation of splicing outcome through heritable epigenetic marks.
AB - Alternative splicing of pre-messenger RNA is a key feature of transcriptome expansion in eukaryotic cells, yet its regulation is poorly understood. Spliceosome assembly occurs co-transcriptionally, raising the possibility that DNA structure may directly influence alternative splicing. Supporting such an association, recent reports have identified distinct histone methylation patterns, elevated nucleosome occupancy and enriched DNA methylation at exons relative to introns. Moreover, the rate of transcription elongation has been linked to alternative splicing. Here we provide the first evidence that a DNA-binding protein, CCCTC-binding factor (CTCF), can promote inclusion of weak upstream exons by mediating local RNA polymerase II pausing both in a mammalian model system for alternative splicing, CD45, and genome-wide. We further show that CTCF binding to CD45 exon 5 is inhibited by DNA methylation, leading to reciprocal effects on exon 5 inclusion. These findings provide a mechanistic basis for developmental regulation of splicing outcome through heritable epigenetic marks.
UR - https://www.scopus.com/pages/publications/80455176999
UR - https://www.scopus.com/pages/publications/80455176999#tab=citedBy
U2 - 10.1038/nature10442
DO - 10.1038/nature10442
M3 - Article
C2 - 21964334
AN - SCOPUS:80455176999
SN - 0028-0836
VL - 479
SP - 74
EP - 79
JO - Nature
JF - Nature
IS - 7371
ER -