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bioRxiv · 10.1101/686790

An impact of HP1γ on the fidelity of pre-mRNA splicing arises from its ability to bind RNA via intronic repeated sequences.

Abstract

HP1 proteins are best known as markers of heterochromatin and gene silencing. Yet, they are also RNA-binding proteins and the HP1{gamma}/Cbx3 family member is present on transcribed genes together with RNA polymerase II, where it regulates co-transcriptional processes such as alternative splicing. To gain insight in the role of the RNA binding activity of HP1{gamma} in transcriptionally active chromatin, we have captured and analyzed RNAs associated with this protein. We find that HP1{gamma} specifically recognizes hexameric RNA motifs and coincidentally transposable elements of the SINE family. As these elements are abundant in introns, while essentially absent from exons, the HP1{gamma} RNA binding activity tethers unspliced pre-mRNA to chromatin via the intronic region and limits the usage of intronic cryptic splice sites. Thus, our data unveil novel determinants in the relationship between chromatin and co-transcriptional splicing.

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Rachez, C., Legendre, R., Costallat, M., Varet, H., Yi, J., Kornobis, E., Proux, C., Muchardt, C.. 2019-06-28. An impact of HP1γ on the fidelity of pre-mRNA splicing arises from its ability to bind RNA via intronic repeated sequences.. https://doi.org/10.1101/686790

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