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Oberthuer, C.

Publications and source records attributed to Oberthuer, C..

2 recordsLinked to original sources

Molecular mechanism of co-transcriptional H3K36 methylation by SETD2

Tri-methylation of histone H3 at residue lysine-36 (H3K36me3) is a hallmark of actively and recently transcribed genes and contributes to cellular memory and identity. The deposition of H3K36me3 occurs co-transcriptionally when the methyltransferase SETD2 associates with RNA polymerase II (Pol II). Here we present three cryo-EM structures of SETD2 bound to Pol II elongation complexes at different states of nucleosome passage. Together with functional probing, our results suggest a 3-step mechanism of transcription-coupled H3K36me3 deposition. First, binding to the elongation factor SPT6 tethers the catalytic SET domain in proximity to the upstream DNA. Second, Pol II nucleosome passage leads to the transfer of a hexasome from downstream to upstream, poised for methylation. Finally, continued transcription leads to upstream nucleosome reassembly, partial dissociation of the histone chaperone FACT and sequential methylation of both H3 tails, completing H3K36me3 deposition of an upstream nucleosome after Pol II passage.

biochemistry↗

Mechanism of Co-Transcriptional Cap-Snatching by Influenza Polymerase

Influenza virus mRNA is stable and competent for nuclear export and translation because it receives a 5' cap(1) structure in a process called cap-snatching1. During cap-snatching, the viral RNA-dependent RNA polymerase (FluPol) binds to host RNA polymerase II (Pol II) and the emerging transcript2,3. The FluPol endonuclease then cleaves a capped RNA fragment that sub-sequently acts as a primer for the transcription of viral genes4,5. Here, we present the cryo-EM structure of FluPol bound to a transcribing Pol II in complex with the elongation factor DSIF in the pre-cleavage state. The structure shows that FluPol directly interacts with both Pol II and DSIF, which position the FluPol endonuclease domain near the RNA exit channel of Pol II. These interactions are important for the endonuclease activity of FluPol and FluPol activity in cells. A second structure trapped after cap-snatching shows that cleavage rearranges the capped RNA primer within the FluPol, directing the capped RNA 3'-end towards the FluPol polymerase active site for viral transcription initiation. Altogether, our results provide the molecular mechanisms of co-transcriptional cap-snatching by FluPol.

biochemistry↗