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Structural basis of nucleosome remodeling by archaeal RNA polymerase during transcription elongation

Created on 01 Oct 2026

Authors

Ubartaite, G., Tarau, D., Bula, A. L., Hausner, W., Grohmann, D., Dodonova, S. O.

Abstract

Transcription occurs in the context of histone-based chromatin in eukaryotes and most archaea. The archaeal RNA polymerase and histones are ancestral to their eukaryotic counterparts, yet how RNA polymerase traverses histone-bound DNA in archaea remains poorly understood. Here, we reconstitute a nucleosome-associated transcription elongation complex (TEC) from Pyrococcus furiosus and capture its structure across multiple elongation states by cryo-electron microscopy (cryo-EM). High-resolution structures reveal that the RNA polymerase engages a three-dimer HPfB nucleosome positioned downstream. We identify direct physical interactions between HPfB and Rpo1N RNA polymerase subunit, establishing a defined polymerase-histone interface during transcription. Structural comparisons across defined elongation states demonstrate that RNA polymerase first translocates on DNA using the proximal histone dimer as an anchor, followed by destabilisation of the distal dimer. The DNA exiting the nucleosome is partially unwrapped and is redirected traversing the Rpo4/7 stalk. At extended transcript lengths nucleosome organisation is lost, indicating that transcription elongation ultimately disrupts histone-DNA interactions. This work provides the first structural insight into transcription through chromatin in archaea, revealing a mechanism in which the archaeal RNA polymerase actively remodels nucleosomes via DNA redirection and histone displacement, aided by direct polymerase-histone contacts.

Preprint server: bioRxiv
The authors list and abstract were imported from bioRxiv on 01 Oct 2026.

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