Přehled o publikaci
2025
Mechanism of RNA polymerase II elongation complex condensation
ŠEBESTA, Marek; Karel ŠKUBNÍK; William Shakespeare MORTON; Kateřina LINHARTOVÁ; Veronika KLÁPŠŤOVÁ et al.Základní údaje
Originální název
Mechanism of RNA polymerase II elongation complex condensation
Autoři
ŠEBESTA, Marek; Karel ŠKUBNÍK; William Shakespeare MORTON; Kateřina LINHARTOVÁ; Veronika KLÁPŠŤOVÁ; Jiří NOVÁČEK; Karel KUBÍČEK; Robert VÁCHA a Richard ŠTEFL
Vydání
EMBO Workshop: In situ structural biology: expanding the toolbox for structural cell biology, Heidelberg, 2025
Další údaje
Jazyk
angličtina
Typ výsledku
Konferenční abstrakta
Stát vydavatele
Česká republika
Utajení
není předmětem státního či obchodního tajemství
Odkazy
Označené pro přenos do RIV
Ne
Organizace
Středoevropský technologický institut – Masarykova univerzita – Repozitář
Klíčová slova anglicky
RNAP II; CTD; single particle Cryo-EM; RECQ5;
Návaznosti
EH22_008/0004575, projekt VaV.
Změněno: 6. 2. 2026 00:50, RNDr. Daniel Jakubík
Anotace
V originále
Mesoscale organization of transcription is thought to play an important role in its regulation, with numerous factors forming biomolecular condensates that interact with the C-terminal domain (CTD) of RPB1, the largest subunit of RNA polymerase II (RNAPII). However, in situ imaging of these transient transcriptional condensates within the nucleus remains challenging and their structural organization is largely uncharacterized due to their small size and inherently dynamic nature. We used comprehensive biochemical analyses, single particle cryo-EM structure determinations, cryo-ET reconstitutions, in vivo validations, and coarse-grained simulations to study the molecular structure of a condensate containing the phosphorylated RNAPII elongation complex and the elongation factor RECQ5. Through this integrative approach, we reconstructed the full structure of this transcriptional condensate model, uncovering critical interactions that provide insight into the mechanisms underlying RNAPII condensation with scaffolding factors. We show that RECQ5 forms a condensate scaffold matrix, integrating the elongation complex of RNAPII through a network of site specific interactions, reinforcing the condensate’s structural integrity. We also show that not only the hyperphosphorylated CTD, but also the entire RNAPII, including the transcribing core, are embedded within the condensates, addressing the key question of the spatial arrangement of transcriptional condensates.