Cellular self-organisation counteracts entropy at the expenditure of energy. In case of the first level of nuclear DNA organisation, this relates to regular nucleosome arrays and interspaced nucleosome-depleted regions (NDRs), for example at promoters or replication origins1–5. The organisation of nucleosomes as building blocks of chromatin is orchestrated by the collective activities of ATP-dependent chromatin remodellers6–9. Yet, how remodellers achieve positional specificity, in particular regarding the promoter-proximal +1 nucleosomes, remains unclear. Here, we show that the S. cerevisiae chromatin remodeller INO80 unexpectedly distinguishes DNA sequence asymmetry within the +1 nucleosome of the SWH1 gene through distinct inhibited and active nucleosome-binding modes. In structural and biochemical analyses of INO80 on nucleosomes with the endogenous sequence, we identified an inhibited binding mode where the entire INO80 remodelling unit flipped on the +1 nucleosome. INO80 adopted this remodelling-incompetent binding mode when facing the promoter, but a remodelling-competent mode when facing the gene body. This directional read-out of intra-nucleosomal DNA sequence asymmetry, together with extranucleosomal NDR sequence features, prevented nucleosome sliding into the NDR while permitting array formation over the gene. Our work shows how DNA features contribute to ATP-dependent self-organisation of promoter chromatin by INO80.
M. Likhodeeva, Annika Brem, Alberto López-Francos López-Romero et al.· bioRxiv· 0 citations
Coiled coils are structural motifs in proteins that play diverse functions. In MRE11-RAD50 (MR) complexes, ATP-driven changes in coiled coils are essential for DNA break sensing. However, coiled coil dynamics and its modulation by protein conformational changes remain unclear, partly due to the lack of quantitative tools. Here, we used high-speed atomic force microscopy (HS-AFM) for real-time visualization of the coiled coil conformational dynamics of individual MR complexes from bacteria and human homologs, and a biomedically relevant variant. The mean square deviation of the end-to-end distance of the coiled coils revealed a power-law scaling with time, conserved across conformational states, homologs, and variants, suggesting a universal dynamic scaling. Coiled coils behave as semi-flexible filaments with strong internal friction, leading to relaxation times that were seconds-long and varied among conformational states and variants. Molecular dynamics simulations indicated that strong friction arose from long-lifetime contacts between coils. Our results suggest that MR complexes modulate the coiled coil dynamics to mediate long-range allosteric and allodynamic communication during DNA repair.