A conserved sequence-ensemble-dynamics code in Nhp6A is revealed wherein not just stability, but also phosphorylation-induced conformational switching, disordered tail dynamics, and DNA binding-bending closely coordinate chromatin accessibility is revealed.
Abstract
Physical remodeling of chromatin by non-histone architectural proteins of the High Mobility Group B (HMGB) family is central to eukaryotic transcriptional regulation. Nhp6A, the prototypical single-HMG-box protein from yeast, harbors both ordered and disordered regions enabling it to bind and bend DNA without sequence specificity. Here, we integrate ensemble experiments, single-molecule FRET, statistical mechanical modeling and atomistic simulations to dissect the structural and functional consequences of context-dependent phosphorylation in the ordered domain and its interplay with the intrinsically disordered region in Nhp6A. We find that Nhp6A occupies a narrow thermodynamic window, with a melting temperature close to the growth temperature of its host organism and high unfolding cooperativity, a feature conserved across the HMG-box family. Phosphorylation extents – mimicked by multisite phosphomimetic substitutions at residue positions conserved across fungal taxa – smoothly tuning the conformational equilibria between at least two different substates in the native ensemble, apart from the unfolded state. This intrinsic plasticity enables close packing of Nhp6A on DNA through two degenerate binding modes, accompanied by two distinct DNA bending geometries. DNA rescues a strongly destabilized mutant, T63D, through favorable intermolecular interactions, thus effectively acting as a chaperone driving folding. Our findings thus reveal a conserved sequence-ensemble-dynamics code in Nhp6A wherein not just stability, but also phosphorylation-induced conformational switching, disordered tail dynamics, and DNA binding-bending closely coordinate chromatin accessibility. The combination of marginal stability, large cooperativity and electrostatic frustration emerges as a design principle to encode charge sensitivity into proteins, and may represent a general strategy for multisite post-translational regulation.
A regulatory role is identified for the conserved, intrinsically disordered C-terminal tails of GroEL, one of the best-studied ATP-dependent chaperones, to reveal how the conformational properties of an intrinsically disordered element can be exploited to optimize the energetic efficiency and functional timing of a large allosteric machine.
RNA recognition motif (RRM) proteins frequently contain multiple RNA-binding domains connected by flexible linkers, yet the contribution of transient interdomain interactions to RNA recognition remains incompletely understood. Here, we investigated the structural organization of the tandem RRMs of the Drosophila melanogaster splicing regulator Sex-lethal (Sxl) using solution NMR spectroscopy in combination with rational protein engineering, restrained docking and RNA-binding studies. Progressive extension of the native interdomain linker resulted in a gradual decrease in rotational coupling between the two RRMs and continuous chemical shift changes, demonstrating that the RNA-free protein samples a dynamic conformational ensemble rather than behaving as two independently tumbling domains. NMR-guided docking identified a compact arrangement compatible with the experimental data and suggested a transient interface partially overlapping the RNA-binding surfaces. Surprisingly, a mutant designed to weaken this interface produced the opposite effect: instead of increasing interdomain mobility, it exhibited enhanced rotational coupling while remaining natively folded, indicating a redistribution of the conformational ensemble rather than disruption of the domain architecture. Both linker extension and the mutant reduced RNA-binding affinity, and the mutant additionally diminished sequence discrimination, demonstrating that perturbations shifting the conformational equilibrium in either direction compromise RNA recognition. Together, our results demonstrate that RNA recognition by Sxl is governed not by a single apo structure but by a finely balanced conformational ensemble, and that perturbing this equilibrium in either direction compromises high-affinity and sequence-selective RNA binding.
Julia Meyer, Kristian Schweimer, P. Matzner et al.· bioRxiv· 0 citations
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
The findings suggest that charged- hydrophobic-charged sequence patterning can encode conditional, context-dependent structure as a general organisational principle in intrinsically disordered proteomes.
D. Mitra, Simran Tolani, Amrita Bhattacharya et al.· bioRxiv· 0 citations
A generalized essential dynamics-refined ENM (edENM) is introduced for both DNA, RNA, and protein-nucleic acid complexes, parametrized against a diverse set of molecular dynamics simulations and validated using experimental ensembles from nuclear magnetic resonance, X-ray crystallography, and cryogenic electron microscopy.
Domenico Scaramozzino, Marco Cannariato, Byung Ho Lee et al.· Nucleic Acids Research· 0 citations
Condensates formed by oppositely charged intrinsically disordered proteins provide model systems for understanding how transient electrostatic interactions govern structure and dynamics in biomolecular assemblies. Here we investigate a nearly charge-neutral condensate composed of 50 Prothymosin alpha (ProTalpha) and 40 Histone H1 molecules using a single-bead-per-residue coarse-grained model combining the HPS hydropathy model for disordered regions with a Go model for the globular domain of Histone H1 under NPT conditions at pressures from 2 to 12 bar. We find that chain dimensions, including the radius of gyration (Rg), end-to-end distance (Ree), and their ratio R, are insensitive to pressure, indicating that chain conformations remain largely unchanged over the pressure range studied. Histone H1 exhibits systematically larger values of R than ProTalpha because of its globular-core plus disordered-tail architecture. Translational diffusion coefficients decrease monotonically with pressure, from approximately 0.22 to 0.06 nm^2/ns, with substantial chain-to-chain heterogeneity comparable to the mean diffusion coefficient. Chain relaxation follows a stretched exponential with beta less than 1 that decreases with pressure. ProTalpha relaxation times of approximately 12 to 40 ns obey Rouse scaling, whereas Histone H1 deviates because of the internal constraint imposed by its globular domain. ProTalpha-Histone H1 contact lifetimes of approximately 0.43 to 0.56 ns are much shorter than the Rouse relaxation time, placing the system firmly in the fast-exchange regime where transient electrostatic contacts renormalize chain friction rather than acting as permanent cross-links, consistent with the moderate stretching exponent beta of approximately 0.55 to 0.70 observed across all pressures.
A. Bhattacharya· 0 citations
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