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Persikov, A. V.

Publications and source records attributed to Persikov, A. V..

2 recordsLinked to original sources

Sequence-to-function modeling uncovers the context-specific grammar of Drosophila chromatin insulation

Chromatin is organized into self-interacting topologically associating domains partitioned by boundary elements that insulate adjacent domains and restrict regulatory interactions. Yet, how sequence context and combinations of factors dictate boundary strength remains incompletely understood. Here we present Domino, a deep learning framework that maps genomic sequences to quantitative insulation scores defined directly from single-nucleosome resolution Drosophila melanogaster Micro-C data. Unlike traditional transcription factor motif scanning, Domino captures broad sequence context to resolve the functional contributions of individual sequence elements. We validate model predictions through experimental perturbations of insulator sequences. Model interpretation yields insulation-associated motifs genome-wide. Across 7,311 embryonic boundaries, Domino reveals a comprehensive insulation grammar defined by just 24 primary motifs that account for 59% of the boundaries, with an average of only two motifs per motif-containing boundary. Beyond known factors, we identify the zinc-finger proteins Trem, CG4854 and CG17385 as previously unreported insulation factors. We uncover distance- and orientation-dependent motif synergy, including a strict orientation preference of the prominent architectural factor M1BP. Finally, Domino traces tissue-specific shifts in the insulator landscape from the embryo to larval and adult brains, nominating new brain-specific insulation motifs. In sum, Domino provides a generalizable framework for decoding the regulatory logic of 3D genome architecture.

genomics↗

Local sequence context determines the effect of glycine substitutions in collagen triple helices

Glycine substitutions in the collagen triple helix cause diverse heritable disorders, but their effects vary with local sequence environment. We tested whether sequence context helps determine the consequences of Gly replacement by combining case-weighted bioinformatic analysis, thermodynamic measurements on collagen model peptides (CMPs), and all-atom molecular dynamics simulations. Case-weighted analysis of pathogenic COL3A1 glycine substitutions identified Pro immediately following the substituted Gly, corresponding to a GP context, as the strongest enriched local feature. To examine this experimentally, we designed CMPs with stabilizing terminal segments flanking native collagen sequence windows containing clinically observed Gly[->]Ser and Gly[->]Arg substitutions. Gly[->]Arg substitutions were generally more destabilizing than Gly[->]Ser at the same site. However, the strongest effect was sequence-dependent: within the Gly[->]Ser class, GP-site substitutions caused larger losses of thermal stability and unfolding enthalpy than nonGP substitutions, and some GP-site Gly[->]Ser mutations were as destabilizing as Gly[->]Arg substitutions. Molecular dynamics simulations showed that all peptides remained globally triple-helical, but GP-site mutants exhibited greater loss of canonical interchain hydrogen bonds and reduced local backbone accommodation. Thus, the effect of glycine substitution in collagen depends not only on the replacing residue but also on the permissiveness of the surrounding sequence, with Pro-adjacent sites representing especially restrictive local environments. Statement of SignificanceCollagen diseases often result from replacement of a required glycine in the triple helix, but the same substitution can have very different consequences at different sites. Using clinical bioinformatics, collagen model peptides, and molecular dynamics simulations, we show that the surrounding sequence is a major determinant of mutational outcome. The most restrictive context identified here is a GP site, in which proline immediately follows the substituted glycine: Gly[->]Ser mutations at GP sites are more destabilizing than Gly[->]Ser mutations at sites without a following proline and can be as damaging as Gly[->]Arg substitutions. These results define a sequence-based rule for collagen mutational tolerance relevant to both triple-helix stability and interpretation of pathogenic variants.

biophysics↗