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Wirbelauer, C.

Publications and source records attributed to Wirbelauer, C..

2 recordsLinked to original sources

Chromatin-dependent motif syntax defines differentiation trajectories

Transcription factors recognizing short DNA sequences within gene regulatory regions are crucial drivers of cell identity. Despite recent advances, their specificity remains incompletely understood. Here, we address this by contrasting two TFs, NGN2 and MyoD1, which recognize ubiquitous E-box motifs yet instigate distinct cell fates--neurons and muscles, respectively. Following controlled induction in embryonic stem cells, we monitor binding across differentiation trajectories, employing an interpretable machine-learning approach integrating pre-existing DNA accessibility data. This reveals a chromatin-dependent motif syntax, delineating both common and factor-specific binding and predicting genome engagement with high precision. Shared binding sites reside in open chromatin, locally influenced by nucleosomes. In contrast, factor-specific binding in closed chromatin involves NGN2 and MyoD1 acting as pioneer-factors, influenced by multi-motifs, rotational spacing, flanking sequences, and specific interaction partners, accounting for subsequent lineage divergence. Extending our methodology to other models demonstrates how such combination of opportunistic-binding and context-specific chromatin opening underpin transcription factor specificity driving differentiation trajectories.

genomics↗

Systematic assessment of ISWI subunits reveals that NURF creates local accessibility for proper CTCF function

Catalytic activity of the ISWI family of remodelers is critical for nucleosomal organization and DNA binding of transcription factors, including the insulator protein CTCF. To define which subcomplex mediates these diverse functions, we derived a panel of isogenic mouse stem cell lines each lacking one of six ISWI accessory subunits. Individual deletions of subunits of either CERF, RSF, ACF, WICH or NoRC subcomplexes only moderately affect the chromatin landscape, while removal of the NURF-specific subunit BPTF leads to drastic reduction in chromatin accessibility and SNF2H ATPase localization around CTCF sites. While this affects adjacent nucleosome occupancy, it only modestly impacts CTCF binding itself. In the absence of accessibility, the structural function of CTCF is nevertheless impaired resulting in lower occupancy of cohesin and cohesin release factor, and reduced physical insulation at these sites, highlighting the need of NURF-mediated remodeling for open chromatin and proper CTCF function. These results separate local CTCF binding from insulator function in nuclear organization and reveal a specific role for NURF in mediating SNF2H localization and chromatin opening at bound CTCF sites. They designate local accessibility as critical for cohesin positioning and establishment of physical insulation.

molecular biology↗