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February 19, 2026Nature Genetics7 citationsOpen Access

Acute NIPBL depletion reveals in vivo dynamics of loop extrusion and its role in transcription activation

TPTessa M. PopayAPAmi PantFMFemke W. Munting

Key Points

  • The aim is to understand how NIPBL depletion affects chromatin organization and transcription regulation through loop extrusion.
  • Utilized acute NIPBL depletion in various cell types.
  • Characterized cohesin-mediated loop extrusion dynamics in vivo.
  • Analyzed the relationship between NIPBL and chromatin loops regarding transcription activation.
  • Many chromatin loops rapidly diminish following NIPBL loss.
  • Some cohesin-dependent loops persist for hours, requiring NIPBL for establishment.
  • NIPBL depletion affects genes linked to cell identity and super-enhancer proximity.

Abstract

The organization of the genome in three-dimensional space is highly dynamic, yet how these dynamics are regulated and the role they play in genome function is poorly understood. Here we utilized acute depletion of NIPBL to characterize cohesin-mediated loop extrusion in vivo. We find that many chromatin loops are rapidly diminished upon loss of NIBPL, but some cohesin-dependent chromatin loops persist for multiple hours. These persistent loops required NIPBL for their establishment during mitotic exit, were associated with distinct chromatin states and were preferentially dependent on STAG1 for their persistence. Furthermore, by depleting NIPBL from multiple cell types, we find that NIPBL specifically regulates cell identity genes by supporting a unique local genome conformation defined by greater spatial proximity to nearby super-enhancers and weaker transcription start site insulation of genomic contacts. Overall, we show that NIPBL-mediated loop extrusion is critical to genome organization and transcription regulation in vivo.

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Cite This Study

Popay et al. (2026) studied this question.

synapsesocial.com/papers/6996a77aecb39a600b3ed2f0https://doi.org/10.1038/s41588-026-02516-y
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