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Retrospective and multifactorial single-cell profiling reveals sequential chromatin reorganization during X inactivation

  • Samy Kefalopoulou
  • , Pim M J Rullens
  • , Kim L de Luca
  • , Sandra S de Vries
  • , Tessy Korthout
  • , Alexander van Oudenaarden
  • , Peter Zeller*
  • , Jop Kind*
  • *Corresponding author for this work

    Research output: Contribution to journalArticleAcademicpeer-review

    36 Downloads (Pure)

    Abstract

    The regulation of gene expression is governed at multiple levels of chromatin organization. However, how gene regulation is co-ordinated remains relatively unexplored. Here we develop Dam&ChIC, a method that enables retrospective and multifactorial chromatin profiling in single cells. Dam&ChIC employs chromatin labelling in living cells with m6A to acquire a past chromatin state, coupled with an antibody-mediated readout to capture the present chromatin state. Analyses of diverse factor combinations highlight its versatility and superior resolution. By tracking lamina-associated domain inheritance over the cell cycle, we showcase that Dam&ChIC provides retrospective single-cell chromatin data. When applied in random X chromosome inactivation, Dam&ChIC disentangles the temporal order of chromatin remodelling events. Upon mitotic exit and following Xist expression, the inactive X chromosome undergoes extensive genome-lamina detachment, preceding spreading of Polycomb. We anticipate that Dam&ChIC will be instrumental in unravelling the interconnectivity and order of gene-regulatory events underlying cell-state changes during development.

    Original languageEnglish
    Pages (from-to)1186–1198
    Number of pages13
    JournalNature Cell Biology
    Volume27
    Issue number7
    Early online date10 Jul 2025
    DOIs
    Publication statusPublished - 2025

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