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The homeobox transcription factor DUXBL controls exit from totipotency

  • Maria Vega-Sendino
  • , Felipe F. Lüttmann
  • , Teresa Olbrich
  • , Yanpu Chen
  • , Carsten Kuenne
  • , Paula Stein
  • , Desiree Tillo
  • , Grace I. Carey
  • , Jiasheng Zhong
  • , Virginia Savy
  • , Lenka Radonova
  • , Tianlin Lu
  • , Bechara Saykali
  • , Kee Pyo Kim
  • , Catherine N. Domingo
  • , Leah Schüler
  • , Stefan Günther
  • , Mette Bentsen
  • , Darko Bosnakovski
  • , Hans Schöler
  • Michael Kyba, Tapan K. Maity, Lisa M. Jenkins, Mario Looso, Carmen J. Williams, Johnny Kim, Sergio Ruiz
  • National Institutes of Health
  • Max Planck Institute for Heart and Lung Research
  • Cardio-Pulmonary Institute
  • Guangzhou Medical College
  • German Cancer Research Center
  • German Centre for Cardiovascular Research
  • University of Minnesota Twin Cities
  • Max Planck Institute for Molecular Biomedicine
  • German Center for Lung Research (DZL)
  • Justus Liebig University Giessen
  • Johannes Gutenberg University Mainz

Research output: Contribution to journalArticlepeer-review

24 Scopus citations

Abstract

In mice, exit from the totipotent two-cell (2C) stage embryo requires silencing of the 2C-associated transcriptional program. However, the molecular mechanisms involved in this process remain poorly understood. Here we demonstrate that the 2C-specific transcription factor double homeobox protein (DUX) mediates an essential negative feedback loop by inducing the expression of DUXBL to promote this silencing. We show that DUXBL gains accessibility to DUX-bound regions specifically upon DUX expression. Furthermore, we determine that DUXBL interacts with TRIM24 and TRIM33, members of the TRIM superfamily involved in gene silencing, and colocalizes with them in nuclear foci upon DUX expression. Importantly, DUXBL overexpression impairs 2C-associated transcription, whereas Duxbl inactivation in mouse embryonic stem cells increases DUX-dependent induction of the 2C-transcriptional program. Consequently, DUXBL deficiency in embryos results in sustained expression of 2C-associated transcripts leading to early developmental arrest. Our study identifies DUXBL as an essential regulator of totipotency exit enabling the first divergence of cell fates.

Original languageEnglish
Pages (from-to)697-709
Number of pages13
JournalNature Genetics
Volume56
Issue number4
DOIs
StatePublished - Apr 2024

Bibliographical note

Publisher Copyright:
© This is a U.S. Government work and not under copyright protection in the US; foreign copyright protection may apply 2024.

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