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Direct observation of a condensate effect on super-enhancer controlled gene bursting

  • Manyu Du
  • , Simon Hendrik Stitzinger
  • , Jan Hendrik Spille
  • , Won Ki Cho
  • , Choongman Lee
  • , Mohammed Hijaz
  • , Andrea Quintana
  • , Ibrahim I. Cissé

Research output: Contribution to journalArticlepeer-review

Abstract

Enhancers are distal DNA elements believed to loop and contact promoters to control gene expression. Recently, we found diffraction-sized transcriptional condensates at genes controlled by clusters of enhancers (super-enhancers). However, a direct function of endogenous condensates in controlling gene expression remains elusive. Here, we develop live-cell super-resolution and multi-color 3D-imaging approaches to investigate putative roles of endogenous condensates in the regulation of super-enhancer controlled gene Sox2. In contrast to enhancer distance, we find instead that the condensate's positional dynamics are a better predictor of gene expression. A basal gene bursting occurs when the condensate is far (>1 μm), but burst size and frequency are enhanced when the condensate moves in proximity (<1 μm). Perturbations of cohesin and local DNA elements do not prevent basal bursting but affect the condensate and its burst enhancement. We propose a three-way kissing model whereby the condensate interacts transiently with gene locus and regulatory DNA elements to control gene bursting.

Original languageEnglish (US)
Pages (from-to)331-344.e17
JournalCell
Volume187
Issue number2
DOIs
StatePublished - Jan 18 2024

All Science Journal Classification (ASJC) codes

  • General Biochemistry, Genetics and Molecular Biology

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