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Nucleocytoplasmic transport of the RNA-binding protein CELF2 regulates neural stem cell fates

  • Melissa J. MacPherson
  • , Sarah L. Erickson
  • , Drayden Kopp
  • , Pengqiang Wen
  • , Mohamad Reza Aghanoori
  • , Shreeya Kedia
  • , Kaylan M.L. Burns
  • , Antonio Vitobello
  • , Frederic Tran Mau-Them
  • , Quentin Thomas
  • , Nina B. Gold
  • , William Brucker
  • , Louise Amlie-Wolf
  • , Karen W. Gripp
  • , Olaf Bodamer
  • , Laurence Faivre
  • , Mikko Muona
  • , Lara Menzies
  • , Julia Baptista
  • , Katie Guegan
  • Alison Male, Xing Chang Wei, Guiqiong He, Quan Long, A. Micheil Innes, Guang Yang
  • University of Calgary
  • University of Alberta
  • Université de Bourgogne
  • Massachusetts General Hospital
  • Harvard University
  • Boston Children's Hospital
  • Blueprint Genetics
  • Folkhalsan
  • Great Ormond Street Hospital for Children NHS Foundation Trust
  • Royal Devon & Exeter NHS Foundation Trust
  • University of Exeter
  • Alberta Children's Hospital
  • Chongqing Medical University

Research output: Contribution to journalArticlepeer-review

32 Scopus citations

Abstract

The development of the cerebral cortex requires balanced expansion and differentiation of neural stem/progenitor cells (NPCs), which rely on precise regulation of gene expression. Because NPCs often exhibit transcriptional priming of cell-fate-determination genes, the ultimate output of these genes for fate decisions must be carefully controlled in a timely fashion at the post-transcriptional level, but how that is achieved is poorly understood. Here, we report that de novo missense variants in an RNA-binding protein CELF2 cause human cortical malformations and perturb NPC fate decisions in mice by disrupting CELF2 nucleocytoplasmic transport. In self-renewing NPCs, CELF2 resides in the cytoplasm, where it represses mRNAs encoding cell fate regulators and neurodevelopmental disorder-related factors. The translocation of CELF2 into the nucleus releases mRNA for translation and thereby triggers NPC differentiation. Our results reveal that CELF2 translocation between subcellular compartments orchestrates mRNA at the translational level to instruct cell fates in cortical development.

Original languageEnglish
Article number109226
JournalCell Reports
Volume35
Issue number10
DOIs
StatePublished - 8 Jun 2021

Keywords

  • CELF2
  • RNA-binding proteins
  • cell fate decision
  • cortical development
  • neural stem cells
  • neurodevelopmental disorder
  • neurogenesis
  • nucleocytoplasmic translocation
  • rare disease
  • translational repression

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