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An Evolutionarily Conserved SoxB-Hdac2 Crosstalk Regulates Neurogenesis in a Cnidarian

  • Hakima Flici
  • , Christine E. Schnitzler
  • , R. Cathriona Millane
  • , Graham Govinden
  • , Amy Houlihan
  • , Stephanie D. Boomkamp
  • , Sanbing Shen
  • , Andreas D. Baxevanis
  • , Uri Frank
  • University of Galway
  • University of Florida
  • National Human Genome Research Institute (NHGRI)

Research output: Contribution to a Journal (Peer & Non Peer)Articlepeer-review

28 Citations (Scopus)

Abstract

SoxB transcription factors and histone deacetylases (HDACs) are each major players in the regulation of neurogenesis, but a functional link between them has not been previously demonstrated. Here, we show that SoxB2 and Hdac2 act together to regulate neurogenesis in the cnidarian Hydractinia echinata during tissue homeostasis and head regeneration. We find that misexpression of SoxB genes modifies the number of neural cells in all life stages and interferes with head regeneration. Hdac2 was coexpressed with SoxB2, and its downregulation phe-nocopied SoxB2 knockdown. We also show that SoxB2 and Hdac2 promote each others transcript levels, but Hdac2 counteracts this amplification cycle by deacetylating and destabilizing SoxB2 protein. Finally, we present evidence for conservation of these interactions in human neural progenitors. We hypothesize that crosstalk between SoxB transcription factors and Hdac2 is an ancient feature of metazoan neurogenesis and functions to stabilize the correct levels of these multifunctional proteins.
Original languageEnglish (Ireland)
Pages (from-to)1395-1409
Number of pages14
JournalCell Reports
Volume18
Issue number6
DOIs
Publication statusPublished - 1 Feb 2017

Keywords

  • Hdac2
  • Hydractinia
  • SoxB
  • cnidaria
  • evolution
  • histone deacetylase
  • nervous system
  • neurogenesis
  • regeneration
  • transcription factor

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