The conserved and divergent roles of Prdm3 and Prdm16 in zebrafish and mouse craniofacial development

Lomeli Carpio Shull1, Rwik Sen1, Johannes Menzel2

  • 1Department of Craniofacial Biology, School of Dental Medicine, Aurora, CO, USA.

Developmental Biology
|February 12, 2020
PubMed

Insights

Prdm3 and Prdm16 are crucial histone methyltransferases for craniofacial development, regulating cranial neural crest cell (cNCC) processes. Their loss causes significant craniofacial defects in zebrafish and mice, highlighting their conserved and divergent roles.

Area of Science:

  • Developmental Biology
  • Epigenetics
  • Genetics

Background:

  • Craniofacial skeleton formation depends on precise cranial neural crest cell (cNCC) development.
  • Epigenetic mechanisms controlling cNCC development are not fully understood.
  • Histone methylation by chromatin modifiers plays a key role in gene regulation.

Purpose of the Study:

  • Investigate the roles of PRDM (Positive regulatory domain) histone methyltransferases Prdm3 and Prdm16 in craniofacial development.
  • Determine the impact of Prdm3 and Prdm16 loss on cNCC development and craniofacial structures.
  • Analyze the effects on histone methylation patterns in craniofacial development.

Main Methods:

  • Utilized genetic models in zebrafish and mice.
  • Generated loss-of-function models for Prdm3 and Prdm16.
  • Analyzed craniofacial morphology and mineralization.
  • Assessed histone methylation marks (H3K9me and H3K4me) via molecular techniques.

Main Results:

  • Loss of prdm3 or prdm16 in zebrafish led to craniofacial cartilage hypoplasia and mineralization defects.
  • Prdm16 loss in mice caused mandibular hypoplasia, cleft palate, and middle ear defects.
  • Combinatorial loss of prdm1a, prdm3, and prdm16 in zebrafish resulted in severe craniofacial abnormalities.
  • Prdm3/16 loss altered H3K9me (repression) and H3K4me (activation) in zebrafish, and H3K9me in mouse palates.

Conclusions:

  • Prdm3 and Prdm16 are essential for craniofacial development by regulating cNCC gene networks.
  • These PRDM proteins maintain temporal and spatial control over craniofacial development.
  • Their functions are conserved yet show divergence across vertebrate species.