ESCRT-dependent control of craniofacial morphogenesis with concomitant perturbation of NOTCH signaling

Viviana Hermosilla Aguayo1, Peter Martin1, Nuo Tian1

  • 1Program in Craniofacial Biology, Institute for Human Genetics, Eli and Edythe Broad Center of Regeneration Medicine & Stem Cell Research, Dept of Orofacial Sciences and Dept of Anatomy, University of California, San Francisco, San Francisco, CA 94143, USA.

Developmental Biology
|August 12, 2023
PubMed

Insights

The Endosomal Sorting Complexes Required for Transport (ESCRT) machinery, specifically Vps25, is crucial for craniofacial development in mice. Disruption of Vps25 leads to severe craniofacial defects and impacts NOTCH signaling.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Genetics

Background:

  • Craniofacial development relies on complex regulatory networks, including signaling pathways and endo-lysosomal trafficking.
  • The ESCRT machinery is essential for endosomal trafficking and receptor degradation, but its role in vertebrate craniofacial development is understudied.
  • Previous research established ESCRT functions in vitro and in invertebrates, highlighting a gap in vertebrate developmental studies.

Purpose of the Study:

  • To investigate the role of ESCRT-II component Vps25 in murine craniofacial development.
  • To characterize craniofacial anomalies in a novel Vps25 hypomorphic mouse model.
  • To explore the spatiotemporal expression of ESCRT-encoding genes during mouse development and their impact on signaling pathways.

Main Methods:

  • Induced mutagenesis (ENU) to generate a Vps25 hypomorphic mouse line (Vps25ENU/ENU).
  • Assessment of Vps25 and other ESCRT gene expression patterns during murine development.
  • Phenotypic analysis of Vps25ENU/ENU embryos, focusing on craniofacial structures.
  • Investigation of NOTCH signaling pathway activity in affected craniofacial domains.

Main Results:

  • Vps25 and other ESCRT genes are ubiquitously expressed, with enrichment in craniofacial, cardiac, and limb domains.
  • Vps25ENU/ENU embryos exhibit late lethality and significant craniofacial defects, including mandibular hypoplasia, snout shortening, ear dysmorphia, and cleft palate.
  • Perturbation of NOTCH signaling was observed in the craniofacial regions of Vps25ENU/ENU embryos.

Conclusions:

  • This study provides the first evidence for a critical role of ESCRT-II in vertebrate craniofacial morphogenesis.
  • The Vps25ENU/ENU mouse model recapitulates features of human congenital craniofacial syndromes.
  • NOTCH signaling pathway dysregulation is implicated in the craniofacial defects observed in Vps25ENU/ENU embryos, suggesting a conserved developmental mechanism.

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