Canonical Wnt signaling regulates soft palate development by mediating ciliary homeostasis

Author:

Janečková Eva1,Feng Jifan1,Guo Tingwei1,Han Xia1,Ghobadi Aileen1,Araujo-Villalba Angelita1,Rahman Md Shaifur1,Ziaei Heliya1,Ho Thach-Vu1,Pareek Siddhika1,Alvarez Jasmine1,Chai Yang1ORCID

Affiliation:

1. Center for Craniofacial Molecular Biology, University of Southern California , Los Angeles, CA 90033 , USA

Abstract

ABSTRACT Craniofacial morphogenesis requires complex interactions involving different tissues, signaling pathways, secreted factors and organelles. The details of these interactions remain elusive. In this study, we have analyzed the molecular mechanisms and homeostatic cellular activities governing soft palate development to improve regenerative strategies for individuals with cleft palate. We have identified canonical Wnt signaling as a key signaling pathway primarily active in cranial neural crest (CNC)-derived mesenchymal cells surrounding soft palatal myogenic cells. Using Osr2-Cre;β-cateninfl/fl mice, we show that Wnt signaling is indispensable for mesenchymal cell proliferation and subsequently for myogenesis through mediating ciliogenesis. Specifically, we have identified that Wnt signaling directly regulates expression of the ciliary gene Ttll3. Impaired ciliary disassembly leads to differentiation defects in mesenchymal cells and indirectly disrupts myogenesis through decreased expression of Dlk1, a mesenchymal cell-derived pro-myogenesis factor. Moreover, we show that siRNA-mediated reduction of Ttll3 expression partly rescues mesenchymal cell proliferation and myogenesis in the palatal explant cultures from Osr2-Cre;β-cateninfl/fl embryos. This study highlights the role of Wnt signaling in palatogenesis through the control of ciliary homeostasis, which establishes a new mechanism for Wnt-regulated craniofacial morphogenesis.

Funder

National Institute of Dental and Craniofacial Research

National Institutes of Health

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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