Signaling by FGFR2b controls the regenerative capacity of adult mouse incisors

Author:

Parsa Sara12,Kuremoto Koh-ichi3,Seidel Kerstin4,Tabatabai Reza1,MacKenzie BreAnne5,Yamaza Takayoshi6,Akiyama Kentaro7,Branch Jonathan1,Koh Chester J.1,Alam Denise Al1,Klein Ophir D.4,Bellusci Saverio125

Affiliation:

1. Developmental Biology and Regenerative Medicine Program, Saban Research Institute of Children's Hospital Los Angeles, Los Angeles, CA 90027, USA.

2. Department of Pathology, Keck School of Medicine, University of Southern California, Los Angeles, CA 90033, USA.

3. Department of Removable Prothodontics and Occlusion, Osaka Dental University, Osaka 540-0008, Japan.

4. Departments of Orofacial Sciences and Pediatrics, Program in Craniofacial and Mesenchymal Biology, Institute of Human Genetics, UCSF, San Francisco, CA 94143-0442, USA.

5. Excellence Cluster in Cardio-Pulmonary Systems, University of Giessen Lung Center, Department of Internal Medicine II, Klinikstrasse 36, 35392 Giessen, Germany.

6. Department of Oral Anatomy and Cell Biology, Graduate School of Dental Science, Kyushu University, Fukuoka 812-8582, Japan.

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

Abstract

Rodent incisors regenerate throughout the lifetime of the animal owing to the presence of epithelial and mesenchymal stem cells in the proximal region of the tooth. Enamel, the hardest component of the tooth, is continuously deposited by stem cell-derived ameloblasts exclusively on the labial, or outer, surface of the tooth. The epithelial stem cells that are the ameloblast progenitors reside in structures called cervical loops at the base of the incisors. Previous studies have suggested that FGF10, acting mainly through fibroblast growth factor receptor 2b (FGFR2b), is crucial for development of the epithelial stem cell population in mouse incisors. To explore the role of FGFR2b signaling during development and adult life, we used an rtTA transactivator/tetracycline promoter approach that allows inducible and reversible attenuation of FGFR2b signaling. Downregulation of FGFR2b signaling during embryonic stages led to abnormal development of the labial cervical loop and of the inner enamel epithelial layer. In addition, postnatal attenuation of signaling resulted in impaired incisor growth, characterized by failure of enamel formation and degradation of the incisors. At a cellular level, these changes were accompanied by decreased proliferation of the transit-amplifying cells that are progenitors of the ameloblasts. Upon release of the signaling blockade, the incisors resumed growth and reformed an enamel layer, demonstrating that survival of the stem cells was not compromised by transient postnatal attenuation of FGFR2b signaling. Taken together, our results demonstrate that FGFR2b signaling regulates both the establishment of the incisor stem cell niches in the embryo and the regenerative capacity of incisors in the adult.

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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