The role of O‐GlcNAcylation mediated by OGT during tooth development

Author:

Pokharel Elina1,Aryal Yam P.1,Kim Tae‐Young1,Kim Anna1,Jung Jae‐Kwang2,An Seo‐Young3,Kwon Tae‐Yub4,Min Bong‐Ki5,Yamamoto Hitoshi6,Cho Sung‐Won7,Sohn Wern‐Joo8,An Chang‐Hyeon3,Lee Youngkyun1,Kim Do‐Yeon9,Ha Jung‐Hong10,Kim Jae‐Young1ORCID

Affiliation:

1. Department of Biochemistry, School of Dentistry, IHBR Kyungpook National University Daegu South Korea

2. Department of Oral Medicine, School of Dentistry, IHBR Kyungpook National University Daegu South Korea

3. Department of Oral and Maxillofacial Radiology, School of Dentistry, IHBR Kyungpook National University Daegu South Korea

4. Department of Dental Biomaterials, School of Dentistry and Institute for Biomaterials Research & Development Kyungpook National University Daegu South Korea

5. Center for Research Facilities Yeungnam University Daegu South Korea

6. Department of Histology and Developmental Biology Tokyo Dental College Tokyo Japan

7. Division of Anatomy and Developmental Biology, Department of Oral Biology Yonsei University College of Dentistry Seoul South Korea

8. Department of K‐Beauty, College of Cosmetics and Pharmaceuticals Daegu Hanny University Daegu South Korea

9. Department of Pharmacology, School of Dentistry, IHBR Kyungpook National University Daegu South Korea

10. Department of Conservative Dentistry, School of Dentistry, IHBR Kyungpook National University Daegu South Korea

Abstract

AbstractTo understand the mechanisms underlying tooth morphogenesis, we examined the developmental roles of important posttranslational modification, O‐GlcNAcylation, which regulates protein stability and activity by the addition and removal of a single sugar (O‐GlcNAc) to the serine or threonine residue of the intracellular proteins. Tissue and developmental stage‐specific immunostaining results against O‐GlcNAc and O‐GlcNAc transferase (OGT) in developing tooth germs would suggest that O‐GlcNAcylation is involved in tooth morphogenesis, particularly in the cap and secretory stage. To evaluate the developmental function of OGT‐mediated O‐GlcNAcylation, we employed an in vitro tooth germ culture method at E14.5, cap stage before secretory stage, for 1 and 2 days, with or without OSMI‐1, a small molecule OGT inhibitor. To examine the mineralization levels and morphological changes, we performed renal capsule transplantation for one and three weeks after 2 days of in vitro culture at E14.5 with OSMI‐1 treatment. After OGT inhibition, morphological and molecular alterations were examined using histology, immunohistochemistry, real‐time quantitative polymerase chain reaction, in situ hybridization, scanning electron microscopy, and ground sectioning. Overall, inhibition of OGT resulted in altered cellular physiology, including proliferation, apoptosis, and epithelial rearrangements, with significant changes in the expression patterns of β‐catenin, fibroblast growth factor 4 (fgf4), and sonic hedgehog (Shh). Moreover, renal capsule transplantation and immunolocalizations of Amelogenin and Nestin results revealed that OGT‐inhibited tooth germs at cap stage exhibited with structural changes in cuspal morphogenesis, amelogenesis, and dentinogenesis of the mineralized tooth. Overall, we suggest that OGT‐mediated O‐GlcNAcylation regulates cell signaling and physiology in primary enamel knot during tooth development, thus playing an important role in mouse molar morphogenesis.

Funder

National Research Foundation of Korea

Publisher

Wiley

Subject

Cell Biology,Clinical Biochemistry,Physiology

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