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MAST4 regulates stem cell maintenance with DLX3 for epithelial development and amelogenesis

Authors
 Dong-Joon Lee  ;  Pyunggang Kim  ;  Hyun-Yi Kim  ;  Jinah Park  ;  Seung-Jun Lee  ;  Haein An  ;  Jin Sun Heo  ;  Min-Jung Lee  ;  Hayato Ohshima  ;  Seiya Mizuno  ;  Satoru Takahashi  ;  Han-Sung Jung  ;  Seong-Jin Kim 
Citation
 EXPERIMENTAL AND MOLECULAR MEDICINE, Vol.56(7) : 1606-1619, 2024-07 
Journal Title
EXPERIMENTAL AND MOLECULAR MEDICINE
ISSN
 1226-3613 
Issue Date
2024-07
MeSH
Amelogenesis* / genetics ; Animals ; Cell Differentiation / genetics ; Epithelium / metabolism ; Homeodomain Proteins* / genetics ; Homeodomain Proteins* / metabolism ; Humans ; Mice ; Mice, Knockout* ; Phosphorylation ; Protein Serine-Threonine Kinases / genetics ; Protein Serine-Threonine Kinases / metabolism ; Stem Cells* / cytology ; Stem Cells* / metabolism ; Transcription Factors* / genetics ; Transcription Factors* / metabolism ; Wnt Signaling Pathway
Abstract
The asymmetric division of stem cells permits the maintenance of the cell population and differentiation for harmonious progress. Developing mouse incisors allows inspection of the role of the stem cell niche to provide specific insights into essential developmental phases. Microtubule-associated serine/threonine kinase family member 4 (Mast4) knockout (KO) mice showed abnormal incisor development with low hardness, as the size of the apical bud was decreased and preameloblasts were shifted to the apical side, resulting in amelogenesis imperfecta. In addition, Mast4 KO incisors showed abnormal enamel maturation, and stem cell maintenance was inhibited as amelogenesis was accelerated with Wnt signal downregulation. Distal-Less Homeobox 3 (DLX3), a critical factor in tooth amelogenesis, is considered to be responsible for the development of amelogenesis imperfecta in humans. MAST4 directly binds to DLX3 and induces phosphorylation at three residues within the nuclear localization site (NLS) that promotes the nuclear translocation of DLX3. MAST4-mediated phosphorylation of DLX3 ultimately controls the transcription of DLX3 target genes, which are carbonic anhydrase and ion transporter genes involved in the pH regulation process during ameloblast maturation. Taken together, our data reveal a novel role for MAST4 as a critical regulator of the entire amelogenesis process through its control of Wnt signaling and DLX3 transcriptional activity.
Files in This Item:
T202404946.pdf Download
DOI
10.1038/s12276-024-01264-5
Appears in Collections:
2. College of Dentistry (치과대학) > Dept. of Oral Biology (구강생물학교실) > 1. Journal Papers
Yonsei Authors
Kim, Hyun-Yi(김현이)
Lee, Dong Joon(이동준) ORCID logo https://orcid.org/0000-0001-6532-9729
Jung, Han Sung(정한성) ORCID logo https://orcid.org/0000-0003-2795-531X
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/200408
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