TY - JOUR
T1 - Fibulin-1 Regulates Initiation of Successional Dental Lamina
AU - Li, G.
AU - Li, Q.
AU - Shen, Z.
AU - Lin, X.
AU - Li, X.
AU - Wang, J.
AU - Zhao, B.
AU - Feng, Y.
AU - Feng, L.
AU - Guo, W.
AU - Hu, L.
AU - Wang, J.
AU - Zhang, C.
AU - Fan, Z.
AU - Wang, S.
AU - Wu, X.
N1 - Publisher Copyright:
© International Association for Dental, Oral, and Craniofacial Research and American Association for Dental, Oral, and Craniofacial Research 2023.
PY - 2023/10
Y1 - 2023/10
N2 - In humans, teeth are replaced only once, and the successional dental lamina (SDL) of the permanent tooth is maintained in a quiescent state until adolescence. Recently, we showed that biomechanical stress generated by the rapid growth of the deciduous tooth inhibits SDL development via integrin β1–RUNX2 signaling at embryonic day 60 (E60) in miniature pigs. However, the mechanism by which RUNX2 regulates SDL initiation within the SDL stem cell niche remains unclear. In the current study, we transcriptionally profiled single cells from SDL and surrounding mesenchyme at E60 and identified the landscape of cellular heterogeneity. We then identified a specific fibroblast subtype in the dental follicle mesenchyme between the deciduous tooth and the SDL of the permanent tooth (DFDP), which constitutes the inner part of the niche (deciduous tooth side). Compared with traditional dental follicle cells, the specific expression profile of DFDP was identified and found to be related to biomechanical stress. Subsequently, we found that RUNX2 could bind to the enhancer regions of Fbln1 (gene of fibulin-1), one of the marker genes for DFDP. Through gain- and loss-of-function experiments, we proved that the biomechanical stress–mediated RUNX2–fibulin-1 axis inhibits the initiation of SDL by maintaining SDL niche homeostasis.
AB - In humans, teeth are replaced only once, and the successional dental lamina (SDL) of the permanent tooth is maintained in a quiescent state until adolescence. Recently, we showed that biomechanical stress generated by the rapid growth of the deciduous tooth inhibits SDL development via integrin β1–RUNX2 signaling at embryonic day 60 (E60) in miniature pigs. However, the mechanism by which RUNX2 regulates SDL initiation within the SDL stem cell niche remains unclear. In the current study, we transcriptionally profiled single cells from SDL and surrounding mesenchyme at E60 and identified the landscape of cellular heterogeneity. We then identified a specific fibroblast subtype in the dental follicle mesenchyme between the deciduous tooth and the SDL of the permanent tooth (DFDP), which constitutes the inner part of the niche (deciduous tooth side). Compared with traditional dental follicle cells, the specific expression profile of DFDP was identified and found to be related to biomechanical stress. Subsequently, we found that RUNX2 could bind to the enhancer regions of Fbln1 (gene of fibulin-1), one of the marker genes for DFDP. Through gain- and loss-of-function experiments, we proved that the biomechanical stress–mediated RUNX2–fibulin-1 axis inhibits the initiation of SDL by maintaining SDL niche homeostasis.
KW - biomechanical phenomena
KW - core binding factor alpha 1 subunit (runx2)
KW - homeostasis
KW - stem cell niche
KW - tooth germ
KW - transcriptome
UR - https://www.scopus.com/pages/publications/85165283971
U2 - 10.1177/00220345231182052
DO - 10.1177/00220345231182052
M3 - 文章
C2 - 37448354
AN - SCOPUS:85165283971
SN - 0022-0345
VL - 102
SP - 1220
EP - 1230
JO - Journal of Dental Research
JF - Journal of Dental Research
IS - 11
ER -