4.7 Article

Downregulation of ROR2 promotes dental pulp stem cell senescence by inhibiting STK4-FOXO1/SMS1 axis in sphingomyelin biosynthesis

Journal

AGING CELL
Volume 20, Issue 8, Pages -

Publisher

WILEY
DOI: 10.1111/acel.13430

Keywords

dental pulp stem cells; FOXO1; ROR2; senescence; SMS1

Funding

  1. Beijing Science and Technology Achievement Transformation Coordination
  2. Service Platform Construction Special Programme
  3. International Health Cooperation Programme [20-07-05]
  4. National Natural Science Foundation of China [81600237]
  5. Excellent Youth Science Foundation of Hebei Province [H2019206536]

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The research revealed the crucial role of ROR2 in DPSC aging, where it regulates the proliferation of DPSCs by inhibiting the synthesis of SM through the STK4 and FOXO1 pathway, presenting a new target for combating aging.
Dental pulp stem cells (DPSCs) play a vital role in tooth restoration, regeneration, and homeostasis. The link between DPSC senescence and tooth aging has been well-recognized. ROR2 plays an important role in aging-related gene expression. However, the expression and function of ROR2 in DPSC aging remain largely unknown. In this study, we found that ROR2 expression was significantly decreased in aged pulp tissues and DPSCs. The depletion of ROR2 in young DPSCs inhibits their self-renewal capacity, while its overexpression in aged DPSCs restores their self-renewal capacity. Interestingly, we found that sphingomyelin (SM) is involved in the senescence of DPSCs regulated by ROR2. Mechanistically, we confirmed that ROR2 inhibited the phosphorylation of STK4, which promoted the translocation of Forkhead Box O1 (FOXO1) to the nucleus. STK4 inhibition or knockdown of FOXO1 markedly increased the proliferation of DPSCs and upregulated the expression of SMS1, which catalyzed SM biogenesis. Moreover, FOXO1 directly bound to the SMS1 promoter, repressing its transcription. Our findings demonstrated the critical role of the ROR2/STK4-FOXO1/SMS1 axis in the regulation of SM biogenesis and DPSC senescence, providing a novel target for antagonizing tooth aging.

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