4.4 Article

Differentiation of human dental stem cells reveals a role for microRNA-218

期刊

JOURNAL OF PERIODONTAL RESEARCH
卷 49, 期 1, 页码 110-120

出版社

WILEY-BLACKWELL
DOI: 10.1111/jre.12086

关键词

cell dierentiation; messenger RNA; osteogenesis; RNA induced silencing complex; RUNX2; stem cells

资金

  1. UTHSC-H start-up funds
  2. National Institutes of Health grants [DE13941, DE18885]
  3. UT-Institutional Review Board [HSC-DB-10-0417]

向作者/读者索取更多资源

Background: Regeneration of lost periodontium is the ultimate goal of periodontal therapy. Advances in tissue engineering have demonstrated the multilineage potential and plasticity of adult stem cells located in periodontal apparatus. However, it remains unclear how epigenetic mechanisms controlling signals determine tissue specification and cell lineage decisions. To date, no data are available on micro-RNA (miRNA) activity behind human-derived dental stem cells (DSCs). Material and Methods: In this study, we isolated periodontal ligament stem cells, dental pulp stem cells and gingival stem cells from extracted third molars; human bone marrow stem cells were used as a positive control. The expression of OCT4A and NANOG was confirmed in these undifferentiated cells. All cells were cultured under osteogenic inductive conditions and RUNX2 expression was analyzed as a marker of mineralized tissue differentiation. The miRNA expression profile was obtained at baseline and after osteogenic induction in all cell types. Results: The expression of RUNX2 demonstrated successful osteogenic induction of all cell types, which was confirmed by alizarin red stain. The analysis of 765 miRNAs demonstrated a shift in miRNA expression that occurred in all four stem cell types, including a decrease in hsa-mir-218 across all differentiated cell populations. Hsa-mir-218 targets RUNX2 and decreases RUNX2 expression in undifferentiated human DSCs. DSC mineralized tissue type differentiation is associated with a decrease in hsa-mir-218 expression. Conclusion: These data reveal a miRNA-regulated pathway for the differentiation of human DSCs and a select network of human miRNAs that control DSC osteogenic differentiation.

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