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Let-7f-5p regulates TGFBR1 in glucocorticoid-inhibited osteoblast differentiation and ameliorates
Geng-Yang Shen1,2,3, Hui Ren1,2,3, Qi Shang1,3
1Guangzhou University of Chinese Medicine, Guangzhou 510405, China.
Abstract:
Previous studies indicated that let-7 enhances osteogenesis and bone formation of human adipose-derived mesenchymal stem cells (MSCs). We also have confirmed that let-7f-5p expression was upregulated during osteoblast differentiation in rat bone marrow-derived MSCs (BMSCs) and was downregulated in the vertebrae of patients with glucocorticoid (GC)-induced osteoporosis (GIOP). The study was performed to determine the role of let-7f-5p in GC-inhibited osteogenic differentiation of murine BMSCs in vitro and in GIOP in vivo. Here, we report that dexamethasone (Dex) inhibited osteogenic differentiation of BMSCs and let-7f-5p expression, while increasing the expression of transforming growth factor beta receptor 1 (TGFBR1), a direct target of let-7f-5p during osteoblast differentiation under Dex conditions. In addition, let-7f-5p promoted osteogenic differentiation of BMSCs, as indicated by the promotion of alkaline phosphatase (ALP) staining and activity, Von Kossa staining, and osteogenic marker expression (Runx2,Osx, Alp, and Ocn), but decreased TGFBR1 expression in the presence of Dex. However, overexpression of TGFBR1 reversed the upregulation of let-7f-5p during Dex-treated osteoblast differentiation. Knockdown of TGFBR1 reversed the effect of let-7f-5p downregulation during Dex-treated osteogenic differentiation of BMSCs. We also found that glucocorticoid receptor (GR) mediated transcriptional silencing of let-7f-5p and its knockdown enhanced Dex-inhibited osteogenic differentiation. Further, when injected in vivo, agomiR-let-7f-5p significantly reversed bone loss induced by Dex, as well as increased osteogenic marker expression (Runx2, Osx, Alp, and Ocn) and decreased TGFBR1 expression in bone extracts. These findings indicated that the regulatory axis of GR/let-7f-5p/TGFBR1 may be important for Dex-inhibited osteoblast differentiation and that let-7f-5p may be a useful therapeutic target for GIOP.
Insights
Glucocorticoid-induced osteoporosis (GIOP) involves decreased let-7f-5p, which impairs bone formation. Restoring let-7f-5p function reverses bone loss and promotes osteogenesis, suggesting it as a therapeutic target for GIOP.
Area of Science:
- Stem Cell Biology
- Molecular Endocrinology
- Bone Biology
Background:
- let-7 microRNAs are known to regulate osteogenesis.
- Glucocorticoids (GCs) induce osteoporosis (GIOP), a condition characterized by impaired bone formation.
- let-7f-5p is downregulated in GIOP and during GC-inhibited osteoblast differentiation.
Purpose of the Study:
- To investigate the role of let-7f-5p in glucocorticoid (GC)-inhibited osteogenic differentiation of murine bone marrow-derived mesenchymal stem cells (BMSCs) in vitro and in GIOP in vivo.
Main Methods:
- Murine BMSCs were treated with dexamethasone (Dex) to mimic GC effects.
- let-7f-5p expression, osteogenic differentiation markers (ALP, Runx2, Osx, Ocn), and TGFBR1 expression were analyzed.
- TGFBR1 was manipulated (overexpression/knockdown) to assess its interaction with let-7f-5p.
- Glucocorticoid receptor (GR) mediated silencing of let-7f-5p was investigated.
- AgomiR-let-7f-5p was administered in vivo to evaluate its effect on Dex-induced bone loss.
Main Results:
- Dexamethasone (Dex) inhibited BMSC osteogenic differentiation and downregulated let-7f-5p, while upregulating TGFBR1.
- let-7f-5p overexpression promoted osteogenesis and decreased TGFBR1 under Dex conditions.
- TGFBR1 manipulation affected let-7f-5p-mediated osteogenesis.
- GR mediated the silencing of let-7f-5p by Dex.
- In vivo administration of agomiR-let-7f-5p reversed Dex-induced bone loss and increased osteogenic markers.
Conclusions:
- The GR/let-7f-5p/TGFBR1 axis plays a crucial role in GC-inhibited osteoblast differentiation.
- let-7f-5p acts as a positive regulator of osteogenesis and a negative regulator of TGFBR1.
- let-7f-5p represents a potential therapeutic target for treating glucocorticoid-induced osteoporosis (GIOP).
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