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Published on: March 22, 2024
Glucocorticoids inhibit the maturation of committed osteoblasts via SOX2
Jin Hong Chen1, Chen Shen1, Ha Ram Oh1
1Division of Endocrinology and Metabolism, Department of Internal Medicine, Jeonbuk National University Medical School, Research Institute of Clinical Medicine of Jeonbuk National University-Biomedical Research Institute of Jeonbuk National University Hospital, Jeonju, Republic of Korea.
Abstract:
During bone formation, mesenchymal progenitor cells mature into bone-forming osteoblasts after undergoing several stages of differentiation. Impaired bone formation is a predominant finding in glucocorticoid (GC)-induced osteoporosis (GIO). Osteoblasts at different stages of maturation can be affected by excessive endogenous or therapeutic GCs. Sex-determining region Y-box 2 (SOX2) is normally expressed in immature osteoblasts, but its overexpression can suppress osteoblast differentiation. This study aimed to evaluate whether GC affects SOX2 expression in osteoblasts, and whether SOX2 contributes to GC-induced inhibition of osteoblast differentiation. Treatment with GCs such as dexamethasone (Dex) or hydrocortisone enhanced SOX2 expression. Silencing SOX2 improved inhibition of GC-induced osteoblast differentiation, whereas SOX2 overexpression decreased mineralized nodule formation and RUNX2 and Osterix expression in MC3T3-E1 cells. On the contrary, when C3H10T1/2 uncommitted mesenchymal stem cells were subjected to SOX2 overexpression, RUNX2 expression increased. As a mechanism of Dex-induced SOX2 upregulation in preosteoblasts, we found that the STAT3 pathway or GC receptor (GR) is involved, using a GR antagonist, STAT3 regulators, and chromatin immunoprecipitation assays. Moreover, mice treated with Dex for 4 weeks showed a notable increase in SOX2 expression in the bones and an increased ratio of procollagen type 1 N-terminal propeptide to osteocalcin in the plasma than in control mice. This study demonstrated that GC enhances SOX2 expression in vitro in osteoblast and in vivo in the mice bone, which affects bone-forming activity differently depending on the differentiation stage of osteoblast-lineage cells. Our results provide new insights into prevention and treatment against impaired bone formation in GIO.
Insights
Glucocorticoids increase SOX2 in bone cells, hindering bone formation. Reducing SOX2 can reverse this effect, offering new strategies for treating glucocorticoid-induced osteoporosis.
Area of Science:
- Cell Biology
- Endocrinology
- Orthopedics
Background:
- Glucocorticoids (GCs) impair bone formation, a key issue in glucocorticoid-induced osteoporosis (GIO).
- Sex-determining region Y-box 2 (SOX2) normally functions in immature osteoblasts but can inhibit differentiation when overexpressed.
Purpose of the Study:
- To investigate if GCs affect SOX2 expression in osteoblasts.
- To determine SOX2's role in GC-induced inhibition of osteoblast differentiation.
Main Methods:
- Treatment of osteoblast cell lines (MC3T3-E1, C3H10T1/2) with GCs (dexamethasone, hydrocortisone).
- SOX2 gene silencing and overexpression experiments.
- Analysis of osteoblast differentiation markers (mineralized nodule formation, RUNX2, Osterix).
- Investigation of signaling pathways (STAT3, GC receptor) using antagonists, regulators, and chromatin immunoprecipitation.
- In vivo study using mice treated with dexamethasone.
Main Results:
- GC treatment (dexamethasone, hydrocortisone) increased SOX2 expression in osteoblasts.
- Silencing SOX2 ameliorated GC-induced differentiation inhibition.
- SOX2 overexpression decreased differentiation markers in MC3T3-E1 cells but increased RUNX2 in C3H10T1/2 cells.
- The STAT3 pathway and GC receptor are involved in dexamethasone-induced SOX2 upregulation.
- Dexamethasone-treated mice showed increased bone SOX2 expression and altered bone turnover markers.
Conclusions:
- GCs enhance SOX2 expression in osteoblasts both in vitro and in vivo.
- SOX2 plays a complex role in osteoblast differentiation, with stage-dependent effects.
- Targeting SOX2 may offer a novel therapeutic approach for GIO.
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