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Mesenchymal Stem Cell Regulation of Macrophage Phagocytosis; Quantitation and Imaging
Published on: July 16, 2021
miR-16-2* Interferes with WNT5A to Regulate Osteogenesis of Mesenchymal Stem Cells
Lijun Duan1,2, He Zhao1, Yang Xiong1
1Department of Orthopedics, Dongzhimen Hospital, Beijing University of Chinese Medicine, Beijing, China.
Background/Aims:
Osteoporosis is a bone metabolic disease characterized by a systemic impairment of bone mass, which results in increased propensity of fragility fractures. A reduction in the differentiation of MSCs into osteoblasts contributes to the impaired bone formation observed in osteoporosis. Mesenchymal stem cells (MSCs) are induced to differentiate into preosteoblasts, which are regulated by the signaling cascades initiated by the various signals, including miRNAs. miR-16-2* is a newly discovered miRNA that participates in diagnosis and prognosis of hepatocellular carcinoma, cervical cancer and chronic lymphocytic leukemia. However, the effect of miR-16-2* on the regulation of osteoblast differentiation and the mechanism responsible are still unclear. Here we discuss the contribution of miR-16-2* to osteoporosis, osteoblast differentiation and mineralization.
Methods:
The expression pattern of miR-16-2* during osteogenesis or in osteoporosis bone samples was validated by quantitative real-time PCR (qRT-PCR). The human bone marrow mesenchymal stem cells (hBMSCs) were induced to differentiate into osteoblasts by osteogenic induced medium containing dexamethasone, ascorbate-2-phosphat, beta-glycerophosphate and vitamin-D3. The target genes of miR-16-2* were predicted by TargetScan and PicTar. The mRNA and protein levels of osteogenic key markers were detected using qRT-PCR or western blot respectively. The WNT signal activity was analyzed by TOP/FOP reporter assay.
Results:
The expression of miR-16-2* in patient bone tissue with osteoporosis was negatively correlated with bone formation related genes. During osteoblast differentiation process, the expression of miR-16-2* was significantly decreased. Upregulation of miR-16-2* in hBMSCs impaired the osteogenic differentiation while the downregulation of miR-16-2* increased this process. Upregulation the expression of miR-16-2* could also block the WNT signal pathway by directly target WNT5A. Furthermore, knockdown of miR-16-2* could promote the activation of RUNX2, possibly by lifting the inhibitory effect of miR-16-2* on WNT pathway.
Conclusion:
Taken together, we report a novel biological role of miR-16-2* in osteogenesis through regulating WNT5A response for the first time. Our data support the potential utilization of miRNA-based therapies in regenerative medicine.
Insights
This study reveals that miR-16-2* plays a crucial role in osteoporosis by inhibiting osteoblast differentiation. Downregulating miR-16-2* promotes bone formation, suggesting potential miRNA-based therapies for osteoporosis.
Area of Science:
- Molecular Biology
- Stem Cell Biology
- Bone Metabolism
Background:
- Osteoporosis is a metabolic bone disease marked by reduced bone mass and increased fracture risk.
- Impaired osteoblast differentiation from mesenchymal stem cells (MSCs) contributes to osteoporosis.
- The role of the newly discovered microRNA, miR-16-2*, in osteoblast differentiation remains unclear.
Purpose of the Study:
- To investigate the role of miR-16-2* in osteoblast differentiation and its potential contribution to osteoporosis.
- To elucidate the molecular mechanism by which miR-16-2* regulates osteogenesis.
Main Methods:
- Quantitative real-time PCR (qRT-PCR) and Western blot to analyze gene and protein expression.
- In vitro osteogenic differentiation of human bone marrow mesenchymal stem cells (hBMSCs).
- Prediction of miR-16-2* target genes and analysis of WNT signaling pathway activity.
Main Results:
- miR-16-2* expression is negatively correlated with bone formation markers in osteoporosis patients.
- miR-16-2* expression decreases during osteogenic differentiation.
- Upregulation of miR-16-2* inhibits osteoblast differentiation and WNT5A signaling, while its downregulation promotes osteogenesis.
Conclusions:
- miR-16-2* is a novel regulator of osteogenesis, inhibiting differentiation by targeting WNT5A.
- Modulating miR-16-2* activity offers potential for miRNA-based regenerative medicine therapies for osteoporosis.
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