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MicroRNA-221 promotes cell proliferation, migration, and differentiation by regulation of ZFPM2 in osteoblasts
Xingguo Zheng1, Jinhua Dai2, Haijun Zhang1
1Department of Orthopaedics, Ningbo No. 2 Hospital, Ningbo, China.
Abstract:
Bone fracture is a common medical condition, which may occur due to traumatic injury or disease-related conditions. Evidence suggests that microRNAs (miRNAs) can regulate osteoblast differentiation and function. In this study, we explored the effects and mechanism of miR-221 on the growth and migration of osteoblasts using MC3T3-E1 cells. The expression levels of miR-221 in the different groups were measured by qRT-PCR. Then, miR-221 mimic and inhibitor were transfected into MC3T3-E1 cells, and cell viability and migration were measured using the CCK-8 assay and the Transwell migration assay. Additionally, the expression levels of differentiation-related factors (Runx2 and Ocn) and ZFPM2 were measured by qRT-PCR. Western blot was used to measure the expression of cell cycle-related proteins, epithelial-mesenchymal transition (EMT)-related proteins, ZFPM2, and Wnt/Notch, and Smad signaling pathway proteins. miR-221 was significantly up-regulated in the patients with lumbar compression fracture (LCM) and trochanteric fracture (TF). miR-221 promoted ALP, Runx2, and OPN expressions in MC3T3-E1 cells. miR-221 overexpression significantly increased cell proliferation, migration, differentiation, and matrix mineralization, whereas suppression of miR-221 reversed these effects. Additionally, the results displayed that ZFPM2 was a direct target gene of miR-221, and overexpression of ZFPM2 reversed the promoting effects of miR-221 overexpression on osteoblasts. Mechanistic study revealed that overexpression of miR-221 inactivated the Wnt/Notch and Smad signaling pathways by regulating ZFPM2 expression. We drew the conclusions that miR-221 overexpression promoted osteoblast proliferation, migration, and differentiation by regulation of ZFPM2 expression and deactivating the Wnt/Notch and Smad signaling pathways.
Insights
MicroRNA-221 (miR-221) promotes bone fracture healing by enhancing osteoblast function. This study found miR-221 up-regulation in fractures and demonstrated its role in osteoblast proliferation, migration, and differentiation via the ZFPM2 gene and Wnt/Notch signaling.
Area of Science:
- Biochemistry
- Molecular Biology
- Orthopedics
Background:
- Bone fractures are common, and microRNAs (miRNAs) are implicated in osteoblast function.
- Understanding miRNA roles is crucial for developing fracture healing therapies.
Purpose of the Study:
- To investigate the effect and mechanism of miR-221 on osteoblast growth and migration.
- To explore miR-221's role in bone fracture healing.
Main Methods:
- Quantitative real-time PCR (qRT-PCR) for miR-221 and gene expression.
- Cell viability (CCK-8) and migration (Transwell) assays.
- Western blot for protein expression and signaling pathways (Wnt/Notch, Smad).
Main Results:
- miR-221 was upregulated in patients with lumbar compression and trochanteric fractures.
- miR-221 overexpression enhanced osteoblast proliferation, migration, differentiation, and mineralization.
- miR-221 targeted ZFPM2, inhibiting Wnt/Notch and Smad pathways.
Conclusions:
- miR-221 promotes osteoblast proliferation, migration, and differentiation.
- The mechanism involves regulating ZFPM2 expression and deactivating Wnt/Notch and Smad signaling pathways.
- miR-221 is a potential therapeutic target for bone fracture healing.
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