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Published on: July 17, 2019
MicroRNA-451 blockade promotes osteoblastic differentiation and skeletal anabolic effects by promoting YWHAZ-mediated
Jieen Pan1, Chenglong Huang1, Gang Chen1
1Department of Orthopaedics , The Second Hospital of Jiaxing , No. 1518, Huancheng Road Nanhu District , Jiaxing 314000 , Zhejiang Province , P.R. China .
Abstract:
Background: senile osteoporosis researchers are now seeking to promote osteoblastogenesis and resultant bone formation to directly counteract age-related bone loss. Targeting microRNA (miRNA) activity in adult osteoblasts may be a successful therapeutic strategy for age-related bone loss. We investigated the mechanism(s) by which miRNAs negatively regulate osteoblastogenesis and bone formation in vitro and in vivo. Methods: we performed a miRNA microarray screen followed by PCR validation in adult bone marrow-derived mesenchymal stem cells during the proliferation-to-mineralization transition to identify downregulated miRNAs, most notably miR-451. Primary human calvarial pre-osteoblasts were isolated and transfected with miR-451's agomir or antagomir for in vitro assays. Bioinformatics analysis and in vitro experiments verified YWHAZ as a miR-451 target gene. We next investigated the effects of YWHAZ knockdown on osteoblastic differentiation. To examine the effects of miR-451's antagomir in vivo, we injected ovariectomized (OVX) or sham-operated mice with miR-451's antagomir over a period of six weeks. We isolated stromal cells from murine bone marrow on week six for further ex vivo experimentation. Results: miR-451's antagomir stimulated pre-osteoblast differentiation into a more differentiated, mineralized phenotype. This phenotype was associated with upregulated RUNX2, ALP, and COL1A1 protein expression. miR-451's antagomir derepresses YWHAZ expression, thereby enhancing RUNX2 protein stability and promoting osteoblastic differentiation. When injected in vivo, miR-451's antagomir promotes osteoblastogenesis and mineralization, reversed OVX-induced bone loss, and increased bone strength in OVX and sham-operated mice. Conclusions: miR-451 suppresses osteoblastogenesis in vitro and in vivo. miR-451 inhibition may serve as an effective anabolic therapeutic strategy in senile osteoporosis patients.
Insights
Inhibiting miR-451 promotes osteoblastogenesis and bone formation, offering a potential therapeutic strategy for senile osteoporosis. This study reveals miR-451
Area of Science:
- Molecular Biology
- Cell Biology
- Bone Biology
Background:
- Senile osteoporosis is characterized by age-related bone loss, necessitating strategies to promote bone formation.
- MicroRNAs (miRNAs) are investigated as potential therapeutic targets for age-related bone loss by modulating osteoblast activity.
- Understanding miRNA-mediated regulation of osteoblastogenesis is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the role of miRNAs in negatively regulating osteoblastogenesis and bone formation.
- To identify specific miRNAs involved in suppressing osteoblast differentiation and bone mineralization.
- To explore the therapeutic potential of targeting miR-451 for treating senile osteoporosis.
Main Methods:
- miRNA microarray screening and PCR validation in mesenchymal stem cells to identify downregulated miRNAs, focusing on miR-451.
- In vitro studies using human pre-osteoblasts transfected with miR-451 agomir/antagomir to assess osteoblast differentiation.
- In vivo experiments involving ovariectomized (OVX) mice treated with miR-451 antagomir to evaluate bone loss reversal and bone strength.
Main Results:
- miR-451 inhibition (antagomir) stimulated pre-osteoblast differentiation and mineralization, increasing RUNX2, ALP, and COL1A1 expression.
- miR-451 targets YWHAZ, and its inhibition enhances RUNX2 protein stability, promoting osteoblastic differentiation.
- In vivo administration of miR-451 antagomir reversed OVX-induced bone loss and improved bone strength in mice.
Conclusions:
- miR-451 actively suppresses osteoblastogenesis and bone formation both in vitro and in vivo.
- Inhibition of miR-451 demonstrates significant anabolic effects on bone.
- Targeting miR-451 represents a promising therapeutic strategy for senile osteoporosis.
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