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Published on: March 15, 2018
miR-134-5p inhibits osteoclastogenesis through a novel miR-134-5p/Itgb1/MAPK pathway
Meng Huang1, Yan Wang2, Zhenning Wang1
1Medical School of Chinese PLA, Beijing, China; Department of Orthodontics, The First Medical Center, Chinese PLA General Hospital, Beijing, China.
Abstract:
Osteoporosis affects approximately 200 million people and severely affects quality of life, but the exact pathological mechanisms behind this disease remain unclear. Various miRNAs have been shown to play a predominant role in the regulation of osteoclast formation. In this study, we explored the role of miR-134-5p in osteoclastogenesis both in vivo and in vitro. We constructed an ovariectomized (OVX) mouse model and performed microarray analysis using bone tissue from OVX mice and their control counterparts. Quantitative RT-PCR data from bone tissue and bone marrow macrophages (BMMs) confirmed the decreased expression of miR-134-5p in OVX mice observed in microarray analysis. In addition, a decrease in miR-134-5p was also observed during induced osteoclastogenesis of BMMs collected from C57BL/6N mice. Through transfection with miR-134-5p agomirs and antagomirs, we found that miR-134-5p knockdown significantly accelerated osteoclast formation and cell proliferation and inhibited apoptosis. Furthermore, a luciferase reporter assay showed that miR-134-5p directly targets the integrin surface receptor gene Itgb1. Cotransfection with Itgb1 siRNA reversed the effect of the miR-134-5p antagomir in promoting osteoclastogenesis. Moreover, the abundance levels of MAPK pathway proteins phosphorylated-p38 (p-p38) and phosphorylated-ERK (p-ERK) were significantly increased after transfection with the miR-134-5p antagomir but decreased after transfection with the miR-134-5p agomir or Itgb1 siRNA, which indicated a potential relationship between the miR-134-5p/Itgb1 axis and the MAPK pathway. Collectively, these results revealed that miR-134-5p inhibits osteoclast differentiation of BMMs both in vivo and in vitro and that the miR-134-5p/Itgb1/MAPK pathway might be a potential target for osteoporosis therapy.
Insights
MicroRNA-134-5p inhibits osteoclast formation, a key process in osteoporosis. Targeting the miR-134-5p/Itgb1/MAPK pathway may offer new osteoporosis therapies.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Osteoporosis affects millions globally, impacting quality of life, with unclear pathological mechanisms.
- MicroRNAs (miRNAs) are implicated in regulating osteoclast formation, a critical process in bone metabolism.
- Understanding specific miRNA roles is crucial for developing novel osteoporosis treatments.
Purpose of the Study:
- To investigate the role of miR-134-5p in osteoclastogenesis (osteoclast formation).
- To explore the molecular targets and signaling pathways regulated by miR-134-5p in the context of bone biology.
- To assess the therapeutic potential of the miR-134-5p pathway in osteoporosis.
Main Methods:
- Ovariectomized (OVX) mouse model construction and microarray analysis of bone tissue.
- Quantitative RT-PCR to measure miR-134-5p expression in bone tissue and bone marrow macrophages (BMMs).
- In vitro studies using BMMs with miR-134-5p agomirs/antagomirs, luciferase reporter assays, siRNA transfection, and Western blotting for MAPK pathway proteins.
Main Results:
- miR-134-5p expression was decreased in OVX mice and during induced osteoclastogenesis in BMMs.
- miR-134-5p knockdown accelerated osteoclast formation, proliferation, and inhibited apoptosis.
- miR-134-5p directly targets Itgb1, and this axis influences the MAPK pathway (p38 and ERK).
Conclusions:
- miR-134-5p inhibits osteoclast differentiation both in vivo and in vitro.
- The miR-134-5p/Itgb1/MAPK signaling pathway is a potential therapeutic target for osteoporosis.
- Further research into this pathway could lead to novel treatments for osteoporosis.
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