Related Experiment Video
Updated: Nov 29, 2025

Author Spotlight: Comparing Alveolar and Long Bone Remodeling to Explore OTM Model Potential
Published on: July 21, 2023
Silencing of miR-138-5p sensitizes bone anabolic action to mechanical stimuli
Zhihao Chen1,2, Fan Zhao1,2, Chao Liang2,3,4
1Lab for Bone Metabolism, Xi'an Key Laboratory of Special Medicine and Health Engineering, Key Lab for Space Biosciences and Biotechnology, Research Center for Special Medicine and Health Systems Engineering, NPU-UAB Joint Laboratory for Bone Metabolism, School of Life Sciences, Northwestern Polytechnical University, Xi'an, Shaanxi, 710072, China.
Abstract:
Emerging evidence is revealing that microRNAs (miRNAs) play essential roles in mechanosensing for regulating osteogenesis. However, no mechanoresponsive miRNAs have been identified in human bone specimens. Methods: Bedridden and aged patients, hindlimb unloaded and aged mice, and Random Positioning Machine and primary aged osteoblasts were adopted to simulate mechanical unloading conditions at the human, animal and cellular levels, respectively. Treadmill exercise and Flexcell cyclic mechanical stretching were used to simulate mechanical loading in vivo and in vitro, respectively. Results: Here, we found increased miR-138-5p levels with a lower degree of bone formation in bone specimens from bedridden and aged patients. Loss- and gain-of-function studies showed that miR-138-5p directly targeted microtubule actin crosslinking factor 1 (MACF1) to inhibit osteoblast differentiation under different mechanical conditions. Regarding translational medicine, bone-targeted inhibition of miR-138-5p attenuated the decrease in the mechanical bone anabolic response in hindlimb unloaded mice. Moreover, bone-targeted inhibition of miR-138-5p sensitized the bone anabolic response to mechanical loading in both miR-138-5p transgenic mice and aged mice to promote bone formation. Conclusion: These data suggest that miR-138-5p as a mechanoresponsive miRNA accounts for the mechanosensitivity of the bone anabolic response and that inhibition of miR-138-5p in osteoblasts may be a novel bone anabolic sensitization strategy for ameliorating disuse or senile osteoporosis.
Insights
MicroRNAs (miRNAs) regulate bone formation. This study identifies miR-138-5p as a key mechanoresponsive miRNA in human bone, showing its inhibition promotes bone anabolism, offering a new strategy for osteoporosis.
Area of Science:
- Biomedical Engineering
- Molecular Biology
- Orthopedics
Background:
- MicroRNAs (miRNAs) are increasingly recognized for their role in osteogenesis and mechanosensing.
- Identifying mechanoresponsive miRNAs in human bone is crucial for understanding bone adaptation.
- Mechanical unloading contributes to bone loss in conditions like osteoporosis.
Purpose of the Study:
- To identify mechanoresponsive miRNAs in human bone specimens.
- To investigate the role of miR-138-5p in osteoblast differentiation under mechanical stress.
- To evaluate the therapeutic potential of inhibiting miR-138-5p for bone anabolic response.
Main Methods:
- Simulated mechanical unloading using bedridden patients, hindlimb unloaded mice, and Random Positioning Machine.
- Mechanical loading simulated via treadmill exercise and cyclic stretching.
- Loss- and gain-of-function studies of miR-138-5p and its target MACF1 in osteoblasts.
Main Results:
- Increased miR-138-5p levels correlated with reduced bone formation in aged and bedridden patients.
- miR-138-5p directly targets MACF1, inhibiting osteoblast differentiation under mechanical conditions.
- Bone-targeted inhibition of miR-138-5p improved mechanical bone anabolic response in unloaded and aged mice.
Conclusions:
- miR-138-5p is a key mechanoresponsive miRNA influencing bone anabolic response.
- Inhibition of miR-138-5p in osteoblasts represents a potential strategy for treating disuse or senile osteoporosis.
- Targeting miR-138-5p can enhance bone formation by sensitizing the anabolic response to mechanical stimuli.
Related Concept Videos
Bone Remodeling
Osteoclasts in Bone Remodeling

