Lab 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.
Northwestern Polytechnical University - Hong Kong Baptist University Joint Research Centre for Translational Medicine on Musculoskeletal Health in Space, Xi'an, Shaanxi 710072, China.
Theranostics. 2020 Oct 30;10(26):12263-12278. doi: 10.7150/thno.53009. eCollection 2020.
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. 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 and , respectively. 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. 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.
越来越多的证据表明,微小 RNA(miRNA)在机械感知中发挥着重要作用,可调节成骨作用。然而,在人骨标本中尚未发现有机械应答的 miRNA。卧床和老年患者、后肢去负荷和老年小鼠以及随机定位机和原代老化成骨细胞分别被用于模拟人、动物和细胞水平的机械去负荷条件。跑步机运动和 Flexcell 循环机械拉伸分别用于模拟机械加载和机械拉伸。在这里,我们发现卧床和老年患者骨标本中 miR-138-5p 水平升高,但成骨程度降低。缺失和功能获得研究表明,miR-138-5p 可直接靶向微管肌动蛋白交联因子 1(MACF1),在不同机械条件下抑制成骨细胞分化。关于转化医学,骨靶向抑制 miR-138-5p 可减轻后肢去负荷小鼠机械性骨合成反应的下降。此外,骨靶向抑制 miR-138-5p 可增强 miR-138-5p 转基因小鼠和老年小鼠的机械加载的骨合成反应,从而促进骨形成。这些数据表明,miR-138-5p 作为机械应答 miRNA 解释了骨合成反应的机械敏感性,并且抑制成骨细胞中的 miR-138-5p 可能是改善废用性或老年性骨质疏松症的新型骨合成敏化策略。