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Mechanically induced Ca2+ oscillations in osteocytes release extracellular vesicles and enhance bone formation

机译:机械诱导骨细胞中的Ca2 +振荡释放细胞外囊泡并增强骨形成

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摘要

The vast osteocytic network is believed to orchestrate bone metabolic activity in response to mechanical stimuli through production of sclerostin, RANKL, and osteoprotegerin (OPG). However, the mechanisms of osteocyte mechanotransduction remain poorly understood. We’ve previously shown that osteocyte mechanosensitivity is encoded through unique intracellular calcium (Ca2+) dynamics. Here, by simultaneously monitoring Ca2+ and actin dynamics in single cells exposed to fluid shear flow, we detected actin network contractions immediately upon onset of flow-induced Ca2+ transients, which were facilitated by smooth muscle myosin and further confirmed in native osteocytes ex vivo. Actomyosin contractions have been linked to the secretion of extracellular vesicles (EVs), and our studies demonstrate that mechanical stimulation upregulates EV production in osteocytes through immunostaining for the secretory vesicle marker Lysosomal-associated membrane protein 1 (LAMP1) and quantifying EV release in conditioned medium, both of which are blunted when Ca2+ signaling was inhibited by neomycin. Axial tibia compression was used to induce anabolic bone formation responses in mice, revealing upregulated LAMP1 and expected downregulation of sclerostin in vivo. This load-related increase in LAMP1 expression was inhibited in neomycin-injected mice compared to vehicle. Micro-computed tomography revealed significant load-related increases in both trabecular bone volume fraction and cortical thickness after two weeks of loading, which were blunted by neomycin treatment. In summary, we found mechanical stimulation of osteocytes activates Ca2+-dependent contractions and enhances the production and release of EVs containing bone regulatory proteins. Further, blocking Ca2+ signaling significantly attenuates adaptation to mechanical loading in vivo, suggesting a critical role for Ca2+-mediated signaling in bone adaptation.
机译:据信,庞大的骨细胞网络通过产生硬化素,RANKL和骨保护素(OPG)来响应机械刺激来协调骨骼代谢活动。然而,对骨细胞机械转导的机制仍知之甚少。我们之前已经证明,骨细胞的机械敏感性是通过独特的细胞内钙(Ca 2 + )动态来编码的。在这里,通过同时监测暴露于流体剪切流的单个细胞中Ca 2 + 和肌动蛋白的动力学,我们在流诱导的Ca 2 + 瞬变发生时立即检测到肌动蛋白网络收缩。 ,这由平滑肌肌球蛋白促进,并在离体的天然骨细胞中进一步证实。肌动球蛋白的收缩与细胞外小泡(EV)的分泌有关,我们的研究表明机械刺激通过对分泌小泡标记物溶酶体相关膜蛋白1(LAMP1)进行免疫染色并定量在条件培养基中的EV释放来上调骨细胞中的EV产生。 ,当新霉素抑制Ca 2 + 信号时,两者均变钝。轴向胫骨压缩被用于在小鼠中诱导合成代谢骨形成反应,揭示了体内硬化蛋白的LAMP1上调和预期的下调。与媒介物相比,在注射新霉素的小鼠中LAMP1表达的这种与负荷相关的增加受到抑制。微型计算机断层扫描显示两周负荷后,小梁骨体积分数和皮质厚度均明显增加了与负荷相关的增加,这被新霉素治疗所抑制。综上所述,我们发现骨细胞的机械刺激激活了Ca 2 + 依赖性收缩,并增强了含有骨调节蛋白的EV的产生和释放。此外,阻断Ca 2 + 信号传导可显着减弱体内对机械负荷的适应性,提示Ca 2 + 介导的信号传导在骨骼适应中起关键作用。

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