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Enhancement of Osteoclastic Bone Resorption and Suppression of Osteoblastic Bone Formation in Response to Reduced Mechanical Stress Do Not Occur in the Absence of Osteopontin

机译:在缺乏骨桥蛋白的情况下,不会因减少机械应力而增强成骨细胞吸收和抑制成骨细胞形成

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摘要

Reduced mechanical stress to bone in bedridden patients and astronauts leads to bone loss and increase in fracture risk which is one of the major medical and health issues in modern aging society and space medicine. However, no molecule involved in the mechanisms underlying this phenomenon has been identified to date. Osteopontin (OPN) is one of the major noncollagenous proteins in bone matrix, but its function in mediating physical-force effects on bone in vivo has not been known. To investigate the possible requirement for OPN in the transduction of mechanical signaling in bone metabolism in vivo, we examined the effect of unloading on the bones of OPN−/− mice using a tail suspension model. In contrast to the tail suspension–induced bone loss in wild-type mice, OPN−/− mice did not lose bone. Elevation of urinary deoxypyridinoline levels due to unloading was observed in wild-type but not in OPN−/− mice. Analysis of the mechanisms of OPN deficiency–dependent reduction in bone on the cellular basis resulted in two unexpected findings. First, osteoclasts, which were increased by unloading in wild-type mice, were not increased by tail suspension in OPN−/− mice. Second, measures of osteoblastic bone formation, which were decreased in wild-type mice by unloading, were not altered in OPN−/− mice. These observations indicate that the presence of OPN is a prerequisite for the activation of osteoclastic bone resorption and for the reduction in osteoblastic bone formation in unloaded mice. Thus, OPN is a molecule required for the bone loss induced by mechanical stress that regulates the functions of osteoblasts and osteoclasts.
机译:卧床患者和宇航员对骨骼的机械应力降低导致骨骼损失和骨折风险增加,这是现代老龄化社会和太空医学中的主要医学和健康问题之一。但是,迄今为止,尚未发现参与该现象潜在机理的分子。骨桥蛋白(OPN)是骨基质中主要的非胶原蛋白之一,但其在体内介导物理力对骨骼的作用的功能尚不清楚。为了研究体内骨骼代谢中机械信号转导中OPN的可能需求,我们使用尾部悬浮模型检查了卸荷对OPN-/-小鼠骨骼的影响。与野生型小鼠的尾部悬浮引起的骨质流失相反,OPN-/-小鼠没有骨质流失。在野生型中观察到由于卸载引起的尿中脱氧吡啶并啉水平升高,但在OPN-/-小鼠中未观察到。在细胞基础上对OPN缺乏依赖性骨骼减少的机制进行分析,得出了两个意想不到的发现。首先,破骨细胞在野生型小鼠中因卸载而增加,而在OPN-/-小鼠中尾部悬垂并未增加。其次,成骨细胞形成的措施在野生型小鼠中通过卸荷减少了,而在OPN-/-小鼠中没有改变。这些观察结果表明,OPN的存在是激活空骨小鼠破骨细胞骨吸收和减少成骨细胞形成的先决条件。因此,OPN是调节机械性成骨细胞和破骨细胞功能的机械应力引起的骨质损失所需的分子。

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