首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Inactivation of Regulatory-associated Protein of mTOR (Raptor)/Mammalian Target of Rapamycin Complex 1 (mTORC1) Signaling in Osteoclasts Increases Bone Mass by Inhibiting Osteoclast Differentiation in Mice
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Inactivation of Regulatory-associated Protein of mTOR (Raptor)/Mammalian Target of Rapamycin Complex 1 (mTORC1) Signaling in Osteoclasts Increases Bone Mass by Inhibiting Osteoclast Differentiation in Mice

机译:抑制破骨细胞分化的mTOR(猛禽)/雷帕霉素复合物1(mTORC1)哺乳动物靶标的调控相关蛋白失活增加了骨量。

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摘要

Mammalian target of rapamycin complex 1 (mTORC1) is involved in anabolic metabolism in both osteoblasts and chondrocytes, but the role of mTORC1 in osteoclast biology in vivo remains to be elucidated. In this study, we showed that deletion of regulatory-associated protein of mTOR (Raptor) in osteoclasts led to an increase in bone mass with decreased bone resorption. Raptor-deficient bone marrow-derived macrophages exhibited lower mTORC1-S6K1 signaling and retarded osteoclast differentiation, as determined by the number of osteoclasts, tartrate-resistant acid phosphatase activity, and expression of osteoclast-specific genes. Enforced expression of constitutively active S6K1 rescued the impaired osteoclast differentiation in Raptor-deficient bone marrow-derived macrophages. Furthermore, pharmacological inhibition of mTORC1 signaling by rapamycin could also inhibit osteoclast differentiation and osteoclast-specific gene expression. Taken together, our findings demonstrate that mTORC1 plays a key role in the network of catabolic bone resorption in osteoclasts and may serve as a potential pharmacological target for the regulation of osteoclast activity in bone metabolic disorders.
机译:雷帕霉素复合物1(mTORC1)的哺乳动物目标参与成骨细胞和软骨细胞的合成代谢代谢,但mTORC1在体内破骨细胞生物学中的作用尚待阐明。在这项研究中,我们表明破骨细胞中mTOR(Raptor)调节相关蛋白的缺失导致骨量增加,而骨吸收降低。猛禽缺陷型骨髓衍生的巨噬细胞表现出较低的mTORC1-S6K1信号传导,并抑制了破骨细胞分化,这取决于破骨细胞的数量,抗酒石酸酸性磷酸酶的活性以及破骨细胞特异性基因的表达。组成型活性S6K1的增强表达挽救了猛禽缺陷型骨髓衍生巨噬细胞中破骨细胞分化的受损。此外,雷帕霉素对mTORC1信号的药理抑制作用也可能抑制破骨细胞分化和破骨细胞特异性基因表达。综上所述,我们的发现表明,mTORC1在破骨细胞的分解代谢骨吸收网络中起着关键作用,并且可以作为调节骨代谢异常中破骨细胞活性的潜在药理学靶标。

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