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成骨细胞系细胞中Gα11的过表达抑制对间歇性甲状旁腺激素和运动的骨合成反应。

Overexpression of Gα11 in Osteoblast Lineage Cells Suppresses the Osteoanabolic Response to Intermittent PTH and Exercise.

作者信息

Dela Cruz Ariana, Grynpas Marc D, Mitchell Jane

机构信息

Department of Pharmacology and Toxicology, University of Toronto, Toronto, ON, Canada.

Department of Laboratory Medicine and Pathobiology, University of Toronto, Toronto, ON, Canada.

出版信息

Calcif Tissue Int. 2016 Oct;99(4):423-34. doi: 10.1007/s00223-016-0158-y. Epub 2016 Jun 14.

DOI:10.1007/s00223-016-0158-y
PMID:27300035
Abstract

Intermittent parathyroid hormone (iPTH) treatment and mechanical loading are osteoanabolic stimuli that are partially mediated through actions on G protein-coupled receptors (GPCRs). GPCR signaling can be altered by heterotrimeric G protein Gα subunits levels, which can therefore lead to altered responses to such stimuli. Previous studies have suggested that enhanced signaling through the Gαq/11 pathway inhibits the osteoanabolic actions of PTH. The influence of Gαq/11 signaling on mechanotransduction, however, has not been reported in vivo. Using transgenic mice that specifically overexpress Gα11 in osteoblast lineage cells (G11-Tg mice), we investigated the skeletal effects of elevated Gα11 levels on iPTH and mechanical loading by treadmill exercise. Both regimens increased trabecular and cortical bone in Wild-Type (WT) mice as a result of increased bone formation. In G11-Tg mice, there was no change in trabecular or cortical bone and no increase in bone formation in response to iPTH or exercise. While exercise reduced osteoclast parameters in WT mice, these changes were diminished in G11-Tg mice as expression of M-csf and Trap remained increased. Collectively, our results suggest that osteoblastic upregulation of Gα11 is inhibitory to osteoanabolic actions of both PTH and exercise, and that its suppression may be a promising target for treating bone loss.

摘要

间歇性甲状旁腺激素(iPTH)治疗和机械负荷是骨合成代谢刺激因素,其部分作用是通过作用于G蛋白偶联受体(GPCRs)介导的。GPCR信号传导可因异三聚体G蛋白Gα亚基水平的改变而改变,因此可能导致对此类刺激的反应改变。先前的研究表明,通过Gαq/11途径增强的信号传导会抑制PTH的骨合成代谢作用。然而,Gαq/11信号传导对机械转导的影响在体内尚未见报道。我们使用在成骨细胞谱系细胞中特异性过表达Gα11的转基因小鼠(G11-Tg小鼠),通过跑步机运动研究了Gα11水平升高对iPTH和机械负荷的骨骼影响。由于骨形成增加,这两种方案均增加了野生型(WT)小鼠的小梁骨和皮质骨。在G11-Tg小鼠中,小梁骨或皮质骨没有变化,对iPTH或运动的反应中骨形成也没有增加。虽然运动降低了WT小鼠的破骨细胞参数,但在G11-Tg小鼠中这些变化减弱,因为M-csf和Trap的表达仍然增加。总的来说,我们的结果表明,成骨细胞中Gα11的上调对PTH和运动的骨合成代谢作用具有抑制作用,其抑制可能是治疗骨质流失的一个有前景的靶点。

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