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The mTORC2 Component Rictor Is Required for Load‐Induced Bone Formation in Late‐Stage Skeletal Cells

机译:晚期骨骼细胞中负载诱导的骨形成需要mTORC2组件立项

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摘要

Bone relies on mechanical cues to build and maintain tissue composition and architecture. Our understanding of bone cell mechanotransduction continues to evolve, with a few key signaling pathways emerging as vital. Wnt/β‐catenin, for example, is essential for proper anabolic response to mechanical stimulation. One key complex that regulates β‐catenin activity is the mammalian target of rapamycin complex 2 (mTORc2). mTORc2 is critical for actin cytoskeletal reorganization, an indispensable component in mechanotransduction in certain cell types. In this study, we probed the impact of the mTORc2 signaling pathway in osteocyte mechanotransduction by conditionally deleting the mTORc2 subunit Rictor in Dmp1‐expressing cells of C57BL/6 mice. Conditional deletion of the Rictor was achieved using the Dmp1–Cre driver to recombine Rictor floxed alleles. Rictor mutants exhibited a decrease in skeletal properties, as measured by DXA, μCT, and mechanical testing, compared with Cre‐negative floxed littermate controls. in vivo axial tibia loading conducted in adult mice revealed a deficiency in the osteogenic response to loading among Rictor mutants. Histological measurements of osteocyte morphology indicated fewer, shorter cell processes in Rictor mutants, which might explain the compromised response to mechanical stimulation. In summary, inhibition of the mTORc2 pathway in late osteoblasts/osteocytes leads to decreased bone mass and mechanically induced bone formation. © 2020 The Authors. published by Wiley Periodicals, Inc. on behalf of American Society for Bone and Mineral Research.
机译:骨骼依靠机械提示来建立和维持组织组成和结构。我们对骨细胞机械转导的理解仍在继续发展,一些关键的信号通路已变得至关重要。例如,Wnt /β-catenin对适当的对机械刺激的合成代谢反应至关重要。调节β-catenin活性的关键复合物是雷帕霉素复合物2(mTORc2)的哺乳动物靶标。 mTORc2对于肌动蛋白细胞骨架重组至关重要,肌动蛋白细胞骨架重组是某些细胞类型中机械转导中不可缺少的组成部分。在这项研究中,我们通过有条件地删除C57BL / 6小鼠Dmp1表达细胞中的mTORc2亚基Rictor,探讨了mTORc2信号通路在骨细胞机械转导中的作用。使用Dmp1-Cre驱动程序重组Rictor的等位基因,可以有条件地删除Rictor。通过DXA,μCT和机械测试,Rictor突变体与Cre负阴性的同窝幼仔对照相比,骨骼特性降低。在成年小鼠体内进行的体内轴向胫骨负荷显示,Rictor突变体对负荷的成骨反应缺乏。骨细胞形态的组织学测量表明,Rictor突变体中的细胞过程更少,更短,这可能解释了对机械刺激的反应减弱。总之,在成骨细胞/成骨细胞晚期抑制mTORc2途径可导致骨量减少和机械诱导的骨形成。 ©2020作者。由Wiley Periodicals,Inc.代表美国骨骼和矿物质研究学会出版。

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