The impact of skeletal unloading on bone formation.

Daniel D Bikle, Takeshi Sakata, Bernard P Halloran
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Abstract

Skeletal unloading leads to decreased bone formation and decreased bone mass. Bone resorption is uncoupled from bone formation, contributing to the bone loss. During space flight bone is lost principally from the bones most loaded in the 1 g environment. Determining the mechanism(s) by which loading of bone is sensed and translated into a signal(s) controlling bone formation remains the holy grail in this field. It seems likely that matrix/cell interactions will underlie much of the mechanocoupling. Integrins are a prime mediator of such interactions. The role for systemic hormones such as PTH, GH and 1,25(OH)2D compared to locally produced factors such as IGF-I, PTHrP, BMPs and TGF beta in modulating the cellular response to load remains unclear. Our studies demonstrate that skeletal unloading leads to resistance to the anabolic actions of IGF-I on bone as a result of failure of IGF-I to activate its own signaling pathways. This is associated with a reduction in integrin expression, suggesting crosstalk between these two pathways. As the mechanism(s) by which bone responds to changes in mechanical load with changes in bone formation is further elucidated, applications of this knowledge to other etiologies of osteoporosis are likely to develop. Skeletal unloading provides a perturbation in bone mineral homeostasis that can be used to understand the mechanisms by which bone mineral homeostasis is maintained, and that such understanding will lead to effective treatment for disuse osteoporosis in addition to preventive measures for the bone loss that accompanies space travel.

骨骼卸荷对骨形成的影响。
骨骼卸荷导致骨形成减少和骨量减少。骨吸收与骨形成不耦合,导致骨质流失。在太空飞行中,骨骼损失主要来自在1g环境中负荷最大的骨骼。确定骨负荷被感知并转化为控制骨形成的信号的机制仍然是该领域的圣杯。似乎基质/细胞的相互作用是机械偶联的基础。整合素是这种相互作用的主要媒介。与局部产生的因子如IGF-I、PTHrP、bmp和TGF β相比,PTH、GH和125 (OH)2D等全身性激素在调节细胞对负荷反应中的作用尚不清楚。我们的研究表明,由于igf - 1无法激活其自身的信号通路,骨骼卸载导致对igf - 1在骨骼上的合成代谢作用的抵抗。这与整合素表达的减少有关,表明这两种途径之间存在串扰。随着骨对机械负荷变化和骨形成变化的响应机制的进一步阐明,将这一知识应用于骨质疏松症的其他病因可能会得到发展。骨骼卸载提供了对骨矿物质稳态的扰动,可以用来理解维持骨矿物质稳态的机制,这种理解将导致对废用性骨质疏松症的有效治疗,以及对伴随太空旅行的骨质流失的预防措施。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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