Regan Jenna N, Waning David L, Guise Theresa A
Indiana University School of Medicine, Indianapolis, IN 46202, USA.
Indiana University School of Medicine, Indianapolis, IN 46202, USA.
Semin Cell Dev Biol. 2016 Jan;49:24-9. doi: 10.1016/j.semcdb.2015.11.007. Epub 2015 Nov 24.
Our appreciation of crosstalk between muscle and bone has recently expanded beyond mechanical force-driven events to encompass a variety of signaling factors originating in one tissue and communicating to the other. While the recent identification of new 'myokines' has shifted some focus to the role of muscle in this partnership, bone-derived factors and their effects on skeletal muscle should not be overlooked. This review summarizes some previously known mediators of bone-to-muscle signaling and also recent work identifying a new role for bone-derived TGF-β as a cause of skeletal muscle weakness in the setting of cancer-induced bone destruction. Oxidation of the ryanodine receptor/calcium release channel (RyR1) in skeletal muscle occurs via a TGF-β-Nox4-RyR1 axis and leads to calcium mishandling and decreased muscle function. Multiple points of potential therapeutic intervention were identified, from preventing the bone destruction to stabilizing the RYR1 calcium channel. This new data reinforces the concept that bone can be an important source of signaling factors in pathphysiological settings.
我们对肌肉与骨骼之间相互作用的认识,最近已从机械力驱动的事件扩展到包括源自一个组织并传递至另一个组织的多种信号因子。虽然最近新“肌动蛋白”的发现将部分焦点转移到了肌肉在这种关系中的作用,但骨源性因子及其对骨骼肌的影响也不应被忽视。本综述总结了一些先前已知的骨向肌肉信号传导的介质,以及最近关于骨源性转化生长因子-β(TGF-β)在癌症诱导的骨破坏中导致骨骼肌无力的新作用的研究。骨骼肌中兰尼碱受体/钙释放通道(RyR1)的氧化通过TGF-β-Nox4-RyR1轴发生,并导致钙处理不当和肌肉功能下降。从预防骨破坏到稳定RYR1钙通道,确定了多个潜在的治疗干预点。这些新数据强化了这样一个概念,即在病理生理环境中,骨骼可能是信号因子的重要来源。