The Jackson Laboratory for Genomic Medicine, Farmington, CT 06032;
Department of Genetics and Genome Sciences, University of Connecticut School of Medicine, Farmington, CT 06030.
Proc Natl Acad Sci U S A. 2020 Sep 22;117(38):23942-23951. doi: 10.1073/pnas.2014716117. Epub 2020 Sep 8.
Among the physiological consequences of extended spaceflight are loss of skeletal muscle and bone mass. One signaling pathway that plays an important role in maintaining muscle and bone homeostasis is that regulated by the secreted signaling proteins, myostatin (MSTN) and activin A. Here, we used both genetic and pharmacological approaches to investigate the effect of targeting MSTN/activin A signaling in mice that were sent to the International Space Station. mice lost significant muscle and bone mass during the 33 d spent in microgravity. Muscle weights of mice, which are about twice those of mice, were largely maintained during spaceflight. Systemic inhibition of MSTN/activin A signaling using a soluble form of the activin type IIB receptor (ACVR2B), which can bind each of these ligands, led to dramatic increases in both muscle and bone mass, with effects being comparable in ground and flight mice. Exposure to microgravity and treatment with the soluble receptor each led to alterations in numerous signaling pathways, which were reflected in changes in levels of key signaling components in the blood as well as their RNA expression levels in muscle and bone. These findings have implications for therapeutic strategies to combat the concomitant muscle and bone loss occurring in people afflicted with disuse atrophy on Earth as well as in astronauts in space, especially during prolonged missions.
在长时间的太空飞行中,会出现一些生理后果,其中包括骨骼肌肉和骨量的流失。其中一个对维持肌肉和骨骼内稳态起着重要作用的信号通路是由分泌的信号蛋白——肌肉生长抑制素(MSTN)和激活素 A 所调控的。在这里,我们使用遗传和药理学方法来研究靶向 MSTN/激活素 A 信号通路对被送往国际空间站的小鼠的影响。在微重力环境中度过的 33 天里,小鼠的肌肉和骨量大量流失。而肌肉重量约为野生型小鼠两倍的 小鼠在太空飞行过程中基本保持不变。使用一种可溶性的激活素 IIB 型受体(ACVR2B)——它可以与这两种配体结合——来系统抑制 MSTN/激活素 A 信号通路,导致肌肉和骨量的显著增加,在地面和飞行小鼠中的效果相当。暴露在微重力环境中和使用可溶性受体治疗都导致了众多信号通路的改变,这些改变反映在血液中关键信号成分的水平以及它们在肌肉和骨骼中的 RNA 表达水平的变化上。这些发现对于治疗策略具有重要意义,可以对抗地球上因废用性萎缩而遭受的肌肉和骨骼同时流失的人群,以及太空中的宇航员,尤其是在长时间的任务中。