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Updated: Dec 9, 2025

Exploring the Effects of Spaceflight on Mouse Physiology using the Open Access NASA GeneLab Platform
Published on: January 13, 2019
Targeting myostatin/activin A protects against skeletal muscle and bone loss during spaceflight
Se-Jin Lee1,2, Adam Lehar3, Jessica U Meir4
1The Jackson Laboratory for Genomic Medicine, Farmington, CT 06032; sejlee@uchc.edu.
Abstract:
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. Wild type mice lost significant muscle and bone mass during the 33 d spent in microgravity. Muscle weights of Mstn-/- mice, which are about twice those of wild type 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.
Insights
Targeting myostatin (MSTN) and activin A signaling combats muscle and bone loss during spaceflight. Inhibiting this pathway dramatically increased muscle and bone mass in mice, offering therapeutic potential for astronauts and those with disuse atrophy.
Area of Science:
- Spaceflight physiology
- Skeletal muscle and bone biology
- Endocrinology
Background:
- Extended spaceflight causes significant loss of skeletal muscle and bone mass.
- Myostatin (MSTN) and activin A signaling are critical for maintaining muscle and bone homeostasis.
Purpose of the Study:
- To investigate the effects of targeting MSTN/activin A signaling on muscle and bone mass during spaceflight.
- To evaluate both genetic and pharmacological interventions in a mouse model.
Main Methods:
- Utilized wild type and Mstn knockout mice exposed to microgravity on the International Space Station.
- Administered a soluble activin type IIB receptor (ACVR2B) to inhibit MSTN/activin A signaling.
- Analyzed changes in muscle and bone mass, and molecular signaling pathways.
Main Results:
- Wild type mice experienced significant muscle and bone loss in microgravity.
- Mstn knockout mice showed largely maintained muscle mass during spaceflight.
- ACVR2B treatment led to dramatic increases in muscle and bone mass, comparable in ground and flight conditions.
- Both microgravity and ACVR2B treatment altered numerous signaling pathways.
Conclusions:
- Targeting MSTN/activin A signaling is a promising strategy to counteract muscle and bone loss in microgravity.
- Findings support therapeutic applications for astronauts and individuals with disuse atrophy on Earth.
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