» Articles » PMID: 34301942

Update on the Effects of Microgravity on the Musculoskeletal System

Overview
Publisher Springer Nature
Date 2021 Jul 24
PMID 34301942
Citations 60
Authors
Affiliations
Soon will be listed here.
Abstract

With the reignited push for manned spaceflight and the development of companies focused on commercializing spaceflight, increased human ventures into space are inevitable. However, this venture would not be without risk. The lower gravitational force, known as microgravity, that would be experienced during spaceflight significantly disrupts many physiological systems. One of the most notably affected systems is the musculoskeletal system, where exposure to microgravity causes both bone and skeletal muscle loss, both of which have significant clinical implications. In this review, we focus on recent advancements in our understanding of how exposure to microgravity affects the musculoskeletal system. We will focus on the catabolic effects microgravity exposure has on both bone and skeletal muscle cells, as well as their respective progenitor stem cells. Additionally, we report on the mechanisms that underlie bone and muscle tissue loss resulting from exposure to microgravity and then discuss current countermeasures being evaluated. We reveal the gaps in the current knowledge and expound upon how current research is filling these gaps while also identifying new avenues of study as we continue to pursue manned spaceflight.

Citing Articles

Immunization induces inflammation in the mouse heart during spaceflight.

Veliz A, Hughes L, Carrillo D, Pecaut M, Kearns-Jonker M BMC Genomics. 2025; 26(1):229.

PMID: 40065216 PMC: 11892206. DOI: 10.1186/s12864-025-11426-y.


Focal Adhesion Kinase Alleviates Simulated Microgravity-Induced Inhibition of Osteoblast Differentiation by Activating Transcriptional Wnt/β-Catenin-BMP2-COL1 and Metabolic SIRT1-PGC-1α-CPT1A Pathways.

Bai Y, Wu Z, Leary S, Fang C, Yu M, Genth H Int J Mol Sci. 2025; 26(4).

PMID: 40004131 PMC: 11855299. DOI: 10.3390/ijms26041669.


Microgravity Accelerates Skeletal Muscle Degeneration: Functional and Transcriptomic Insights from a Muscle Lab-on-Chip Model Onboard the ISS.

Parafati M, Thwin Z, Malany L, Coen P, Malany S bioRxiv. 2025; .

PMID: 39974935 PMC: 11838239. DOI: 10.1101/2025.01.26.634580.


, or spaceflight-induced thymic involution.

Muramatsu W, Maryanovich M, Akiyama T, Karagiannis G Front Immunol. 2025; 15:1534444.

PMID: 39926601 PMC: 11802524. DOI: 10.3389/fimmu.2024.1534444.


Deciphering the mechanisms and effects of hyperglycemia on skeletal muscle atrophy.

Gaur K, Mohapatra L, Wal P, Parveen A, Kumar S, Gupta V Metabol Open. 2024; 24:100332.

PMID: 39634609 PMC: 11616592. DOI: 10.1016/j.metop.2024.100332.


References
1.
Rittweger J, Albracht K, Fluck M, Ruoss S, Brocca L, Longa E . Erratum: Author Correction: Sarcolab pilot study into skeletal muscle's adaptation to longterm spaceflight. NPJ Microgravity. 2018; 4:23. PMC: 6200770. DOI: 10.1038/s41526-018-0058-8. View

2.
Nabavi N, Khandani A, Camirand A, Harrison R . Effects of microgravity on osteoclast bone resorption and osteoblast cytoskeletal organization and adhesion. Bone. 2011; 49(5):965-74. DOI: 10.1016/j.bone.2011.07.036. View

3.
Tong J, Sun L, Zhu B, Fan Y, Ma X, Yu L . Pulsed electromagnetic fields promote the proliferation and differentiation of osteoblasts by reinforcing intracellular calcium transients. Bioelectromagnetics. 2017; 38(7):541-549. DOI: 10.1002/bem.22076. View

4.
Ziambaras K, Lecanda F, Steinberg T, Civitelli R . Cyclic stretch enhances gap junctional communication between osteoblastic cells. J Bone Miner Res. 1998; 13(2):218-28. DOI: 10.1359/jbmr.1998.13.2.218. View

5.
Taylor A, Saunders M, Shingle D, Cimbala J, Zhou Z, Donahue H . Mechanically stimulated osteocytes regulate osteoblastic activity via gap junctions. Am J Physiol Cell Physiol. 2006; 292(1):C545-52. DOI: 10.1152/ajpcell.00611.2005. View