Microgravity accelerates skeletal muscle degeneration: Functional and transcriptomic insights from an ISS muscle lab-on-chip model.

IF 5.9 2区 医学 Q1 CELL & TISSUE ENGINEERING
Stem Cell Reports Pub Date : 2025-07-08 Epub Date: 2025-06-26 DOI:10.1016/j.stemcr.2025.102550
Maddalena Parafati, Zon Thwin, Legrand K Malany, Paul M Coen, Siobhan Malany
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引用次数: 0

Abstract

Microgravity accelerates skeletal muscle degeneration, mimicking aspects of aging, yet its effects on muscle cell function remain underexplored. Using a muscle lab-on-chip model onboard the International Space Station (ISS), we examined 3D-bioengineered myobundles derived from young and older adult donors under microgravity. Electrical stimulation applied intermittently to the myobundles revealed reduced contraction magnitude in microgravity and decreased protein levels of myosin heavy chain 7, a main isoform in slow-twitch muscle fibers. Transcriptomic profiling revealed active myogenesis across ground and spaceflight samples, but younger electrically stimulated myobundles displayed enhanced mitochondrial-related gene expression in microgravity, while older and non-electrically stimulated myobundles were less responsive. Comparative analysis between young and older derived myobundles identified 86 muscle-specific age-associated genes altered in microgravity, linked to inflammation, mitochondrial dysfunction, and cellular stress. These findings highlight a unique age-related molecular response in microgravity and underscores electrical stimulation as a potential countermeasure. These insights advance our understanding of muscle aging and degeneration in microgravity, guiding future therapeutic strategies.

微重力加速骨骼肌退化:来自ISS肌肉芯片实验室模型的功能和转录组学见解。
微重力加速骨骼肌退化,模仿衰老的各个方面,但其对肌肉细胞功能的影响仍未得到充分研究。利用国际空间站(ISS)上的肌肉芯片实验室模型,我们检查了在微重力下来自年轻人和老年人捐赠者的3d生物工程肌束。间歇性电刺激肌束显示微重力下收缩幅度降低,肌球蛋白重链7蛋白水平降低,肌球蛋白重链7是慢肌纤维的主要亚型。转录组学分析显示,在地面和太空飞行样本中,肌肉发生活跃,但年轻的电刺激肌束在微重力下表现出增强的线粒体相关基因表达,而年龄较大和未电刺激的肌束则反应较弱。对年轻和年老的肌束进行比较分析,发现了86个肌肉特异性年龄相关基因在微重力下发生改变,与炎症、线粒体功能障碍和细胞应激有关。这些发现强调了微重力下与年龄相关的独特分子反应,并强调了电刺激作为潜在的对策。这些见解促进了我们对微重力下肌肉老化和退化的理解,指导了未来的治疗策略。
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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来源期刊
Stem Cell Reports
Stem Cell Reports CELL & TISSUE ENGINEERING-CELL BIOLOGY
CiteScore
10.50
自引率
1.70%
发文量
200
审稿时长
28 weeks
期刊介绍: Stem Cell Reports publishes high-quality, peer-reviewed research presenting conceptual or practical advances across the breadth of stem cell research and its applications to medicine. Our particular focus on shorter, single-point articles, timely publication, strong editorial decision-making and scientific input by leaders in the field and a "scoop protection" mechanism are reasons to submit your best papers.
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