失重破坏了膝关节软骨和股四头肌的超微结构,加剧了软骨的退化。

IF 0.5 4区 医学 Q4 ORTHOPEDICS Annals of Joint Pub Date : 2024-10-30 eCollection Date: 2024-01-01 DOI:10.21037/aoj-24-6
Zheng Zhou, Xu Cheng, Fan Yang, Zhihua Zhang, Kaiping Liu, Xin Zhang, Hongjie Huang, Jianquan Wang
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引用次数: 0

摘要

背景:长期暴露在失重状态下会导致骨骼和肌肉退化,严重影响肌肉骨骼功能。最近的研究也表明失重会对关节软骨造成损伤。本研究旨在观察模拟失重对大鼠股四头肌和肌肉膝关节软骨微结构的影响:方法:本研究共使用了 30 只大鼠,其中 20 只大鼠通过尾部悬吊进行模拟失重,这可能适合临床上长期卧床的患者。14天和28天时,透射电子显微镜观察膝关节软骨和股四头肌的显微形态,磁共振成像评估软骨的胶原蛋白和水分含量。通过酶联免疫吸附试验(ELISA)检测了膝关节肌肉线粒体的活性和滑液中炎症因子的水平。对软骨进行了生物力学和组织学评估:结果:第14天,T2映射显示没有明显的负荷效应。然而,透射电子显微镜显示软骨中的线粒体内膜结构发生了改变,出现了空泡化、内质网破坏以及肌肉中的线粒体超微结构损伤。酶联免疫吸附试验结果显示,肌肉中的大量线粒体失活,滑液中的炎症因子水平升高。染色结果显示软骨表面轻微断裂,II型胶原蛋白阳性细胞减少。纳米压痕显示软骨微表面不平整,弹性模量和硬度下降。第 28 天,T2 图谱分析显示软骨 T2 值增加。透射电子显微镜显示软骨线粒体内膜结构发生改变,肌肉组织出现严重空泡化、内质网破坏和线粒体大量损伤。肌肉线粒体活性明显降低,炎症因子水平升高,软骨表面出现严重损伤。Ⅱ型胶原阳性细胞进一步减少,软骨微表面凹凸不平,弹性模量和硬度明显下降:失重环境导致软骨内质网和线粒体损伤,股四头肌线粒体损伤,肌肉线粒体失活(P=0.01),关节内炎症加重(P=0.01),弹性模量和硬度下降(P=0.03),软骨表面受损,加重了软骨退变。
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Weightlessness damaged the ultrastructure of knee cartilage and quadriceps muscle, aggravated the degeneration of cartilage.

Background: Long-term exposure to weightlessness can result in bone and muscle degradation, significantly impacting musculoskeletal function. Recent studies have also indicated damage to articular cartilage due to weightlessness. This study aims to observe the effects of simulated weightlessness on the cartilage microstructure of the quadriceps muscle and the muscular knee joint in rats.

Methods: A total of 30 rats were used in this study, of which 20 rats were subjected to simulated weightlessness by tail suspension, which may be suitable for clinical long-term bedridden patients. At 14 and 28 days, the microscopic morphology of knee cartilage and quadriceps femoris muscle was observed by transmission electron microscopy, and the collagen and water content of cartilage was evaluated by magnetic resonance imaging. The mitochondrial activity of knee muscle and the levels of inflammatory factors in synovial fluid were detected by enzyme-linked immunosorbent assay (ELISA). Biomechanical and histological evaluation of cartilage was performed.

Results: On day 14, T2 mapping revealed no significant loading effect. However, transmission electron microscopy revealed altered mitochondrial inner membrane structure in cartilage, with vacuolization, disrupted endoplasmic reticulum, alongside mitochondrial ultrastructural damage in muscle. ELISA results showed that a large number of mitochondria in muscle were inactivated, and the levels of inflammatory factors in synovial fluid were increased. The staining results showed slight fracture of the cartilage surface and the type II collagen-positive cells were reduced. Nanoindentation showed that the cartilage microsurface was uneven, and the elastic modulus and hardness were decreased. On day 28, T2 mapping analysis indicated increased cartilage T2 values. Transmission electron microscopy showed alterations in the structure of the mitochondrial inner membrane in cartilage, severe vacuolization, disrupted endoplasmic reticulum, and substantial mitochondrial damage in muscle tissue. Muscle mitochondrial activity was markedly decreased, inflammatory factors levels were elevated, and the cartilage surface exhibited severe damage. The type II collagen positive cells were further reduced, the micro-surface of cartilage was uneven, and the elastic modulus and hardness were significantly decreased.

Conclusions: The weightless environment resulted in the damage of endoplasmic reticulum and mitochondria of cartilage, mitochondrial damage of quadriceps muscle, inactivation of muscle mitochondria (P=0.01), increased intra-articular inflammation (P=0.01), decreased elastic modulus and hardness (P=0.03), and damaged cartilage surface, which aggravated cartilage degeneration.

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来源期刊
Annals of Joint
Annals of Joint ORTHOPEDICS-
CiteScore
1.10
自引率
-25.00%
发文量
17
期刊最新文献
The role of anterolateral complex surgery and slope-reducing osteotomies in revision ACL reconstructions: a narrative review. Three- or four-part proximal humeral fractures in middle-aged and active elderly group of patients: a narrative review of treatment options. Weightlessness damaged the ultrastructure of knee cartilage and quadriceps muscle, aggravated the degeneration of cartilage. Diagnostic strategies for chronic lateral ankle instability: a narrative review. Bone loss in shoulder instability and shoulder arthroplasty.
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