首页> 外文期刊>Journal of Orthopaedic Translation >Unilateral cervical spinal cord injury induces bone loss and metabolic changes in non-human primates ( Macaca fascicularis)
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Unilateral cervical spinal cord injury induces bone loss and metabolic changes in non-human primates ( Macaca fascicularis)

机译:单侧宫颈脊髓损伤诱导非人类灵长类动物的骨质流失和代谢变化(猕猴属fascicularis

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Background/ObjectiveThe deleterious effects of chronic spinal cord injury (SCI) on the skeleton in rats, especially the lower extremities, has been proved previously. However, the long-term skeletal changes after SCI in non-human primates (NHP) have been scarcely studied. This study aimed to evaluate the bone loss in limbs and vertebrae and the bone metabolic changes in NHP after unilateral cervical spinal cord contusion injury.MethodsTwelveMacaca fasciculariswere randomly divided into the SCI (n=8) and the Sham (n=4) groups. The SCI models were established using hemi-contusion cervical spinal cord injury on fifth cervical vertebra (C5), and were further evaluated by histological staining and neurophysiological monitoring. Changes of bone microstructures, bone biomechanics, and bone metabolism markers were assessed by micro-CT, micro-FEA and serological kit.ResultsThe NHP hemi-contusion cervical SCI model led to consistent unilateral limb dysfunction and potential plasticity in the face of loss of spinal cord. Furthermore, the cancellous bone mass of ipsilateral humerus and radius decreased significantly compared to the contralateral side. The bone volume fraction of humerus and radius were 17.2% and 20.1% on the ipsilateral while 29.0% and 30.1% on the contralateral respectively. Similarly, the thickness of the cortical bone in the ipsilateral forelimbs was significantly decreased, as well as the bone strength of the ipsilateral forelimbs. These changes were accompanied by diminished concentration of osteocalcin and total procollagen type 1 N-terminal propeptide (t-P1NP) as well as increased level of β-C-terminal cross-linking telopeptide of type 1collagen (β-CTX) in serological testing.ConclusionsThe present study demonstrated that hemi-SCI induced loss of bone mass and compromised biomechanical performance in ipsilateral forelimbs, which could be indicated by both muscle atrophy and serological changes of bone metabolism, and associated with a consistent loss of large-diameter cells of sensory neurons in the dorsal root ganglia.The Translational potential of this ArticleOur study, for the first time, demonstrated the bone loss in limbs and vertebrae as well as the bone metabolic changes in non-human primates after unilateral spinal cord injury (SCI). This may help to elucidate the role of muscle atrophy, serological changes and loss of sensory neurons in the mechanisms of SCI-induced osteoporosis, which would be definitely better compared with rodent models.
机译:以前证明,以前证明了慢性脊髓损伤(SCI)对大鼠骨架(特别是下肢)的慢性脊髓损伤(SCI)的有害影响。然而,在非人印象(NHP)中SCI后的长期骨骼变化已经几乎没有研究。本研究旨在评估单侧宫颈脊髓挫伤后NHP中肢体和椎骨中的骨质损失以及骨骼代谢变化。血清血清筋膜术随机分为SCI(n = 8)和假(n = 4)组。通过在第五个宫颈椎骨(C5)上使用半卷积颈脊髓损伤建立了SCI模型,并通过组织学染色和神经生理学监测进一步评估。通过微型CT,微型FEA和血清效果评估骨微观结构,骨骼生物力学和骨代谢标志物的变化。结果NHP半挫伤宫颈SCI模型导致了一致的单侧肢体功能障碍和潜在的可塑性面对脊柱的损失绳索。此外,与对侧侧相比,同侧肱骨和半径的松质骨质量显着降低。肱骨和半径的骨体积分数分别为同侧的17.2%和20.1%,而另一个人分别对上部的29.0%和30.1%。类似地,同侧前肢中皮质骨的厚度显着降低,以及同侧前肢的骨强度。这些变化伴随着骨钙蛋白的浓度减少和血液肽型1型N-末端肽(T-P1NP)以及血清学检测中1collagen(β-CTX)的β-C末端交联肽的水平增加。结论目前的研究表明,Hemi-SCI诱导了同侧前肢的骨质量和受损的生物力学性能,这可以通过骨骼代谢的肌肉萎缩和血清学变化,以及与感官神经元的大直径细胞的一致损失相关在背根神经节中。这项文字研究的翻译潜力首次证明了四肢和椎骨中的骨质损失以及单侧脊髓损伤(SCI)后非人类原始化物的骨代谢变化。这可能有助于阐明肌肉萎缩,血清学变化和感官神经元的丧失在SCI诱导的骨质疏松症机制中的作用,与啮齿动物模型相比,这绝对是更好的。

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