The Efficacy of Body-Weight Supported Treadmill Training and Neurotrophin-Releasing Scaffold in Minimizing Bone Loss Following Spinal Cord Injury.

IF 3.8 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Michael Weiser, Lindsay Stoy, Valerie Lallo, Sriram Balasubramanian, Anita Singh
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Abstract

Spinal cord injury (SCI) can lead to significant bone loss below the level of the lesion increasing the risk of fracture and increased morbidity. Body-weight-supported treadmill training (BWSTT) and transplantation strategies using neurotrophins have been shown to improve motor function after SCI. While rehabilitation training including BWSTT has also been effective in reducing bone loss post-SCI, the effects of transplantation therapies in bone restoration are not fully understood. Furthermore, the effects of a combinational treatment strategy on bone post-SCI also remain unknown. The aim of this study was to determine the effect of a combination therapy including transplantation of scaffold-releasing neurotrophins and BWSTT on the forelimb and hindlimb bones of a T9-T10 contused SCI animals. Humerus and tibia bones were harvested for Micro-CT scanning and a three-point bending test from four animal groups, namely injury, BWSTT (injury with BWSTT), scaffold (injury with scaffold-releasing neurotrophins), and combinational (injury treated with scaffold-releasing neurotrophins and BWSTT). BWSTT and combinational groups reported higher biomechanical properties in the tibial bone (below injury level) and lower biomechanical properties in the humerus bone (above injury level) when compared to the injury and scaffold groups. Studied structural parameters, including the cortical thickness and bone volume/tissue volume (BV/TV) were also higher in the tibia and lower in the humerus bones of BWSTT and combinational groups when compared to the injury and scaffold groups. While no significant differences were observed, this study is the first to report the effects of a combinational treatment strategy on bone loss in contused SCI animals and can help guide future interventions.

支撑体重的跑步机训练和神经营养素释放支架对减少脊髓损伤后骨质流失的功效
脊髓损伤(SCI)会导致病变部位以下的骨质大量流失,从而增加骨折风险和发病率。事实证明,体重支撑跑步机训练(BWSTT)和使用神经营养素的移植策略可以改善脊髓损伤后的运动功能。虽然包括体重支撑跑步机训练在内的康复训练也能有效减少 SCI 后的骨质流失,但移植疗法在骨质恢复方面的效果尚不完全清楚。此外,综合治疗策略对 SCI 后骨质的影响也仍然未知。本研究旨在确定综合疗法(包括移植支架释放神经营养素和BWSTT)对T9-T10挫伤性SCI动物前肢和后肢骨骼的影响。取四组动物的肱骨和胫骨进行显微 CT 扫描和三点弯曲试验,即损伤组、BWSTT 组(损伤组使用 BWSTT)、支架组(损伤组使用支架释放神经营养素)和组合组(损伤组使用支架释放神经营养素和 BWSTT)。与损伤组和支架组相比,BWSTT 组和组合组的胫骨生物力学特性更高(低于损伤水平),而肱骨生物力学特性较低(高于损伤水平)。与损伤组和支架组相比,BWSTT 组和组合组胫骨的皮质厚度和骨体积/组织体积(BV/TV)等结构参数也较高,而肱骨的皮质厚度和骨体积/组织体积(BV/TV)较低。虽然没有观察到明显差异,但这项研究首次报告了综合治疗策略对挫伤性 SCI 动物骨质流失的影响,有助于指导未来的干预措施。
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来源期刊
Bioengineering
Bioengineering Chemical Engineering-Bioengineering
CiteScore
4.00
自引率
8.70%
发文量
661
期刊介绍: Aims Bioengineering (ISSN 2306-5354) provides an advanced forum for the science and technology of bioengineering. It publishes original research papers, comprehensive reviews, communications and case reports. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. All aspects of bioengineering are welcomed from theoretical concepts to education and applications. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. There are, in addition, four key features of this Journal: ● We are introducing a new concept in scientific and technical publications “The Translational Case Report in Bioengineering”. It is a descriptive explanatory analysis of a transformative or translational event. Understanding that the goal of bioengineering scholarship is to advance towards a transformative or clinical solution to an identified transformative/clinical need, the translational case report is used to explore causation in order to find underlying principles that may guide other similar transformative/translational undertakings. ● Manuscripts regarding research proposals and research ideas will be particularly welcomed. ● Electronic files and software regarding the full details of the calculation and experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material. ● We also accept manuscripts communicating to a broader audience with regard to research projects financed with public funds. Scope ● Bionics and biological cybernetics: implantology; bio–abio interfaces ● Bioelectronics: wearable electronics; implantable electronics; “more than Moore” electronics; bioelectronics devices ● Bioprocess and biosystems engineering and applications: bioprocess design; biocatalysis; bioseparation and bioreactors; bioinformatics; bioenergy; etc. ● Biomolecular, cellular and tissue engineering and applications: tissue engineering; chromosome engineering; embryo engineering; cellular, molecular and synthetic biology; metabolic engineering; bio-nanotechnology; micro/nano technologies; genetic engineering; transgenic technology ● Biomedical engineering and applications: biomechatronics; biomedical electronics; biomechanics; biomaterials; biomimetics; biomedical diagnostics; biomedical therapy; biomedical devices; sensors and circuits; biomedical imaging and medical information systems; implants and regenerative medicine; neurotechnology; clinical engineering; rehabilitation engineering ● Biochemical engineering and applications: metabolic pathway engineering; modeling and simulation ● Translational bioengineering
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