压缩力和拉伸力对椎间盘内葡萄糖浓度和细胞活力的影响:有限元研究

IF 1.7 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Liang-dong Zheng , Hao-yang Lv , Yi-ting Yang , Qing Yuan , Yu-ting Cao , Kai Zhang , Rui Zhu
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引用次数: 0

摘要

了解机械力对组织营养输送的作用至关重要,因为持续的力可能会影响椎间盘内的营养水平并引发椎间盘退化。本研究旨在评估不同压缩力振幅和拉伸力对椎间盘内葡萄糖浓度和细胞活力的时间依赖性影响。根据机械电化学混合物理论,建立了腰椎间盘的多相有限元模型。在不同的压缩力振幅、拉力和相应的蠕变时间下,预测了正常椎间盘和退化椎间盘中的最小葡萄糖浓度和最小细胞密度。在高压缩力作用下,正常椎间盘的最低葡萄糖浓度随蠕变时间呈先增大后减小的趋势,而退化椎间盘的最低葡萄糖浓度则是先增大后减小,最后再增大。在稳定状态下,压缩力越大,葡萄糖浓度分布越低。在退化椎间盘中,最小细胞密度与蠕变时间呈负相关,在较高的压缩力下,受影响组织的范围更大。在拉力作用下,退化椎间盘的最小葡萄糖浓度随着时间的推移而升高。这项研究强调了蠕动时间、力的大小和力的类型在影响营养浓度和细胞活力方面的重要性。持续的负重活动可能会使退化椎间盘的营养环境恶化,而拉力则可能在有效改善退化椎间盘内的营养水平方面发挥不可忽视的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of compressive and tensile forces on glucose concentration and cell viability within the intervertebral disc: A finite element study

Understanding the role of mechanical force on tissue nutrient transport is essential, as sustained force may affect nutrient levels within the disc and initiate disc degeneration. This study aims to evaluate the time-dependent effects of different compressive force amplitudes as well as tensile force on glucose concentration and cell viability within the disc. Based on the mechano-electrochemical mixture theory, a multiphasic finite element model of the lumbar intervertebral disc was developed. The minimum glucose concentration and minimum cell density in both normal and degenerated discs were predicted for different compressive force amplitudes, tensile force, and corresponding creep time. Under high compressive force, the minimum glucose concentration exhibited an increasing and then decreasing trend with creep time in the normal disc, whereas that of the degenerated disc increased, then decreased, and finally increased again. At steady state, a higher compressive force was accompanied by a lower glucose concentration distribution. In the degenerated disc, the minimum cell density was negatively correlated with creep time, with a greater range of affected tissue under a higher compressive force. For tensile force, the minimum glucose concentration of the degenerated disc raised over time. This study highlighted the importance of creep time, force magnitude, and force type in affecting nutrient concentration and cell viability. Sustained weight-bearing activities could deteriorate the nutrient environment of the degenerated disc, while tensile force might have a nonnegligible role in effectively improving nutrient levels within the degenerated disc.

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来源期刊
Medical Engineering & Physics
Medical Engineering & Physics 工程技术-工程:生物医学
CiteScore
4.30
自引率
4.50%
发文量
172
审稿时长
3.0 months
期刊介绍: Medical Engineering & Physics provides a forum for the publication of the latest developments in biomedical engineering, and reflects the essential multidisciplinary nature of the subject. The journal publishes in-depth critical reviews, scientific papers and technical notes. Our focus encompasses the application of the basic principles of physics and engineering to the development of medical devices and technology, with the ultimate aim of producing improvements in the quality of health care.Topics covered include biomechanics, biomaterials, mechanobiology, rehabilitation engineering, biomedical signal processing and medical device development. Medical Engineering & Physics aims to keep both engineers and clinicians abreast of the latest applications of technology to health care.
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