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一种基于磁共振成像的腿部模型,用于模拟袖带测痛法期间的生物力学现象:一项有限元研究。

An MRI-based leg model used to simulate biomechanical phenomena during cuff algometry: a finite element study.

作者信息

Manafi-Khanian Bahram, Arendt-Nielsen Lars, Graven-Nielsen Thomas

机构信息

Center for Neuroplasticity and Pain (CNAP), SMI, Department of Health Science and Technology, Faculty of Medicine, Aalborg University, Fredrik Bajers Vej 7D-3, 9220, Aalborg, Denmark.

出版信息

Med Biol Eng Comput. 2016 Mar;54(2-3):315-24. doi: 10.1007/s11517-015-1291-x. Epub 2015 Apr 28.

DOI:10.1007/s11517-015-1291-x
PMID:25916888
Abstract

Cuff pressure stimulation is applicable for assessing deep-tissue pain sensitivity by exciting a variety of deep-tissue nociceptors. In this study, the relative transfer of biomechanical stresses and strains from the cuff via the skin to the muscle and the somatic tissue layers around bones were investigated. Cuff pressure was applied on the lower leg at three different stimulation intensities (mild pressure to pain). Three-dimensional finite element models including bones and three different layers of deep tissues were developed based on magnetic resonance images (MRI). The skin indentation maps at mild pressure, pain threshold, and intense painful stimulations were extracted from MRI and applied to the model. The mean stress under the cuff position around tibia was 4.6, 4.9 and around fibula 14.8, 16.4 times greater than mean stress of muscle surface in the same section at pain threshold and intense painful stimulations, respectively. At the same stimulation intensities, the mean strains around tibia were 36.4, 42.3 % and around fibula 32.9, 35.0 %, respectively, of mean strain on the muscle surface. Assuming strain as the ideal stimulus for nociceptors the results suggest that cuff algometry is less capable to challenge the nociceptors of tissues around bones as compared to more superficially located muscles.

摘要

袖带压力刺激适用于通过激发多种深部组织伤害感受器来评估深部组织疼痛敏感性。在本研究中,研究了生物力学应力和应变从袖带经皮肤到肌肉以及骨骼周围体组织层的相对传递。在小腿施加三种不同刺激强度(轻度压力至疼痛)的袖带压力。基于磁共振图像(MRI)建立了包括骨骼和三层不同深部组织的三维有限元模型。从MRI中提取轻度压力、疼痛阈值和强烈疼痛刺激下的皮肤压痕图并应用于模型。在疼痛阈值和强烈疼痛刺激下,胫骨周围袖带位置处的平均应力分别比同一截面肌肉表面平均应力大4.6倍、4.9倍,腓骨周围则分别大14.8倍、16.4倍。在相同刺激强度下,胫骨周围的平均应变分别为肌肉表面平均应变的36.4%、42.3%,腓骨周围则分别为32.9%、35.0%。假设应变是伤害感受器的理想刺激,则结果表明,与位置较浅的肌肉相比,袖带测痛法对骨骼周围组织伤害感受器的刺激能力较弱。

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本文引用的文献

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Med Biol Eng Comput. 2013 Feb;51(1-2):113-22. doi: 10.1007/s11517-012-0974-9. Epub 2012 Nov 24.
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Pain evoked by pressure stimulation on the tibia bone - influence of probe diameter on tissue stress and strain.胫骨骨压刺激诱发的疼痛-探头直径对组织应力和应变的影响。
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Effects of adipose thickness and muscle hardness on pressure pain sensitivity.脂肪厚度和肌肉硬度对压痛敏感性的影响。
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