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剪切波揭示了半球性脑卒中后骨骼肌的粘弹性变化。

Shear Waves Reveal Viscoelastic Changes in Skeletal Muscles After Hemispheric Stroke.

出版信息

IEEE Trans Neural Syst Rehabil Eng. 2018 Oct;26(10):2006-2014. doi: 10.1109/TNSRE.2018.2870155.

DOI:10.1109/TNSRE.2018.2870155
PMID:30334740
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6471515/
Abstract

We investigated alterations in material properties such as elasticity and viscoelasticity of stroke-affected muscles using ultrasound induced shear waves and mechanical models. We used acoustic radiation force to generate shear waves along fascicles of biceps muscles and measured their propagation velocity. The shear wave data were collected in muscles of 13 hemiplegic stroke survivors under passive conditions at 90°, 120°, and 150° elbow flexion angles. In a viscoelastic medium, as opposed to a purely elastic medium, the shear wave propagation velocity depends on the frequency content of the induced wave. Therefore, in addition to the shear wave group velocity (GpV), we also estimated a frequency-dependent phase velocity (PhV). We found significantly higher GpVs and PhVs in stroke-affected muscles ( ). The velocity data were used to estimate shear elasticity and viscosity using an elastic and viscoelastic material models. A pure elastic model showed increased shear elasticity in stroke-affected muscles ( ). The Voigt model estimates of viscoelastic properties were also significantly different between the stroke-impaired and non-impaired muscles. We observed significantly larger model-estimated viscosity values on the stroke-affected side at elbow flexion angles of 120° and 150°. Furthermore, the creep behavior (tissue strain resulting from the application of sudden constant stress) of the model was also different between muscles of the paretic and non-paretic side. We speculate that these changes are associated with the structural disruption of muscles after stroke and may potentially affect force generation from muscle fibers as well as transmission of force to tendons.

摘要

我们使用超声产生的剪切波和力学模型研究了脑卒中影响的肌肉的物质特性(如弹性和粘弹性)的变化。我们使用声辐射力沿二头肌的肌束产生剪切波,并测量其传播速度。在被动条件下,将剪切波数据收集在 13 名偏瘫脑卒中幸存者的肌肉中,肘部弯曲角度分别为 90°、120°和 150°。在粘弹性介质中,与纯弹性介质相反,剪切波传播速度取决于所产生波的频率内容。因此,除了剪切波群速度(GpV)之外,我们还估计了频率相关的相速度(PhV)。我们发现脑卒中影响的肌肉中的 GpV 和 PhV 明显更高()。使用弹性和粘弹性材料模型,根据速度数据估计剪切弹性和粘性。纯弹性模型显示脑卒中影响的肌肉中的剪切弹性增加()。粘弹性特性的 Voigt 模型估计在受损和未受损肌肉之间也有显著差异。在肘部弯曲角度为 120°和 150°时,我们观察到脑卒中影响的一侧的模型估计的粘性值明显更大。此外,模型的蠕变行为(突然施加恒定应力时导致的组织应变)在偏瘫侧和非偏瘫侧的肌肉之间也不同。我们推测这些变化与脑卒中后肌肉的结构破坏有关,可能会影响肌肉纤维的力产生以及力向肌腱的传递。

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