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Altered viscoelastic properties of stroke-affected muscles estimated using ultrasound shear waves — Preliminary data

机译:使用超声切变波估计的受中风影响的肌肉的粘弹性改变—初步数据

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As a result of a brain injury such as stroke, the skeletal muscles may undergo numerous structural and functional alterations. These abnormal changes are linked to muscle weakness, joint contracture, and abnormal muscle tone and eventually, result in motor impairment. A subset of these alterations affects passive muscle stiffness, i.e., viscoelastic properties. However, in vivo estimation of changes in viscoelastic properties is a challenging task. Here, we used the shear wave velocity, estimated through ultrasound SuperSonic imaging (SSI), as a surrogate for viscoelastic properties. We estimated shear wave group and phase velocities (dispersion), and thus, quantified both elasticity and viscosity of the muscle tissue, respectively in muscles of hemiplegic stroke survivors. In these individuals, we found significantly higher group and phase velocities in the stroke-affected muscles (p<; 05) compared to those of the contralateral non-affected side. We hypothesize that in addition to changes in neural and contractile properties, there are also, changes in elastic and tissue dispersive properties through local mechanisms. An enhanced understanding of post-stroke changes in skeletal muscles will lead to better and targeted interventions for rehabilitation.
机译:由于诸如中风的脑损伤,骨骼肌可能经历许多结构和功能改变。这些异常变化与肌肉无力,关节挛缩和异常肌张力有关,最终导致运动障碍。这些改变的一个子集影响被动肌肉的刚度,即粘弹性。然而,体内估计粘弹性的变化是一项艰巨的任务。在这里,我们使用通过超声超音速成像(SSI)估算的剪切波速度作为粘弹性特性的替代物。我们估计了横波组和相速度(离散度),从而分别量化了偏瘫中风幸存者肌肉中肌肉组织的弹性和黏度。在这些个体中,与对侧未受影响侧的肌肉相比,我们发现受中风影响的肌肉的组和相速度明显更高(p <; 05)。我们假设除了神经和收缩特性的变化外,还通过局部机制改变了弹性和组织分散特性。对卒中后骨骼肌变化的了解加深,将导致更好和针对性的康复干预措施。

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