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Altering length and velocity feedback during a neuro-musculoskeletal simulation of normal gait contributes to hemiparetic gait characteristics

机译:在正常步态的神经肌肉骨骼模拟期间改变长度和速度反馈在偏瘫步态有助于偏瘫步态特征

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Background Spasticity is an important complication after stroke, especially in the anti-gravity muscles, i.e. lower limb extensors. However the contribution of hyperexcitable muscle spindle reflex loops to gait impairments after stroke is often disputed. In this study a neuro-musculoskeletal model was developed to investigate the contribution of an increased length and velocity feedback and altered reflex modulation patterns to hemiparetic gait deficits. Methods A musculoskeletal model was extended with a muscle spindle model providing real-time length and velocity feedback of gastrocnemius, soleus, vasti and rectus femoris during a forward dynamic simulation (neural control model). By using a healthy subject’s base muscle excitations, in combination with increased feedback gains and altered reflex modulation patterns, the effect on kinematics was simulated. A foot-ground contact model was added to account for the interaction effect between the changed kinematics and the ground. The qualitative effect i.e. the directional effect and the specific gait phases where the effect is present, on the joint kinematics was then compared with hemiparetic gait deviations reported in the literature. Results Our results show that increased feedback in combination with altered reflex modulation patterns of soleus, vasti and rectus femoris muscle can contribute to excessive ankle plantarflexion/inadequate dorsiflexion, knee hyperextension/inadequate flexion and increased hip extension/inadequate flexion during dedicated gait cycle phases. Increased feedback of gastrocnemius can also contribute to excessive plantarflexion/inadequate dorsiflexion, however in combination with excessive knee and hip flexion. Increased length/velocity feedback can therefore contribute to two types of gait deviations, which are both in accordance with previously reported gait deviations in hemiparetic patients. Furthermore altered modulation patterns, in particular the reduced suppression of the muscle spindle feedback during swing, can contribute largely to an increased plantarflexion and knee extension during the swing phase and consequently to hampered toe clearance. Conclusions Our results support the idea that hyperexcitability of length and velocity feedback pathways, especially in combination with altered reflex modulation patterns, can contribute to deviations in hemiparetic gait. Surprisingly, our results showed only subtle temporal differences between length and velocity feedback. Therefore, we cannot attribute the effects seen in kinematics to one specific type of feedback.
机译:背景技术痉挛是中风后的重要并发症,特别是在抗重力肌肉中,即下肢伸肌。然而,过度兴奋的肌肉主轴反射回路在中风后的步态障碍的贡献往往是有争议的。在该研究中,开发了一种神经肌肉骨骼模型,以研究增加的长度和速度反馈的贡献,并改变了反射调制模式对偏热步态缺陷。方法使用肌肉主轴模型延伸肌肉骨骼模型,提供了在正向动态仿真(神经控制模型)期间腓肠肌的实时长度和速度反馈,SONEUS,VERSIS和RECTUS股的速度反馈。通过使用健康受试者的基础肌肉激励,与增加的反馈收益和改变的反射调制模式相结合,模拟了对运动学的影响。加入了脚踏接触模型以考虑改变的运动学与地面之间的相互作用效果。与文献中报道的血清啮合步态偏差相比,在存在效果的定性效果和存在的特定步态阶段。结果我们的研究结果表明,随着Soleus,Vasti和Recetus肌肉的改变的反射调制模式的反馈增加,可以有助于过度踝关节Flatarflexion /不足的背屈,膝关节过度伸展/不足屈曲和增加的步态循环阶段期间的髋关节延伸/不足屈曲/不足屈曲/不足屈曲/不足屈曲/不充分的屈曲。增加的胃肠内膜的反馈也可以有助于过度的跖屈/不足的背屈,然而与过度膝关节和髋关节屈曲相结合。因此,增加的长度/速度反馈可以有助于两种类型的步态偏差,这两种类型的步态偏差都是根据先前报道的血六种患者的步态偏差。此外,改变的调制图案,特别是在摆动期间减少肌肉主轴反馈的减少抑制,可以在摆动相期间增加跖屈和膝关节延伸并且因此以阻碍的脚趾间隙。结论我们的研究结果支持的想法,即长度和速度反馈途径的低估性,特别是与改变的反射调制模式相结合,可以有助于偏瘫步态的偏差。令人惊讶的是,我们的结果仅显示了长度和速度反馈之间的微妙时间差异。因此,我们不能将在运动学中看到的效果归因于一种特定类型的反馈。

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