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Functional Ultrasound Imaging of Spinal Cord Hemodynamic Responses to Epidural Electrical Stimulation: A Feasibility Study

机译:硬膜外电刺激对脊髓血流动力学反应的功能超声成像:可行性研究。

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This study presents the first implementation of functional ultrasound (fUS) imaging of the spinal cord to monitor local hemodynamic response to epidural electrical spinal cord stimulation (SCS) on two small and large animal models. SCS has been successfully applied to control chronic refractory pain and recently was evolved to alleviate motor impairment in Parkinson's disease and after spinal cord injury. At present, however, the mechanisms underlying SCS remain unclear, and current methods for monitoring SCS are limited in their capacity to provide the required sensitivity and spatiotemporal resolutions to evaluate functional changes in response to SCS. fUS is an emerging technology that has recently shown promising results in monitoring a variety of neural activities associated with the brain. Here we demonstrated the feasibility of performing fUS on two animal models during SCS. We showed in vivo spinal cord hemodynamic responses measured by fUS evoked by different SCS parameters. We also demonstrated that fUS has a higher sensitivity in monitoring spinal cord response than electromyography. The high spatial and temporal resolutions of fUS were demonstrated by localized measurements of hemodynamic responses at different spinal cord segments, and by reliable tracking of spinal cord responses to patterned electrical stimulations, respectively. Finally, we proposed optimized fUS imaging and post-processing methods for spinal cord. These results support feasibility of fUS imaging of the spinal cord and could pave the way for future systematic studies to investigate spinal cord functional organization and the mechanisms of spinal cord neuromodulation in vivo .
机译:这项研究提出了脊髓的功能超声(fUS)成像的第一个实施方案,以在两个大型动物模型上监测对硬膜外电刺激脊髓(SCS)的局部血液动力学反应。 SCS已成功应用于控制慢性难治性疼痛,最近已发展为减轻帕金森氏病和脊髓损伤后的运动障碍。但是,目前,尚不清楚SCS的基本机制,目前用于监视SCS的方法在提供所需的敏感性和时空分辨率以评估响应SCS的功能方面的能力有限。 fUS是一项新兴技术,最近在监测与大脑有关的各种神经活动中显示出可喜的成果。在这里,我们演示了在SCS期间对两种动物模型执行fUS的可行性。我们显示了由不同的SCS参数引起的fUS测量的体内脊髓血流动力学反应。我们还证明了fUS在监测脊髓反应方面比肌电图检查具有更高的灵敏度。 fUS的高空间和时间分辨率通过分别测量不同脊髓节段的血流动力学反应以及通过可靠跟踪脊髓对图案化电刺激的反应来证明。最后,我们提出了针对脊髓的优化的fUS成像和后处理方法。这些结果支持脊髓fUS成像的可行性,并为将来系统研究脊髓功能组织和体内脊髓神经调节机制铺平了道路。

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