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Modeling the impact of spinal cord stimulation paddle lead position on impedance, stimulation threshold, and activation region

机译:建模脊髓刺激桨引线位置对阻抗,刺激阈值和激活区域的影响

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The effectiveness of spinal cord stimulation (SCS) for chronic pain treatment depends on selection of appropriate stimulation settings, which can be especially challenging following posture change or SCS lead migration. The objective of this work was to investigate the feasibility of using SCS lead impedance for determining the location of a SCS lead and for detecting lead migration, as well as the impact of axial movement and rotation of the St. Jude Medical PENTA™ paddle in the dorsal-ventral or medial-lateral directions on dorsal column (DC) stimulation thresholds and neural activation regions. We used a two-stage computational model, including a finite element method model of field potentials in the spinal cord during stimulation, coupled to a biophysical cable model of mammalian, myelinated nerve fibers to calculate tissue impedance and nerve fiber activation within the DC. We found that SCS lead impedance was highly sensitive to the distance between the lead and cerebrospinal fluid (CSF) layer. In addition, among all the lead positions studied, medial-lateral movement resulted in the most substantial changes to SC activation regions. These results suggest that impedance can be used for detecting paddle position and lead migration, and therefore for guiding SCS programming.
机译:脊髓刺激(SCS)用于治疗慢性疼痛的有效性取决于选择合适的刺激设置,这在姿势改变或SCS导线迁移后尤其具有挑战性。这项工作的目的是研究使用SCS导线阻抗来确定SCS导线的位置和检测导线迁移的可行性,以及St. Jude Medical PENTA™桨在轴上运动和旋转的影响。背柱(DC)刺激阈值和神经激活区域上的背腹侧或内侧-外侧方向。我们使用了一个两阶段的计算模型,包括在刺激过程中脊髓中场电位的有限元方法模型,再加上哺乳动物有髓神经纤维的生物物理电缆模型,以计算DC中的组织阻抗和神经纤维激活。我们发现,SCS导线阻抗对导线与脑脊液(CSF)层之间的距离高度敏感。此外,在所有研究的牵头位置中,内侧-外侧移动导致SC激活区域发生了最实质性的变化。这些结果表明,阻抗可用于检测桨叶位置和引线迁移,并因此可用于指导SCS编程。

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