A Computational Study of Lower Urinary Tract Nerve Recruitment with Epidural Stimulation of the Lumbosacral Spinal Cord.

A Computational Study of Lower Urinary Tract Nerve Recruitment with Epidural Stimulation of the Lumbosacral Spinal Cord.
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腰骶脊髓硬膜外刺激下尿路神经复张的计算研究。

DOI:
10.1109/embc48229.2022.9871292
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发表时间:
2022
期刊:
Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual International Conference
影响因子:
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通讯作者:
Gaunt,RobertA
Gaunt,RobertA
中科院分区:
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文献类型:
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作者:
Jantz,MariaK;Liang,Lucy;Damiani,Arianna;Fisher,LeeE;Newton,Taylor;Neufeld,Esra;Hitchens,TKevin;Pirondini,Elvira;Capogrosso,Marco;Gaunt,RobertA

文献摘要

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膀胱功能障碍是脊髓损伤患者的主要健康风险。最近,我们已经证明硬膜外骶脊髓刺激(SCS)可用于激活下尿路神经并提供膀胱控制的两个主要组成部分:排尿和失禁。为了有效控制这些功能,有必要选择性地募集引起这些独特膀胱反射的阴部神经传入神经。将这一创新转化为临床实践需要了解最佳电极放置和刺激参数,以指导手术实践和治疗设计。计算模型是解决许多实验上棘手的刺激优化问题的重要工具。在这里,我们建立了一个基于 MRI 的猫科动物骶脊髓的真实有限元计算模型,其中包括背根和腹根的真实轴突轨迹。我们将该模型与传入和传出轴突膜动力学的生物物理模拟结合起来,这些轴突通过骨盆和阴部神经投射到下尿路。我们模拟了 SCS 电极刺激产生的电磁场,并计算了盆腔和阴部纤维的预期募集情况。我们发现 SCS 可以选择性地招募阴部传入神经,这与我们在猫身上的实验数据一致。我们的结果表明,SCS 是一种有前途的技术,可改善脊髓损伤后的膀胱功能,并且计算模型释放了高度优化的选择性刺激的潜力。临床相关性 - 该模型提供了一种非侵入性建立电极放置和刺激参数的方法,用于通过硬膜外脊髓刺激改善膀胱功能。
Bladder dysfunction is a major health risk for people with spinal cord injury. Recently, we have demonstrated that epidural sacral spinal cord stimulation (SCS) can be used to activate lower urinary tract nerves and provide both major components of bladder control: voiding and continence. To effectively control these functions, it is necessary to selectively recruit the afferents of the pudendal nerve that evoke these distinct bladder reflexes. Translation of this innovation to clinical practice requires an understanding of optimal electrode placements and stimulation parameters to guide surgical practice and therapy design. Computational modeling is an important tool to address many of these experimentally intractable stimulation optimization questions. Here, we built a realistic MRI-based finite element computational model of the feline sacral spinal cord which included realistic axon trajectories in the dorsal and ventral roots. We coupled the model with biophysical simulations of membrane dynamics of afferent and efferent axons that project to the lower urinary tract through the pelvic and pudendal nerves. We simulated the electromagnetic fields arising from stimulation through SCS electrodes and calculated the expected recruitment of pelvic and pudendal fibers. We found that SCS can selectively recruit pudendal afferents, in agreement with our experimental data in cats. Our results suggest that SCS is a promising technology to improve bladder function after spinal cord injury, and computational modeling unlocks the potential for highly optimized, selective stimulation. Clinical Relevance - This model provides a method to non-invasively establish electrode placement and stimulation parameters for improving bladder function with epidural spinal cord stimulation.