Troughton Joe G, Ansong Yaw O, Duobaite Nida, Proctor Christopher M
Department of Engineering, University of Cambridge, Trumpington Street, Cambridge, United Kingdom.
Department of Engineering Science, Institute of Biomedical Engineering, University of Oxford, Oxford, United Kingdom.
APL Bioeng. 2023 Nov 2;7(4):046109. doi: 10.1063/5.0163264. eCollection 2023 Dec.
Spinal cord injury (SCI) arises from damage to the spinal cord, often caused by trauma or disease. The resulting sensorimotor dysfunction is variable and dependent on the extent of the injury. Despite years of research, curative options for SCI remain limited. However, recent advancements in electric field stimulated axonal regrowth have shown promise for neuronal regeneration. One roadblock in the development of therapeutic treatments based on this is a lack of understanding of the exogenous electric field distribution in the injured tissue, and in particular, how this is influenced by electrode geometry and placement. To better understand this electric field, and provide a means by which it can be optimized, we have developed a finite element model of such spinal cord treatment. We investigate the impact of variations in electrode geometry, spinal cord size, and applied current magnitude as well as looking at several injury models in relation to clinically observed outcomes. Through this, we show that electrode shape has little effect on the induced electric field, that the placement of these electrodes has a noticeable influence on the field distribution, and that the magnitude of this field is governed by both the applied current and the spinal cord morphology. We also show that the injury modality influences the induced field distribution and that a stronger understanding of the injury will help decide treatment parameters. This work provides guidance in the design of electrodes for future clinical application in direct current electric field stimulation for axonal regeneration.
脊髓损伤(SCI)源于脊髓受损,通常由创伤或疾病引起。由此产生的感觉运动功能障碍各不相同,取决于损伤的程度。尽管经过多年研究,脊髓损伤的治愈选择仍然有限。然而,电场刺激轴突再生方面的最新进展已显示出神经元再生的前景。基于此开发治疗方法的一个障碍是对损伤组织中外源性电场分布缺乏了解,尤其是其如何受到电极几何形状和放置的影响。为了更好地理解这种电场,并提供一种优化它的方法,我们开发了一个脊髓治疗的有限元模型。我们研究电极几何形状、脊髓大小和施加电流大小的变化的影响,并研究几种与临床观察结果相关的损伤模型。通过这项研究,我们表明电极形状对感应电场影响很小,这些电极的放置对电场分布有显著影响,并且该电场的大小由施加的电流和脊髓形态共同决定。我们还表明损伤方式会影响感应电场分布,对损伤有更深入的了解将有助于确定治疗参数。这项工作为未来在轴突再生的直流电场刺激临床应用中电极的设计提供了指导。