Anderson Daria Nesterovich, Anderson Connor, Lanka Nikhita, Sharma Rohit, Butson Christopher R, Baker Brian W, Dorval Alan D
Department of Biomedical Engineering, College of Engineering, University of Utah, Salt Lake City, UT, United States.
Department of Neurosurgery, School of Medicine, University of Utah, Salt Lake City, UT, United States.
Front Neurosci. 2019 Oct 29;13:1152. doi: 10.3389/fnins.2019.01152. eCollection 2019.
Directional deep brain stimulation (DBS) leads have recently been approved and used in patients, and growing evidence suggests that directional contacts can increase the therapeutic window by redirecting stimulation to the target region while avoiding side-effect-inducing regions. We outline the design, fabrication, and testing of a novel directional DBS lead, the μDBS, which utilizes microscale contacts to increase the spatial resolution of stimulation steering and improve the selectivity in targeting small diameter fibers. We outline the steps of fabrication of the μDBS, from an integrated circuit design to post-processing and validation testing. We tested the onboard digital circuitry for programming fidelity, characterized impedance for a variety of electrode sizes, and demonstrated functionality in a saline bath. In a computational experiment, we determined that reduced electrode sizes focus the stimulation effect on small, nearby fibers. Smaller electrode sizes allow for a relative decrease in small-diameter axon thresholds compared to thresholds of large-diameter fibers, demonstrating a focusing of the stimulation effect within small, and possibly therapeutic, fibers. This principle of selectivity could be useful in further widening the window of therapy. The μDBS offers a unique, multiresolution design in which any combination of microscale contacts can be used together to function as electrodes of various shapes and sizes. Multiscale electrodes could be useful in selective neural targeting for established neurological targets and in exploring novel treatment targets for new neurological indications.
定向性脑深部电刺激(DBS)电极最近已获批准并应用于患者,越来越多的证据表明,定向性触点可通过将刺激重新导向目标区域,同时避开诱发副作用的区域,从而扩大治疗窗口。我们概述了一种新型定向DBS电极μDBS的设计、制造和测试,该电极利用微尺度触点来提高刺激引导的空间分辨率,并提高靶向小直径纤维的选择性。我们概述了μDBS的制造步骤,从集成电路设计到后处理和验证测试。我们测试了板载数字电路的编程保真度,表征了各种电极尺寸的阻抗,并在盐浴中展示了其功能。在一项计算实验中,我们确定减小电极尺寸可将刺激效果集中在小的、附近的纤维上。与大直径纤维的阈值相比,较小的电极尺寸可使小直径轴突阈值相对降低,这表明刺激效果集中在小的、可能具有治疗作用的纤维内。这种选择性原理可能有助于进一步扩大治疗窗口。μDBS提供了一种独特的多分辨率设计,其中任何微尺度触点的组合都可以一起用作各种形状和尺寸的电极。多尺度电极对于既定神经学靶点的选择性神经靶向以及探索新神经学适应症的新治疗靶点可能是有用的。