Center for Magnetic Resonance Research, University of Minnesota, Minneapolis, MN, USA.
Center for Magnetic Resonance Research, University of Minnesota, Minneapolis, MN, USA; Department of Medicine, Surgery and Dentistry, Scuola Medica Salernitana, University of Salerno, Salerno, Italy.
Neuroimage. 2020 Jun;213:116750. doi: 10.1016/j.neuroimage.2020.116750. Epub 2020 Mar 18.
Deep brain stimulation (DBS) has become an important tool in the management of a wide spectrum of diseases in neurology and psychiatry. Target selection is a vital aspect of DBS so that only the desired areas are stimulated. Segmented leads and current steering have been shown to be promising additions to DBS technology enabling better control of the stimulating electric field. Recently introduced orientation selective DBS (OS-DBS) is a related development permitting sensitization of the stimulus to axonal pathways with different orientations by freely controlling the primary direction of the electric field using multiple contacts. Here, we used OS-DBS to stimulate the subthalamic nucleus (STN) in healthy rats while simultaneously monitoring the induced brain activity with fMRI. Maximal activation of the sensorimotor and basal ganglia-thalamocortical networks was observed when the electric field was aligned mediolaterally in the STN pointing in the lateral direction, while no cortical activation was observed with the electric field pointing medially to the opposite direction. Such findings are consistent with mediolateral main direction of the STN fibers, as seen with high resolution diffusion imaging and histology. The asymmetry of the OS-DBS dipolar field distribution using three contacts along with the potential stimulation of the internal capsule, are also discussed. We conclude that OS-DBS offers an additional degree of flexibility for optimization of DBS of the STN which may enable a better treatment response.
深部脑刺激(DBS)已成为神经病学和精神病学中广泛疾病治疗的重要工具。目标选择是 DBS 的一个重要方面,以便仅刺激所需区域。分段导联和电流转向已被证明是 DBS 技术的有前途的补充,可以更好地控制刺激电场。最近引入的定向选择 DBS(OS-DBS)是一种相关的发展,通过使用多个触点自由控制电场的主要方向,允许对具有不同取向的轴突通路进行敏感化刺激。在这里,我们使用 OS-DBS 刺激健康大鼠的丘脑底核(STN),同时使用 fMRI 同时监测诱导的脑活动。当电场在 STN 中沿侧向中线对齐并指向外侧时,观察到感觉运动和基底节-丘脑皮质网络的最大激活,而当电场指向内侧到相反方向时,没有观察到皮质激活。这些发现与高分辨率扩散成像和组织学所见的 STN 纤维的中侧主要方向一致。还讨论了使用三个触点的 OS-DBS 偶极子场分布的不对称性以及内囊的潜在刺激。我们得出结论,OS-DBS 为 STN 的 DBS 优化提供了额外的灵活性,这可能使治疗反应更好。