Kolluru Chaitanya, Subramaniam Ananya, Liu Yehe, Upadhye Aniruddha, Khela Monty, Druschel Lindsey, Fereidouni Farzad, Levenson Richard, Shoffstall Andrew, Jenkins Michael, Wilson David L
Department of Biomedical Engineering, Case Western Reserve University, Cleveland, OH, USA.
Department of Pathology, Univ. of California Davis, CA USA.
Proc SPIE Int Soc Opt Eng. 2021 Mar;11649. doi: 10.1117/12.2577037. Epub 2021 Mar 5.
Vagus nerve stimulation (VNS) is a method to treat drug-resistant epilepsy and depression, but therapeutic outcomes are often not ideal. Newer electrode designs such as intra-fascicular electrodes offer potential improvements in reducing off-target effects but require a detailed understanding of the fascicular anatomy of the vagus nerve. We have adapted a section-and-image technique, cryo-imaging, with UV excitation to visualize fascicles along the length of the vagus nerve. In addition to offering optical sectioning at the surface via reduced penetration depth, UV illumination also produces sufficient contrast between fascicular structures and connective tissue. Here we demonstrate the utility of this approach in pilot experiments. We imaged fixed, cadaver vagus nerve samples, segmented fascicles, and demonstrated 3D tracking of fascicles. Such data can serve as input for computer models of vagus nerve stimulation.
迷走神经刺激(VNS)是一种治疗耐药性癫痫和抑郁症的方法,但治疗效果往往不理想。较新的电极设计,如束内电极,在减少非靶向效应方面有潜在的改进,但需要详细了解迷走神经的束状解剖结构。我们采用了一种切片成像技术——冷冻成像,并结合紫外线激发,以可视化迷走神经全长的神经束。除了通过降低穿透深度在表面进行光学切片外,紫外线照明还能在神经束结构和结缔组织之间产生足够的对比度。在此,我们在试点实验中展示了这种方法的实用性。我们对固定的尸体迷走神经样本进行成像,分割神经束,并展示了神经束的三维追踪。这些数据可作为迷走神经刺激计算机模型的输入。