Animal Model Research Center, Jeonbuk Department of Inhalation Research, Korea Institute of Toxicology, Jeongup, Republic of Korea.
School of Mechanical Engineering, Gwangju Institute of Science and Technology, Gwangju, Republic of Korea.
J Neurosci Methods. 2018 Feb 1;295:139-143. doi: 10.1016/j.jneumeth.2017.12.009. Epub 2017 Dec 15.
It is challenging for researchers performing stereotactic procedures to transition from small animals to non-human primate (NHP) experiments. The NHP stereotactic atlas is based on ear-bar zero (EBZ), which is an anatomical reference frame that is not visible during surgery. Most current NHP stereotactic systems require high-cost MRI or CT imaging and complex computer processing to determine the stereotactic coordinates, limiting the procedure to those with significant expertise.
We have designed a simplified adaptor consisting of a circular arc for coronal tilt, a carrier for electrodes or cannulas, and an anchor to attach the adaptor to a conventional stereotactic frame. Our adaptor allows easy identification of the EBZ with the help of an anchor notch, and provides digital distance sensors without the need for imaging data or computer processing. Our system enables the use of trajectories that avoid injury to important structures and vessels.
We tested the accuracy of our system using simulated targeting with phantoms, and demonstrated sub-millimeter accuracy. Infusion of methylene blue also showed satisfactory staining in target structures deep in the brain.
This system does not require high-cost imaging and extra training to determine EBZ. Once EBZ is set automatically by the system itself, targeting is similar to that in small animal stereotactic procedure.
Our simple adaptor will aid researchers who plan to conduct experiments involving stereotactic surgery in NHPs.
研究人员在从小动物转向非人类灵长类动物(NHP)实验时,进行立体定向手术具有挑战性。NHP 立体定向图谱基于耳棒零位(EBZ),这是一个在手术过程中不可见的解剖参考框架。目前大多数 NHP 立体定向系统需要高成本的 MRI 或 CT 成像和复杂的计算机处理来确定立体定向坐标,这使得该程序仅限于具有丰富专业知识的人员。
我们设计了一种简化的适配器,由冠状倾斜的圆弧、电极或套管的载体以及将适配器连接到常规立体定向框架的锚组成。我们的适配器借助锚点槽可轻松识别 EBZ,并提供数字距离传感器,而无需成像数据或计算机处理。我们的系统可以使用避免损伤重要结构和血管的轨迹。
我们使用幻影进行了模拟靶向测试,验证了我们系统的准确性,达到了亚毫米级精度。亚甲基蓝的注射也显示出在大脑深部目标结构中的令人满意的染色效果。
该系统不需要高成本的成像和额外的培训来确定 EBZ。一旦系统自动设置 EBZ,靶向与小动物立体定向手术相似。
我们的简单适配器将帮助计划在 NHP 中进行立体定向手术实验的研究人员。