Department of Biomedical and Biotechnological Sciences, University of Catania, 95123 Catania, Italy.
Department of Biomedical and Biotechnological Sciences, University of Catania, 95123 Catania, Italy
eNeuro. 2022 Sep 28;9(5). doi: 10.1523/ENEURO.0099-22.2022. Print 2022 Sep-Oct.
Implantation of guide cannulas is a widely used technique to access specific brain areas. Although commercially available, the need to personalize these implants and the high cost prompted us to design open-source customized devices taking advantage of 3D printing technology. Our cannulas consisted in a 3D-printed head mount designed according to the Paxinos coordinates to reach the CA1 area of the hippocampus. To cut guide cannulas to the proper length, we designed and realized an original 3D-printed linear motion apparatus. Polylactic acid thermoplastic polymer was used as printing material. Homemade or commercial cannulas were implanted in 4- to 6-month-old wild-type mice and intrahippocampal injections of amyloid-β peptide at different concentrations were performed. behavioral studies of novel object recognition indicated that results obtained with homemade versus commercial devices were comparable. Methylene blue injections and Nissl staining confirmed the correct localization of cannulas in the CA1 area of mouse hippocampus. Our method allows a fast manufacturing of hippocampal cannulas preserving the required precision at very low cost. Furthermore, this system can be easily modified to produce cannulas to target other brain areas. In conclusion, 3D printing might be used as a useful and versatile technology to realize open-source customized devices in neuroscience laboratories.
植入引导套管是一种广泛应用于进入特定脑区的技术。尽管有商业上可用的产品,但需要个性化这些植入物和高昂的成本促使我们利用 3D 打印技术设计开源定制设备。我们的套管由根据 Paxinos 坐标设计的 3D 打印头架组成,用于到达海马体的 CA1 区域。为了将引导套管切割到适当的长度,我们设计并实现了一个原始的 3D 打印线性运动装置。使用聚乳酸热塑性聚合物作为打印材料。将自制或商业套管植入 4 至 6 个月大的野生型小鼠中,并在不同浓度下进行海马内淀粉样β肽注射。新物体识别的行为研究表明,自制与商用设备的结果相当。亚甲蓝注射和尼氏染色证实了套管在小鼠海马 CA1 区域的正确定位。我们的方法允许快速制造海马套管,以非常低的成本保持所需的精度。此外,该系统可以轻松修改以生产用于靶向其他脑区的套管。总之,3D 打印可能被用作神经科学实验室中实现开源定制设备的有用且多功能的技术。