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用于非人灵长类动物的定制植入物和手术导板的3D打印与建模。

3D printing and modelling of customized implants and surgical guides for non-human primates.

作者信息

Chen Xing, Possel Jessy K, Wacongne Catherine, van Ham Anne F, Klink P Christiaan, Roelfsema Pieter R

机构信息

Department of Vision & Cognition, Netherlands Institute for Neuroscience, Meibergdreef 47, 1105 BA, Amsterdam, Netherlands.

Department of Vision & Cognition, Netherlands Institute for Neuroscience, Meibergdreef 47, 1105 BA, Amsterdam, Netherlands.

出版信息

J Neurosci Methods. 2017 Jul 15;286:38-55. doi: 10.1016/j.jneumeth.2017.05.013. Epub 2017 May 13.

Abstract

BACKGROUND

Primate neurobiologists use chronically implanted devices such as pedestals for head stabilization and chambers to gain access to the brain and study its activity. Such implants are skull-mounted, and made from a hard, durable material, such as titanium.

NEW METHOD

Here, we present a low-cost method of creating customized 3D-printed cranial implants that are tailored to the anatomy of individual animals. We performed pre-surgical computed tomography (CT) and magnetic resonance (MR) scans to generate three-dimensional (3D) models of the skull and brain. We then used 3D modelling software to design implantable head posts, chambers, and a pedestal anchorage base, as well as craniotomy guides to aid us during surgery. Prototypes were made from plastic or resin, while implants were 3D-printed in titanium. The implants underwent post-processing and received a coating of osteocompatible material to promote bone integration.

RESULTS

Their tailored fit greatly facilitated surgical implantation, and eliminated the gap between the implant and the bone. To date, our implants remain robust and well-integrated with the skull.

COMPARISON WITH EXISTING METHOD(S): Commercial-off-the-shelf solutions typically come with a uniform, flat base, preventing them from sitting flush against the curved surface of the skull. This leaves gaps for fluid and tissue ingress, increasing the risk of microbial infection and tissue inflammation, as well as implant loss.

CONCLUSIONS

The use of 3D printing technology enabled us to quickly and affordably create unique, complex designs, avoiding the constraints levied by traditional production methods, thereby boosting experimental success and improving the wellbeing of the animals.

摘要

背景

灵长类神经生物学家使用长期植入设备,如用于头部稳定的基座和用于进入大脑并研究其活动的腔室。此类植入物安装在颅骨上,由坚硬耐用的材料制成,如钛。

新方法

在此,我们展示了一种低成本方法,可制造针对个体动物解剖结构定制的3D打印颅骨植入物。我们进行了术前计算机断层扫描(CT)和磁共振(MR)扫描,以生成颅骨和大脑的三维(3D)模型。然后,我们使用3D建模软件设计可植入的头部固定柱、腔室和基座锚固基座,以及在手术过程中辅助我们的开颅手术导向器。原型由塑料或树脂制成,而植入物则用钛进行3D打印。植入物经过后处理,并接受了一层骨相容性材料涂层以促进骨整合。

结果

它们量身定制的贴合度极大地便于手术植入,并消除了植入物与骨骼之间的间隙。迄今为止,我们的植入物仍然坚固,并与颅骨良好整合。

与现有方法的比较

现成的商业解决方案通常带有统一的平底座,这使得它们无法与颅骨的曲面紧密贴合。这会留下液体和组织进入的间隙,增加微生物感染和组织炎症的风险,以及植入物丢失的风险。

结论

3D打印技术的使用使我们能够快速且经济地创建独特、复杂的设计,避免传统生产方法带来的限制,从而提高实验成功率并改善动物的健康状况。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/20a2/5482398/91b49f3751ae/fx1.jpg

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