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用于颅内动脉瘤血管内治疗的热可程控 3D 形状记忆聚合物基器件的设计。

Design of thermally programmable 3D shape memory polymer-based devices tailored for endovascular treatment of intracranial aneurysms.

机构信息

Department of Bioengineering, University of California Riverside, Riverside, CA, USA.

School of Aerospace and Mechanical Engineering, The University of Oklahoma, Norman, OK, USA.

出版信息

J Mech Behav Biomed Mater. 2024 Dec;160:106784. doi: 10.1016/j.jmbbm.2024.106784. Epub 2024 Oct 16.

Abstract

Despite recent technological advancements in endovascular embolization devices for treating intracranial aneurysms (ICAs), incomplete occlusion and aneurysm recanalization remain critical challenges. Shape memory polymer (SMP)-based devices, which can be manufactured and tailored to patient-specific aneurysm geometries, possess the potential to overcome the suboptimal treatment outcome of the gold standard: endovascular coiling. In this work, we propose a highly porous patient-specific SMP embolic device fabricated via 3D printing to optimize aneurysm occlusion, and thus, improve the long-term efficacy of endovascular treatment. To facilitate device deployment at the aneurysm via Joule-heating, we introduce a stable, homogeneous coating of poly-pyrrole (PPy) to enhance the electrical conductivity in the SMP material. Using an in-house pulse width modulation circuit, we induced Joule-heating and characterized the shape recovery of the PPy-coated SMP embolic devices. We found that the employed PPy coating enables enhanced electrical and thermal conductivity while only slightly altering the glass transition temperature of the SMP material. Additionally, from a series of parametric studies, we identified the combination of catalyst concentration and pyrrole polymerization time that yielded the shape recovery properties ideal for ICA endovascular therapy. Collectively, these findings highlight a promising material coating for a future coil-free, personalized shape memory polymer (SMP) embolic device, designed to achieve long-lasting, complete occlusion of aneurysms.

摘要

尽管目前在血管内栓塞治疗颅内动脉瘤(ICAs)的设备方面取得了技术进步,但不完全闭塞和动脉瘤再通仍然是关键挑战。基于形状记忆聚合物(SMP)的设备可以根据患者特定的动脉瘤几何形状进行制造和定制,有可能克服黄金标准——血管内线圈——的治疗效果不佳的问题。在这项工作中,我们提出了一种通过 3D 打印制造的高度多孔的患者特异性 SMP 栓塞装置,以优化动脉瘤闭塞,从而提高血管内治疗的长期疗效。为了通过焦耳加热促进装置在动脉瘤内的部署,我们引入了一种稳定、均匀的聚吡咯(PPy)涂层,以增强 SMP 材料的导电性。我们使用内部脉冲宽度调制电路诱导焦耳加热,并对 PPy 涂层的 SMP 栓塞装置的形状恢复进行了表征。我们发现,所采用的 PPy 涂层能够提高电导率和热导率,而对 SMP 材料的玻璃化转变温度的影响很小。此外,通过一系列参数研究,我们确定了催化剂浓度和吡咯聚合时间的组合,从而获得了理想的形状恢复特性,适用于 ICA 血管内治疗。总的来说,这些发现突出了一种有前途的材料涂层,可用于未来无线圈、个性化的形状记忆聚合物(SMP)栓塞装置,旨在实现动脉瘤的持久、完全闭塞。

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