Nash Landon D, Browning Monroe Mary Beth, Ding Yong-Hong, Ezell Kendal P, Boyle Anthony J, Kadirvel Ramanathan, Kallmes David F, Maitland Duncan J
Biomedical Engineering, Texas A&M University, College Station, TX 77843, USA.
Department of Radiology, Mayo Clinic, Rochester, MN 55905, USA.
Polymers (Basel). 2017;9(8). doi: 10.3390/polym9080381. Epub 2017 Aug 20.
Shape memory polymers can be programmed into a secondary geometry and recovered to their primary geometry with the application of a controlled stimulus. Porous shape memory polymer foam scaffolds that respond to body temperature show particular promise for embolic medical applications. A limitation for the minimally invasive delivery of these materials is an inherent lack of X-ray contrast. In this work, a triiodobenzene containing a monomer was incorporated into a shape memory polymer foam material system to chemically impart X-ray visibility and increase material toughness. Composition and process changes enabled further control over material density and thermomechanical properties. The proposed material system demonstrates a wide range of tailorable functional properties for the design of embolic medical devices, including X-ray visibility, expansion rate, and porosity. Enhanced visualization of these materials can improve the acute performance of medical devices used to treat vascular malformations, and the material porosity provides a healing scaffold for durable occlusion.
形状记忆聚合物可以被编程为二级几何形状,并通过施加受控刺激恢复到其一级几何形状。对体温有响应的多孔形状记忆聚合物泡沫支架在栓塞医疗应用中显示出特别的前景。这些材料微创递送的一个限制是固有缺乏X射线对比度。在这项工作中,将含三碘苯的单体掺入形状记忆聚合物泡沫材料体系中,以化学方式赋予X射线可见性并提高材料韧性。组成和工艺的改变能够进一步控制材料密度和热机械性能。所提出的材料体系展示了用于栓塞医疗设备设计的广泛可定制功能特性,包括X射线可见性、膨胀率和孔隙率。这些材料增强的可视化可以改善用于治疗血管畸形的医疗设备的急性性能,并且材料孔隙率为持久闭塞提供了愈合支架。