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Low density biodegradable shape memory polyurethane foams for embolic biomedical applications

机译:用于栓塞生物医学应用的低密度可生物降解的形状记忆聚氨酯泡沫

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摘要

Low density shape memory polymer foams hold significant interest in the biomaterials community for their potential use in minimally invasive embolic biomedical applications. The unique shape memory behavior of these foams allows them to be compressed to a miniaturized form, which can be delivered to an anatomical site via a transcatheter process, and thereafter actuated to embolize the desired area. Previous work in this field has described the use of a highly covalently crosslinked polymer structure for maintaining excellent mechanical and shape memory properties at the application-specific ultra low densities. This work is aimed at further expanding the utility of these biomaterials, as implantable low density shape memory polymer foams, by introducing controlled biodegradability. A highly covalently crosslinked network structure was maintained by use of low molecular weight, symmetrical and polyfunctional hydroxyl monomers such as Polycaprolactone triol (PCL-t, Mn 900 g), N,N,N0,N0-Tetrakis (hydroxypropyl) ethylenediamine (HPED), and Tris (2-hydroxyethyl) amine (TEA). Control over the degradation rate of the materials was achieved by changing the concentration of the degradable PCL-t monomer, and by varying the material hydrophobicity. These porous SMP materials exhibit a uniform cell morphology and excellent shape recovery, along with controllable actuation temperature and degradation rate. We believe that they form a new class of low density biodegradable SMP scaffolds that can potentially be used as “smart” non-permanent implants in multiple minimally invasive biomedical applications.
机译:低密度形状记忆聚合物泡沫由于在微创栓塞生物医学应用中的潜在用途而引起了生物材料界的极大兴趣。这些泡沫材料独特的形状记忆特性使其可以压缩为小型化形式,可以通过导管过程将其输送到解剖部位,然后进行驱动以栓塞所需区域。该领域的先前工作已经描述了使用高度共价交联的聚合物结构以在特定于应用的超低密度下保持优异的机械和形状记忆性能。这项工作旨在通过引入受控的生物降解性,进一步扩大这些生物材料作为可植入的低密度形状记忆聚合物泡沫的用途。通过使用低分子量,对称和多官能羟基单体,例如聚己内酯三醇(PCL-t,Mn 900 g),N,N,N0,N0-四(羟基丙基)乙二胺(HPED),可以维持高度共价交联的网络结构和三(2-羟乙基)胺(TEA)。通过改变可降解PCL-t单体的浓度和改变材料的疏水性,可以控制材料的降解速率。这些多孔SMP材料具有均匀的细胞形态和出色的形状恢复性,以及可控的驱动温度和降解速率。我们认为,它们构成了新型的低密度可生物降解SMP支架,可在多种微创生物医学应用中用作“智能”非永久性植入物。

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