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原文重现:作为一种可调形状记忆致动器的悬挂烯丙基交联在血管应用中的应用。

Reprint of: Pendant allyl crosslinking as a tunable shape memory actuator for vascular applications.

机构信息

Department of Biomedical Engineering, Vanderbilt University, Nashville, TN 37235, United States.

Institute of Chemical Biology, Vanderbilt University, Nashville, TN 37235, United States.

出版信息

Acta Biomater. 2016 Apr 1;34:73-83. doi: 10.1016/j.actbio.2016.03.021.

Abstract

UNLABELLED

Thermo-responsive shape memory polymers (SMPs) can be programmed to fit into small-bore incisions and recover their functional shape upon deployment in the body. This property is of significant interest for developing the next generation of minimally-invasive medical devices. To be used in such applications, SMPs should exhibit adequate mechanical strengths that minimize adverse compliance mismatch-induced host responses (e.g. thrombosis, hyperplasia), be biodegradable, and demonstrate switch-like shape recovery near body temperature with favorable biocompatibility. Combinatorial approaches are essential in optimizing SMP material properties for a particular application. In this study, a new class of thermo-responsive SMPs with pendant, photocrosslinkable allyl groups, x%poly(ε-caprolactone)-co-y%(α-allyl carboxylate ε-caprolactone) (x%PCL-y%ACPCL), are created in a robust, facile manner with readily tunable material properties. Thermomechanical and shape memory properties can be drastically altered through subtle changes in allyl composition. Molecular weight and gel content can also be altered in this combinatorial format to fine-tune material properties. Materials exhibit highly elastic, switch-like shape recovery near 37 °C. Endothelial compatibility is comparable to tissue culture polystyrene (TCPS) and 100%PCL in vitro and vascular compatibility is demonstrated in vivo in a murine model of hindlimb ischemia, indicating promising suitability for vascular applications.

STATEMENT OF SIGNIFICANCE

With the ongoing thrust to make surgeries minimally-invasive, it is prudent to develop new biomaterials that are highly compatible and effective in this workflow. Thermo-responsive shape memory polymers (SMPs) have great potential for minimally-invasive applications because SMP medical devices (e.g. stents, grafts) can fit into small-bore minimally-invasive surgical devices and recover their functional shape when deployed in the body. To realize their potential, it is imperative to devise combinatorial approaches that enable optimization of mechanical, SM, and cellular responses for a particular application. In this study, a new class of thermo-responsive SMPs is created in a robust, facile manner with readily tunable material properties. Materials exhibit excellent, switch-like shape recovery near body temperature and promising biocompatibility for minimally-invasive vascular applications.

摘要

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热响应形状记忆聚合物(SMPs)可以编程为适合小口径切口,并在体内部署时恢复其功能形状。这一特性对于开发下一代微创医疗器械具有重要意义。为了在这类应用中使用,SMPs 应具有足够的机械强度,以最小化因顺应性不匹配而引起的宿主反应(例如血栓形成、增生),应具有生物降解性,并在接近体温时表现出类似开关的形状恢复,同时具有良好的生物相容性。组合方法对于优化特定应用的 SMP 材料性能至关重要。在这项研究中,通过一种稳健、简便的方法创建了一类具有侧挂式、光交联烯丙基基团的新型热响应 SMPs,即 x%聚(ε-己内酯)-co-y%(α-烯丙基羧酸 ε-己内酯)(x%PCL-y%ACPCL),其材料性能可通过烯丙基组成的细微变化而发生显著改变。在这种组合形式下,分子量和凝胶含量也可以改变,以微调材料性能。材料在接近 37°C 时表现出高弹性、类似开关的形状恢复。内皮相容性与组织培养聚苯乙烯(TCPS)和 100%PCL 相当,体内实验也证明了血管相容性,表明其在血管应用方面具有良好的适用性。

意义陈述

随着手术微创化的持续推进,开发高度兼容且在这种工作流程中有效的新型生物材料是明智之举。热响应形状记忆聚合物(SMPs)在微创应用方面具有巨大潜力,因为 SMP 医疗器械(例如支架、移植物)可以放入小口径微创手术器械中,并在体内部署时恢复其功能形状。为了实现其潜力,必须设计组合方法,以优化特定应用的机械、形状记忆和细胞反应。在这项研究中,通过一种稳健、简便的方法创建了一类新型热响应 SMPs,其材料性能可通过烯丙基组成的细微变化而发生显著改变。材料在接近体温时表现出出色的、类似开关的形状恢复,具有微创血管应用的良好生物相容性。

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