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Enhanced mechanical properties of photo-clickable thiol-ene PEG hydrogels through repeated photopolymerization of in-swollen macromer

机译:通过溶胀大分子单体的重复光聚合增强可光点击的硫醇-烯PEG水凝胶的机械性能

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摘要

Current hydrogels used for tissue engineering are limited to a single range of mechanical properites within the replicated tissue construct. We show that repeated in-swelling by a single hydrogel pre-cursor solution into an existing polymerized hydrogel followed by photo-exposure increases hydrogel mechanical properties. The process is demonstrated with a photo-clickable thiol-ene hydrogel using a biocompatible precursor solution of poly(ethylene glycol) dithiol and 8-arm poly(ethylene glycol) functionalized with norbornene. The polymer fraction in the precursor solution was varied by 5, 10, and 20 percent by weight and an off-stoichiometric ratio of thiol:ene was used, leaving free enes available for subsequent reaction. Multiple swelling and exposure cycles for the same precursor solution were performed. The compressive modulus increased by a factor between three and ten (formulation dependent), while volume swelling ratio decreased by a factor of two, consistent with increased crosslink density. The modified hydrogels also demonstrate increased toughness by fracturing at compressive forces five times greater than the initial hydrogel. We attribute the increased toughness to subsequent increases in crosslink density created by the repeated photopolymerization of in-swollen macromer. This technique demonstrates the ability to significantly modify hydrogel network properites by exploiting swelling and polymerization processes that can be applied to traditional three-dimensional printing systems to spatially control local mechanical properties.
机译:当前用于组织工程的水凝胶限于复制的组织构建体内的单个机械特性范围。我们表明,由单个水凝胶前体溶液反复溶胀到现有的聚合水凝胶中,然后进行光暴露会增加水凝胶的机械性能。用可光点击的硫醇-烯水凝胶证明了该工艺,该水凝胶使用了聚乙二醇二硫醇和降冰片烯功能化的8臂聚乙二醇的生物相容性前体溶液。前体溶液中的聚合物分数按重量计变化了5%,10%和20%,并且使用了化学计量比为硫醇:烯的混合物,剩下的游离烯可用于后续反应。对相同的前体溶液进行了多次溶胀和暴露循环。压缩模量增加了三到十倍(取决于配方),而体积溶胀率下降了二倍,这与交联密度的增加一致。改性的水凝胶还通过在比原始水凝胶大五倍的压缩力下断裂而显示出增加的韧性。我们将韧性增加归因于溶胀大分子单体的重复光聚合而产生的交联密度的后续增加。该技术证明了通过利用溶胀和聚合过程可显着修饰水凝胶网络特性的能力,该过程可应用于传统的三维印刷系统以空间控制局部机械性能。

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