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Bioactive Hydrogels with Enhanced Initial and Sustained Cell interactions

机译:具有增强的初始和持续细胞相互作用的生物活性水凝胶

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The highly tunable properties of poty(ethylene glycol) (PEG)-based hydrogel systems permit their use in a wide array of regenerative medicine and drug delivery applications. One of the most valuable properties of PEG hydrogels is their intrinsic resistance to protein adsorption and cell adhesion, as it allows for a controlled introduction of desired bioactive factors including proteins, peptides, and drugs. Acrylate-PEG-AT-hydroxysUccinimide (Acr-PEG-NHS) is widely utilized as a PEG liriker to functionalize bioactive factors with photo-cross-linkable groups. This enables their facile incorporation into PEG hydrogel networks or the use of PEGylation strategies for drug delivery. However, PEG linkers can sterically block integrin binding sites on functionalized proteins and reduce cell-material interactions. In this study we demonstrate that reducing the density of PEG linkers on protein backbones during functionalization results in significantly improved cell adhesion and spreading to bioactive hydrogels. However, this reduction in functionalization density also increases protein loss from the matrix over time due to ester hydrolysis of the Acr-PEG-NHS linkers. To address this, a novel PEG linker, acrylamide-PEG-isocyanate (Aam-PEG-I), with enhanced hydrolytic stability was synthesized. It was found that decreasing functionalization density with Aam-PEG-I resulted in comparable increases in cell adhesion and spreading to Acr-PEG-NHS systems while maintaining protein and bioactivity levels within the hydrogel network over a significandy longer time frame. Thus, Aam-PEG-I provides a new option for protein functionalization for use in a wide range of applications that improves initial and sustained cell-material interactions to enhance control of bioactivity.
机译:便壶(乙二醇)(PEG)基水凝胶系统的高度可调性使其可用于多种再生医学和药物输送应用。 PEG水凝胶最有价值的特性之一是其对蛋白质吸附和细胞黏附的固有抗性,因为它可以控制地引入所需的生物活性因子,包括蛋白质,肽和药物。丙烯酸酯-PEG-AT-羟基尿嘧啶(Acr-PEG-NHS)被广泛用作PEG来修饰具有光可交联基团的生物活性因子。这使得它们易于掺入PEG水凝胶网络或使用PEG化策略进行药物递送。但是,PEG连接子可以在空间上阻断功能化蛋白上的整联蛋白结合位点,并减少细胞与材料的相互作用。在这项研究中,我们证明了在功能化过程中降低蛋白质骨架上PEG接头的密度会导致细胞粘附力的显着改善以及向生物活性水凝胶的扩散。然而,由于Acr-PEG-NHS接头的酯水解,随着时间的流逝,官能化密度的降低也增加了蛋白质从基质中的损失。为了解决这个问题,合成了具有增强的水解稳定性的新型PEG接头,丙烯酰胺-PEG-异氰酸酯(Aam-PEG-1)。发现使用Aam-PEG-1降低的官能化密度导致细胞粘附性的相当增加,并扩散到Acr-PEG-NHS系统,同时在水凝胶网络内维持蛋白质和生物活性水平的时间更长。因此,Aam-PEG-I为蛋白质功能化提供了一种新的选择,可用于广泛的应用中,可改善初始和持续的细胞-材料相互作用,从而增强对生物活性的控制。

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