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首页> 外文期刊>Biomacromolecules >Self-Assembled Peptide Amphiphile Nanofibers and PEG Composite Hydrogels as Tunable ECM Mimetic Microenvironment
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Self-Assembled Peptide Amphiphile Nanofibers and PEG Composite Hydrogels as Tunable ECM Mimetic Microenvironment

机译:自组装肽两亲性纳米纤维和PEG复合水凝胶可调节ECM模拟微环境

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Natural extracellular matrix (ECM) consists of complex signals interacting with each other to organize cellular behavior and responses. This sophisticated microenvironment can be mimicked by advanced materials presenting essential biochemical and physical properties in a synergistic manner. In this work, we developed a facile fabrication method for a novel nanofibrous self-assembled peptide amphiphile (PA) and poly(ethylene glycol) (PEG) composite hydrogel system with independently tunable biochemical, mechanical, and physical cues without any chemical modification of polymer backbone or additional polymer processing techniques to create synthetic ECM analogues. This approach allows noninteracting modification of multiple niche properties (e.g., bioactive ligands, stiffness, porosity), since no covalent conjugation method was used to modify PEG monomers for incorporation of bioactivity and porosity. Combining the self-assembled PA nanofibers with a chemically cross-linked polymer network simply by facile mixing followed by photopolymerization resulted in the formation of porous bioactive hydrogel systems. The resulting porous network can be functionalized with desired bioactive signaling epitopes by simply altering the amino acid sequence of the self-assembling PA molecule. In addition, the mechanical properties of the composite system can be precisely controlled by changing the PEG concentration. Therefore, nanofibrous self-assembled PA/PEG composite hydrogels reported in this work can provide new opportunities as versatile synthetic mimics of ECM with independently tunable biological and mechanical properties for tissue engineering and regenerative medicine applications. In addition, such systems could provide useful tools for investigation of how complex niche cues influence cellular behavior and tissue formation both in two-dimensional and three-dimensional platforms.
机译:天然细胞外基质(ECM)由彼此相互作用以组织细胞行为和反应的复杂信号组成。先进的材料可以模仿这种复杂的微环境,这些材料以协同方式呈现出必不可少的生化和物理特性。在这项工作中,我们开发了一种新颖的纳米纤维自组装肽两亲(PA)和聚(乙二醇)(PEG)复合水凝胶系统的简便制造方法,该系统具有独立可调的生化,机械和物理线索,无需对聚合物进行任何化学修饰骨架或其他聚合物加工技术来产生合成的ECM类似物。该方法允许多种生态位特性(例如,生物活性配体,刚度,孔隙率)的非相互作用修饰,因为没有使用共价缀合方法来修饰PEG单体以掺入生物活性和孔隙率。简单地通过混合然后光聚合将自组装的PA纳米纤维与化学交联的聚合物网络结合起来,就形成了多孔生物活性水凝胶体系。通过简单地改变自组装PA分子的氨基酸序列,可以用所需的生物活性信号表位将所得的多孔网络功能化。另外,可以通过改变PEG浓度来精确控制复合系统的机械性能。因此,这项工作中报道的纳米纤维自组装PA / PEG复合水凝胶可以为组织工程和再生医学应用中具有可独立调节的生物学和机械特性的ECM的多功能合成模拟物提供新的机会。另外,这样的系统可以提供有用的工具来研究复杂的利基线索如何在二维和三维平台中影响细胞行为和组织形成。

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