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Toward Hemocompatible Self-assembling Antimicrobial Nanofibers: Understanding the Synergistic Effect of Supramolecular Structure and PEGylation on Hemocompatibility

机译:走向血液相容性自组装抗菌纳米纤维:了解超分子结构和聚乙二醇化对血液相容性的协同作用。

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摘要

A significant challenge associated with systemic delivery of cationic antimicrobial peptides and polymers lies in their limited hemocompatibility toward vast numbers of circulating red blood cells (RBCs). Supramolecular assembly of cationic peptides and polymers can be an effective strategy to develop an array of antimicrobial nanomaterials with tunable material structures, stability and thus optimized bioactivity to overcome some of the existing challenges associated with conventional antimicrobials. In this work, we will demonstrate the supramolecular design of self-assembling antimicrobial nanofibers (SAANs) which have tunable supramolecular nanostructures, stability, internal molecular packing and surface chemistry through self-assembly of de novo designed cationic peptides and peptide-PEG conjuguates. The interaction of the SAANs with human RBCs was evaluated in a stringent biological assay (beyond a traditional hemolysis assay) where both hemolytic and eryptotic activity were examined to establish a fundamental understanding on the correlation between material structure and hemocompatibility. It was found that although the SAANs showed moderate hemolytic activities, their abilities to induce eryptosis vary significantly and are much more sensitive to the internal molecular packing, supramolecular nanostructure and stability of the nanofiber. Improved hemocompatibility requires PEGylation on stable supramolecular nanofibers composed of highly organized β-sheet structure while PEG conjugation on weakly packed nanofibers composed of partially denatured β-sheets did not show improvement. The current study reveals the fundamental mechanism involved in the selective hemocompatibility improvement of the SAANs upon PEG conjugation. The structure-activity relationship developed in this study will provide important guidance for the future design of a broader family of peptide and polymer-based assemblies with optimized antimicrobial activity and hemocompatibility.
机译:与阳离子抗微生物肽和聚合物的全身递送相关的重大挑战在于它们对大量循环红细胞(RBC)的血液相容性有限。阳离子肽和聚合物的超分子组装可以是开发具有可调材料结构,稳定性并因此具有最佳生物活性的抗菌纳米材料阵列的有效策略,以克服与常规抗菌剂相关的一些现有挑战。在这项工作中,我们将展示自组装抗微生物纳米纤维(SAAN)的超分子设计,这些纳米纤维通过从头设计的阳离子肽和肽-PEG共轭物的自组装具有可调的超分子纳米结构,稳定性,内部分子堆积和表面化学。 SAAN与人类RBC的相互作用在严格的生物学分析(超越传统的溶血分析)中进行了评估,其中对溶血和加密活性均进行了检查,以建立对物质结构与血液相容性之间相关性的基本了解。已经发现,尽管SAAN显示出适度的溶血活性,但是它们诱导密码的能力显着不同,并且对内部分子堆积,超分子纳米结构和纳米纤维的稳定性更加敏感。改善的血液相容性要求在由高度组织化的β-sheet结构组成的稳定的超分子纳米纤维上进行PEG化,而在由部分变性的β-sheets组成的弱包装纳米纤维上进行PEG缀合则没有改善。当前的研究揭示了PEG结合后SAAN选择性血液相容性改善的基本机制。在这项研究中建立的结构-活性关系将为未来设计更广泛的具有最佳抗菌活性和血液相容性的基于肽和聚合物的组装家族提供重要指导。

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