School of Engineering and Materials Science & Institute of Bioengineering, Queen Mary, University of London, E1 4NS, UK.
Centre for Enzyme Innovation & School of Biological Sciences, University of Portsmouth, PO1 2DY, UK.
Biomater Sci. 2019 Dec 1;7(12):5132-5142. doi: 10.1039/c9bm00949c. Epub 2019 Oct 2.
Matrix metalloproteinases (MMPs) are a family of endopeptidases capable of degrading extracellular matrix (ECM) components. They are known to play crucial roles during the ECM turnover in both physiological and pathological processes. As such, their activities are utilized as biological stimuli to engineer MMP-responsive peptide-based biomaterials such as self-assembled peptide amphiphiles (PAs). Although previous studies have unveiled the role of PAs secondary structure on the mechanical and biological properties of their self-assembled nanostructures, the effect on the degradability of their assemblies by MMP-1 has not been reported. Herein, a series of PAs are designed and synthesized, all comprising the same MMP-1 cleavable domain but with variable structural segments, to decipher the role of PA's secondary structure on the MMP-1 degradability of their assemblies. This study reveals a correlation between the MMP-1 degradation efficiency and the β-sheet content of the self-assembled PA nanofibers, with the MMP-1 cleavability being significantly reduced in the PA nanofibers with stronger β-sheet characteristics. These results shed light on the role of supramolecular cohesion in PA assemblies on their hydrolysis by MMP-1 and open up the possibility to control the degradation rate of PA-based nanostructures by MMP-1 through tweaking their molecular sequences.
基质金属蛋白酶(MMPs)是一类能够降解细胞外基质(ECM)成分的内肽酶。它们在生理和病理过程中 ECM 转化过程中发挥着至关重要的作用。因此,它们的活性被用作生物刺激物来设计 MMP 响应肽基生物材料,如自组装肽两亲物(PAs)。尽管先前的研究揭示了 PA 二级结构对其自组装纳米结构的机械和生物学性质的影响,但关于 MMP-1 对其组装体降解性的影响尚未报道。本文设计并合成了一系列 PA,它们都包含相同的 MMP-1 可切割结构域,但具有不同的结构片段,以阐明 PA 二级结构对其组装体 MMP-1 降解性的作用。这项研究揭示了 MMP-1 降解效率与自组装 PA 纳米纤维中β-折叠含量之间的相关性,具有更强β-折叠特征的 PA 纳米纤维中 MMP-1 的可切割性显著降低。这些结果阐明了超分子内聚在 PA 组装体中对 MMP-1 水解的作用,并为通过调整其分子序列来控制 MMP-1 基纳米结构的降解速率提供了可能性。