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胶原模拟肽与整合素结合基序的共价捕获。

Covalent Capture of a Collagen Mimetic Peptide with an Integrin-Binding Motif.

机构信息

Department of Chemistry, Rice University, 6100 Main Street, Houston, Texas 77005, United States.

出版信息

Biomacromolecules. 2022 Jun 13;23(6):2396-2403. doi: 10.1021/acs.biomac.2c00155. Epub 2022 Apr 21.

DOI:10.1021/acs.biomac.2c00155
PMID:35446536
Abstract

Collagen mimetic peptides (CMPs) are an excellent model to study the structural and biological properties of the extracellular matrix (ECM) due to ease of synthesis and variability in sequence. To ensure that synthetic materials accurately mimic the structure and function of natural collagen in the ECM, it is necessary to conserve the triple helix. However, CMP folding is subject to equilibrium, and frequently peptides exist in solution as both monomer and triple helix. Additionally, the stability of CMPs is highly dependent on peptide length and amino acid composition, leading to suboptimal performance. Here, we report the utility of covalent capture, a method to (a) direct the folding of a supramolecular triple helix and (b) form isopeptide bonds between the helix strands, in the design of an integrin-binding peptide with a GFOGER motif. Covalent capture effectively locked the triple helix and yielded a peptide with high thermal stability and a rapid folding rate. Compared to supramolecular triple helices bearing the same GFOGER-binding site, cell adhesion was substantially increased. assays using EDTA/Mg and an anti-α2β1 antibody demonstrated the preservation of the high specificity of the binding event. This covalently captured integrin-binding peptide provides a template for the future design of bioactive ECM mimics, which can overcome limitations of supramolecular approaches for potential drug and biomaterial designs.

摘要

胶原模拟肽 (CMPs) 是研究细胞外基质 (ECM) 结构和生物学特性的极好模型,因为它们易于合成且序列具有可变性。为了确保合成材料准确模拟 ECM 中天然胶原的结构和功能,需要保留三螺旋结构。然而,CMP 的折叠受到平衡的影响,并且肽通常以单体和三螺旋的形式存在于溶液中。此外,CMP 的稳定性高度依赖于肽的长度和氨基酸组成,导致性能不佳。在这里,我们报告了共价捕获的实用性,这是一种方法,可以 (a) 指导超分子三螺旋的折叠,以及 (b) 在具有 GFOGER 基序的整联蛋白结合肽的设计中形成螺旋链之间的异肽键。共价捕获有效地锁定了三螺旋,并产生了一种具有高热稳定性和快速折叠速率的肽。与具有相同 GFOGER 结合位点的超分子三螺旋相比,细胞黏附性大大提高。使用 EDTA/Mg 和抗-α2β1 抗体进行的测定表明,结合事件的高特异性得以保留。这种共价捕获的整联蛋白结合肽为未来设计具有生物活性的 ECM 模拟物提供了模板,这可以克服超分子方法在潜在药物和生物材料设计方面的局限性。

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