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酶辅助的肽折叠、组装和抗癌特性。

Enzyme-assisted peptide folding, assembly and anti-cancer properties.

机构信息

State Key Laboratory of Medicinal Chemical Biology, College of Pharmacy, Tianjin Key Laboratory of Molecular Drug Research, Nankai University, Tianjin 300071, P. R. China.

出版信息

Nanoscale. 2017 Aug 24;9(33):11987-11993. doi: 10.1039/c7nr04370h.

Abstract

The α-helix is the most prevalent conformation in proteins. However, formation of the α-helical conformation remains a challenge for short peptides with less than 5 amino acids. We demonstrated in this study that enzyme-instructed self-assembly (EISA) provides a unique pathway to assist the self-assembly of peptides into the α-helical conformation, while a heating-cooling process leads to a conformation more similar to a β-sheet. The same peptide with different conformations self-assembled into different nanostructures. The peptide with α-helical conformation self-assembled into stable nanofibers and hydrogels, while the other one assembled into an unstable nanoparticle suspension. The nanofiber solution exhibited better stability against proteinase K digestion and an enhanced cellular uptake compared to the nanoparticle solution. Therefore, the nanomedicine formed by the α-helical peptide showed a better inhibition capacity against cancer cells in vitro and significantly inhibited tumor growth in vivo compared to the one formed by the β-sheet peptide. Our study demonstrates the unique advantages of EISA to assist peptide folding and self-assembly into biofunctional nanomaterials.

摘要

α-螺旋是蛋白质中最常见的构象。然而,对于少于 5 个氨基酸的短肽,形成 α-螺旋构象仍然是一个挑战。本研究表明,酶指导的自组装(EISA)为肽自组装成 α-螺旋构象提供了一条独特的途径,而加热-冷却过程则导致构象更类似于 β-折叠。具有不同构象的相同肽自组装成不同的纳米结构。具有 α-螺旋构象的肽自组装成稳定的纳米纤维和水凝胶,而另一种肽则组装成不稳定的纳米颗粒悬浮液。与纳米颗粒溶液相比,纳米纤维溶液对蛋白酶 K 消化具有更好的稳定性和增强的细胞摄取。因此,与由β-折叠肽形成的纳米药物相比,由α-螺旋肽形成的纳米药物在体外对癌细胞具有更好的抑制能力,并显著抑制体内肿瘤生长。我们的研究表明,EISA 具有独特的优势,可以辅助肽折叠和自组装成具有生物功能的纳米材料。

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