Sequence-dependent catalysis and assembly to form peptide/Au nanoenzyme for glucose and plasma GSH detecting in cancer patients

Shengtao Wang , Anhe Wang , Jingtao Li , Qingquan Han , Yafeng Jing , Jieling Li , Shiyu Du , Peter H. Seeberger , Jian Yin , Shuo Bai
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Abstract

Metal ions play a pivotal role in regulating and determining the functions of proteins and peptides in nature. This study aims to investigate the regulatory role of metal ions in peptide assembly and explore the influence of sequence variations and metal ions on the structure and function of resulting peptide nanoarchitectures. Dipeptide sequences with distinct charged properties (positive and negative) and functional groups (-COOH, -NH2, and phenolic hydroxyl) were meticulously selected and co-assembled with various metal ions (Au3+, Ag+, and Pt4+). The findings highlight the crucial functional role of the phenolic hydroxyl group of tyrosine in metal ion reduction, while positively charged groups promote metal ion accumulation through electrostatic forces, facilitating co-assembly. The formation of ordered structures in Au@Fmoc-YK and Au@Fmoc-YR nanoarchitectures further validates the significant interaction among metal ions, tyrosine-OH, and positively charged NH2. Notably, these nanoarchitectures possess the unique attribute of being prepared under physiological conditions, specifically at 37 °C, without the need for organic solvents or chemical modifications of peptides. This approach offers a straightforward means of constructing diverse functional nanoarchitectures based on peptides and metal ions. Moreover, Au@Fmoc-YR exhibits good performance as a nanoenzyme for detecting glucose in complex bodily fluids and plasma GSH in tumor patients, showcasing its promising potential for medical applications.

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序列依赖性催化和组装形成肽/金纳米酶用于检测肿瘤患者的葡萄糖和血浆谷胱甘肽
金属离子在调节和决定蛋白质和肽在自然界中的功能方面发挥着关键作用。本研究旨在研究金属离子在肽组装中的调节作用,并探讨序列变异和金属离子对所产生的肽纳米结构的结构和功能的影响。精心选择具有不同带电性质(正极和负极)和官能团(-COOH、-NH2和酚羟基)的二肽序列,并与各种金属离子(Au3+、Ag+和Pt4+)共组装。研究结果强调了酪氨酸的酚羟基在金属离子还原中的关键功能作用,而带正电的基团通过静电力促进金属离子积累,促进共组装。有序结构的形成Au@Fmoc-YK和Au@Fmoc-YR纳米结构进一步验证了金属离子、酪氨酸OH和带正电荷的NH2之间的显著相互作用。值得注意的是,这些纳米结构具有在生理条件下制备的独特特性,特别是在37°C下,不需要有机溶剂或肽的化学修饰。这种方法提供了一种基于肽和金属离子构建不同功能纳米结构的直接方法。此外Au@Fmoc-YR作为一种纳米酶,在检测复杂体液中的葡萄糖和肿瘤患者的血浆GSH方面表现出良好的性能,显示出其在医学应用方面的潜力。
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