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基于蛋白-BiPt 纳链@氧化石墨烯杂化引导的一锅自组装策略的高性能集成酶级联生物平台。

High-Performance Integrated Enzyme Cascade Bioplatform Based on Protein-BiPt Nanochain@Graphene Oxide Hybrid Guided One-Pot Self-Assembly Strategy.

机构信息

School of Chemistry and Chemical Engineering, Yangzhou University, Yangzhou, Jiangsu, 225002, P. R. China.

出版信息

Small. 2019 Mar;15(12):e1804987. doi: 10.1002/smll.201804987. Epub 2019 Feb 5.

DOI:10.1002/smll.201804987
PMID:30721561
Abstract

Nanozymes provide new opportunities for facilitating next generation artificial enzyme cascade platforms. However, the fabrication of high-performance integrated artificial enzyme cascade (IAEC) bioplatforms based on nanozymes remains a great challenge. A facile and effective self-assembly strategy for constructing an IAEC system based on an inorganic/protein hybrid nanozyme, β-casein-BiPt nanochain@GO (CA-BiPtNC@GO) nanohybrid with unique physicochemical surface properties and hierarchical structures, is introduced here. Due to the synergetic effect of the protein, GO, and Bi , the hybrid acts as highly adaptable building blocks to immobilize natural enzymes directly and noncovalently without the loss of enzyme activity. Simultaneously, the CA-BiPtNC@GO nanohybrid exhibits outstanding peroxidase-mimicking activity and works well with natural oxidases, resulting in prominent activity in catalyzing cascade reactions. As a result, the proposed IAEC bioplatform exhibits excellent sensitivity with a wide linear range of 0.5 × 10 to 100 × 10 m and a detection limit of 0.05 × 10 m for glucose. Meticulous design of ingenious hierarchically nanostructured nanozymes with unique physicochemical surface properties can provide a facile and efficient way to immobilize and stabilize nature enzymes using self-assembly instead of chemical processes, and fill the gap in developing robust nanozyme-triggered IAEC systems with applications in the environment, sensing, and synthetic biology.

摘要

纳米酶为促进下一代人工酶级联平台提供了新的机会。然而,基于纳米酶制造高性能集成人工酶级联(IAEC)生物平台仍然是一个巨大的挑战。这里介绍了一种基于无机/蛋白质杂化纳米酶β--casein-BiPt 纳米链@GO(CA-BiPtNC@GO)纳米杂化物的简便有效的自组装策略,用于构建具有独特物理化学表面性质和分层结构的 IAEC 系统。由于蛋白质、GO 和 Bi 的协同作用,该杂化物作为高度适应性的构建块,可以直接非共价地固定天然酶,而不会损失酶活性。同时,CA-BiPtNC@GO 纳米杂化物表现出优异的过氧化物酶模拟活性,与天然氧化酶协同作用,在催化级联反应中表现出突出的活性。因此,所提出的 IAEC 生物平台具有出色的灵敏度,葡萄糖的线性范围为 0.5×10 至 100×10 m,检测限为 0.05×10 m。巧妙设计具有独特物理化学表面性质的分层纳米结构纳米酶,可以提供一种简便有效的方法,通过自组装而不是化学过程来固定和稳定天然酶,填补了开发稳健的纳米酶触发的 IAEC 系统的空白,该系统在环境、传感和合成生物学等领域有应用。

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引用本文的文献

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Emerging Theranostic Nanomaterials in Diabetes and Its Complications.新兴的糖尿病及其并发症治疗学纳米材料。
Adv Sci (Weinh). 2022 Jan;9(3):e2102466. doi: 10.1002/advs.202102466. Epub 2021 Nov 25.
3
A DNA nanopillar as a scaffold to regulate the ratio and distance of mimic enzymes for an efficient cascade catalytic platform.
一种作为支架的DNA纳米柱,用于调节模拟酶的比例和距离,以构建高效的级联催化平台。
Chem Sci. 2020 Oct 22;12(1):407-411. doi: 10.1039/d0sc03584j.
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Front Bioeng Biotechnol. 2020 Feb 6;8:15. doi: 10.3389/fbioe.2020.00015. eCollection 2020.