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蛋白质在氧化石墨烯或还原氧化石墨烯表面的固定化及其应用:对蛋白质活性、结构和热稳定性的影响。

Protein immobilization on graphene oxide or reduced graphene oxide surface and their applications: Influence over activity, structural and thermal stability of protein.

作者信息

Chaudhary Karan, Kumar Krishan, Venkatesu Pannuru, Masram Dhanraj T

机构信息

Department of Chemistry, University of Delhi, Delhi, 110 007, India.

Department of Chemistry, University of Delhi, Delhi, 110 007, India.

出版信息

Adv Colloid Interface Sci. 2021 Mar;289:102367. doi: 10.1016/j.cis.2021.102367. Epub 2021 Jan 27.

DOI:10.1016/j.cis.2021.102367
PMID:33545443
Abstract

Due to the essential role of biological macromolecules in our daily life; it is important to control the stability and activity of such macromolecules. Therefore, the most promising route for enhancement in stability and activity is immobilizing proteins on different support materials. Furthermore, large surface area and surface functional groups are the important features that are required for a better support system. These features of graphene oxide (GO) and reduced graphene oxide (RGO) makes them ideal support materials for protein immobilization. Studies show the successful formation of GO/RGO-protein complexes with enhancement in structural/thermal stability due to various interactions at the nano-bio interface and their utilization in various functional applications. The present review focuses on protein immobilization using GO/RGO as solid support materials. Moreover, we also emphasized on basic underlying mechanism and interactions (hydrophilic, hydrophobic, electrostatic, local protein-protein, hydrogen bonding and van der Walls) between protein and GO/RGO which influences structural stability and activity of enzymes/proteins. Furthermore, GO/RGO-protein complexes are utilized in various applications such as biosensors, bioimaging and theranostic agent, targeted drug delivery agents, and nanovectors for drug and protein delivery.

摘要

由于生物大分子在我们日常生活中发挥着重要作用,控制此类大分子的稳定性和活性至关重要。因此,提高稳定性和活性最有前景的途径是将蛋白质固定在不同的载体材料上。此外,大表面积和表面官能团是优良载体系统所需的重要特性。氧化石墨烯(GO)和还原氧化石墨烯(RGO)的这些特性使其成为蛋白质固定化的理想载体材料。研究表明,由于纳米生物界面处的各种相互作用,成功形成了GO/RGO-蛋白质复合物,其结构/热稳定性得到增强,并将其应用于各种功能领域。本综述重点关注以GO/RGO作为固体载体材料进行蛋白质固定化。此外,我们还强调了蛋白质与GO/RGO之间影响酶/蛋白质结构稳定性和活性的基本潜在机制及相互作用(亲水、疏水、静电、局部蛋白质-蛋白质、氢键和范德华力)。此外,GO/RGO-蛋白质复合物被应用于各种领域,如生物传感器、生物成像和治疗诊断剂、靶向药物递送剂以及用于药物和蛋白质递送的纳米载体。

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