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工程功能化无机纳米生物材料:调控二维纳米片与酶之间的相互作用。

Engineering functional inorganic nanobiomaterials: controlling interactions between 2D-nanosheets and enzymes.

机构信息

University of Connecticut, Department of Chemistry, Storrs, CT 06269, USA.

出版信息

Dalton Trans. 2020 Apr 7;49(13):3917-3933. doi: 10.1039/c9dt03893k. Epub 2019 Dec 4.

Abstract

A better understanding of the enzyme-nanosheet interface is imperative for the design of functional, robust inorganic nanobiomaterials and biodevices, now more than ever, for use in a broad spectrum of applications. This feature article discusses recent advances in controlling the enzyme-nanosheet interface with regards to α-zirconium(iv) phosphate (α-ZrP), graphene oxide (GO), graphene, and MoS nanosheets. Specific focus will be placed on understanding the mechanisms with which these materials interact with enzymes and elaborate on particular ways to engineer and control these interactions. Our main discoveries include: (1) upon adsorption to the nanosheet surface, a decrease in the entropy of the enzyme's denatured state enhances stability; (2) proteins are used to create biophilic landing pads for increased enzyme stability on many different types of nanosheets; (3) proteins and enzymes are used as exfoliants by shear force to produce biofunctionalized nanosheet suspensions; and (4) bionfunctionalized nanosheets exhibit no acute toxicity. Recognizing proper methods to engineer the interface between enzymes and 2D-nanosheets, therefore, is an important step towards making green, sustainable, and environmentally conscious inorganic bionanomaterials for sensing, catalysis and drug delivery applications, as well as towards the successful manipulation of enzymes for advanced applications.

摘要

更好地理解酶-纳米片界面对于设计功能强大、稳健的无机纳米生物材料和生物装置至关重要,现在比以往任何时候都更加重要,因为它们将应用于广泛的领域。本文讨论了近年来在控制与α-磷酸锆(α-ZrP)、氧化石墨烯(GO)、石墨烯和 MoS 纳米片的酶-纳米片界面方面的最新进展。特别关注的是理解这些材料与酶相互作用的机制,并详细阐述了工程化和控制这些相互作用的特定方法。我们的主要发现包括:(1)在吸附到纳米片表面时,酶变性状态的熵降低会增强稳定性;(2)蛋白质被用于为许多不同类型的纳米片上的酶稳定性创造亲生物着陆垫;(3)蛋白质和酶被用作剪切力的剥落剂,以产生生物功能化的纳米片悬浮液;(4)生物功能化纳米片没有急性毒性。因此,认识到正确的方法来设计酶与二维纳米片之间的界面是迈向制造用于传感、催化和药物输送应用的绿色、可持续和环保的无机生物纳米材料的重要一步,也是成功操纵酶用于高级应用的重要一步。

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