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真菌疏水蛋白及其工程变体实现的创新性表面生物功能化。

Innovative surface bio-functionalization by fungal hydrophobins and their engineered variants.

作者信息

Stanzione Ilaria, Pitocchi Rossana, Pennacchio Anna, Cicatiello Paola, Piscitelli Alessandra, Giardina Paola

机构信息

Department of Chemical Sciences, University of Naples Federico II, Naples, Italy.

出版信息

Front Mol Biosci. 2022 Aug 11;9:959166. doi: 10.3389/fmolb.2022.959166. eCollection 2022.

Abstract

Research on innovative surface functionalization strategies to develop materials with high added value is particularly challenging since this process is a crucial step in a wide range of fields (i.e., biomedical, biosensing, and food packaging). Up to now, the main applied derivatization methods require hazardous and poorly biocompatible reagents, harsh conditions of temperature and pressure, and are time consuming and cost effective. The discovery of biomolecules able to adhere by non-covalent bonds on several surfaces paves the way for their employment as a replacement of chemical processes. A simple, fast, and environment-friendly method of achieving modification of chemically inert surfaces is offered by hydrophobins, small amphiphilic proteins produced by filamentous fungi. Due to their structural characteristics, they form stable protein layers at interfaces, serving as anchoring points that can strongly bind molecules of interest. In addition, genetic engineering techniques allow the production of hydrophobins fused to a wide spectrum of relevant proteins, providing further benefits in term of time and ease of the process. In fact, it is possible to bio-functionalize materials by simply dip-casting, or by direct deposition, rendering them exploitable, for example, in the development of biomedical and biosensing platforms.

摘要

研发具有高附加值材料的创新性表面功能化策略极具挑战性,因为这一过程是众多领域(即生物医学、生物传感和食品包装)中的关键步骤。到目前为止,主要应用的衍生化方法需要使用危险且生物相容性差的试剂,以及严苛的温度和压力条件,并且耗时且成本高昂。能够通过非共价键附着在多种表面上的生物分子的发现,为其替代化学过程的应用铺平了道路。丝状真菌产生的小型两亲性蛋白质——疏水蛋白,提供了一种简单、快速且环保的实现化学惰性表面改性的方法。由于其结构特征,它们在界面处形成稳定的蛋白质层,作为能够牢固结合目标分子的锚定点。此外,基因工程技术能够生产与多种相关蛋白质融合的疏水蛋白,在时间和操作简便性方面带来更多优势。事实上,通过简单的浸铸或直接沉积就可以对材料进行生物功能化,使其可用于例如生物医学和生物传感平台的开发。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f76a/9403755/2e07b3035327/fmolb-09-959166-g001.jpg

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