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纳米材料作为全细胞生物催化剂的潜在固定化载体的出现及其细胞毒性效应。

Emergence of nanomaterials as potential immobilization supports for whole cell biocatalysts and cell toxicity effects.

机构信息

Department of Technology and Natural Resources, Faculty of Applied Sciences and Technology, Universiti Tun Hussein Onn Malaysia, Johor, Malaysia.

School of Chemical and Energy Engineering, Faculty of Engineering, Universiti Teknologi Malaysia, Johor, Malasiya.

出版信息

Biotechnol Appl Biochem. 2021 Dec;68(6):1128-1138. doi: 10.1002/bab.2034. Epub 2020 Oct 15.

Abstract

The traditional approach of fermentation by a free cell system has limitations of low productivity and product separation that need to be addressed for production enhancement and cost effectiveness. One of potential methods to solve the problems is cell immobilization. Microbial cell immobilization allows more efficient up-scaling by reducing the nonproductive growth phase, improving product yield and simplifying product separation. Furthermore, the emergence of nanomaterials such as carbon nanotubes, graphene, and metal-based nanomaterials with excellent functional properties provides novel supports for cell immobilization. Nanomaterials have catalytic properties that can provide specific binding site with targeted cells. However, the toxicity of nanomaterials towards cells has hampered its application as it affects the biological system of the cells, which cannot be neglected in any way. This gray area in immobilization is an important concern that needs to be addressed and understood by researchers. This review paper discusses an overview of nanomaterials used for cell immobilization with special focus on its toxicological challenges and how by understanding physicochemical properties of nanomaterials could influence the toxicity and biocompatibility of the cells.

摘要

传统的游离细胞系统发酵方法存在生产力低和产物分离困难的局限性,需要加以解决以提高生产效率和降低成本。细胞固定化是一种潜在的解决方法。微生物细胞固定化通过减少非生产性生长阶段、提高产物产率和简化产物分离,允许更有效地扩大规模。此外,具有优异功能特性的纳米材料(如碳纳米管、石墨烯和金属基纳米材料)的出现为细胞固定化提供了新的载体。纳米材料具有催化性能,可以为靶向细胞提供特定的结合位点。然而,纳米材料对细胞的毒性阻碍了其应用,因为它会影响细胞的生物系统,这在任何情况下都不容忽视。这种固定化的灰色地带是研究人员需要解决和理解的一个重要关注点。本文综述了用于细胞固定化的纳米材料的研究进展,特别关注其毒理学挑战,以及如何通过了解纳米材料的物理化学性质来影响细胞的毒性和生物相容性。

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