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醋酸菌生物合成纤维素:现状与展望。

Biotechnological production of cellulose by acetic acid bacteria: current state and perspectives.

机构信息

Department of Life Sciences, University of Modena and Reggio Emilia, Via G. Amendola, 2, Pad. Besta, 42122, Reggio Emilia, Italy.

Department of Agricultural, Food and Environmental Sciences, University Polytechnical of Marche, Brecce Bianche 2, Ancona, Italy.

出版信息

Appl Microbiol Biotechnol. 2018 Aug;102(16):6885-6898. doi: 10.1007/s00253-018-9164-5. Epub 2018 Jun 20.

Abstract

Bacterial cellulose is an attractive biopolymer for a number of applications including food, biomedical, cosmetics, and engineering fields. In addition to renewability and biodegradability, its unique structure and properties such as chemical purity, nanoscale fibrous 3D network, high water-holding capacity, high degree of polymerization, high crystallinity index, light transparency, biocompatibility, and mechanical features offer several advantages when it is used as native polymer or in composite materials. Structure and properties play a functional role in both the biofilm life cycle and biotechnological applications. Among all the cellulose-producing bacteria, acetic acid bacteria of the Komagataeibacter xylinus species play the most important role because they are considered the highest producers. Bacterial cellulose from acetic acid bacteria is widely investigated as native and modified biopolymer in functionalized materials, as well as in terms of differences arising from the static or submerged production system. In this paper, the huge amount of knowledge on basic and applied aspects of bacterial cellulose is reviewed to the aim to provide a comprehensive viewpoint on the intriguing interplay between the biological machinery of synthesis, the native structure, and the factors determining its nanostructure and applications. Since in acetic acid bacteria biofilm and cellulose production are two main phenotypes with industrial impact, new insights into biofilm production are provided.

摘要

细菌纤维素是一种有吸引力的生物聚合物,可应用于许多领域,包括食品、生物医学、化妆品和工程领域。除了可再生性和可生物降解性外,其独特的结构和特性,如化学纯度、纳米纤维 3D 网络、高持水能力、高聚合度、高结晶度指数、透光性、生物相容性和机械性能,使其在用作天然聚合物或复合材料时具有许多优势。结构和性质在生物膜生命周期和生物技术应用中都起着功能作用。在所有生产纤维素的细菌中,木醋杆菌属的醋酸菌起着最重要的作用,因为它们被认为是最高产的细菌。醋酸菌产生的细菌纤维素作为天然和改性生物聚合物,在功能化材料中得到了广泛的研究,同时也研究了由于静态或淹没生产系统而产生的差异。本文综述了细菌纤维素基础和应用方面的大量知识,旨在提供一个关于合成生物学机制、天然结构以及决定其纳米结构和应用的因素之间引人入胜的相互作用的综合观点。由于在醋酸菌中生物膜和纤维素的生产是两种具有工业影响的主要表型,因此本文提供了对生物膜生产的新见解。

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