Rocha André R F da Silva, Venturim Bárbara Côgo, Ellwanger Elena R A, Pagnan Caroline S, Silveira Wendel B da, Martin José Guilherme P
Microbiology of Fermented Products Laboratory (FERMICRO), Department of Microbiology, Universidade Federal de Viçosa, Viçosa, Brazil.
Graduate Program in Design (PPGD), Universidade do Estado de Minas Gerais (UEMG), Belo Horizonte, Brazil.
J Basic Microbiol. 2023 Mar;63(3-4):257-275. doi: 10.1002/jobm.202200280. Epub 2022 Nov 6.
Bacterial cellulose has advantages over plant-derived cellulose, which make its use for industrial applications easier and more profitable. Its intrinsic properties have been stimulating the global biopolymer market, with strong growth expectations in the coming years. Several bacterial species are capable of producing bacterial cellulose under different culture conditions; in this context, strategies aimed at metabolic engineering and several possibilities of carbon sources have provided opportunities for the bacterial cellulose's biotechnological exploration. In this article, an overview of biosynthesis pathways in different carbon sources for the main producing microorganisms, metabolic flux under different growth conditions, and their influence on the structural and functional characteristics of bacterial cellulose is provided. In addition, the main industrial applications and ways to reduce costs and optimize its production using alternative sources are discussed, contributing to new insights on the exploitation of this biomaterial in the context of the bioeconomy.
细菌纤维素比植物源纤维素具有优势,这使得其在工业应用中更易于使用且更具盈利性。其内在特性一直在刺激全球生物聚合物市场,预计未来几年将强劲增长。几种细菌能够在不同培养条件下产生细菌纤维素;在此背景下,旨在代谢工程的策略以及多种碳源的可能性为细菌纤维素的生物技术探索提供了机会。本文概述了主要生产微生物在不同碳源中的生物合成途径、不同生长条件下的代谢通量及其对细菌纤维素结构和功能特性的影响。此外,还讨论了主要的工业应用以及使用替代来源降低成本和优化其生产的方法,有助于在生物经济背景下对这种生物材料的开发有新的见解。