Effect of addition of γ-poly glutamic acid on bacterial nanocellulose production under agitated culture conditions

IF 6.1 1区 工程技术 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Biotechnology for Biofuels Pub Date : 2024-05-27 DOI:10.1186/s13068-024-02515-3
Yang Bai, Ran Tan, Yiran Yan, Tao Chen, Yetong Feng, Qiwei Sun, Jiakun Li, Yifei Wang, Futao Liu, Jingwen Wang, Yao Zhang, Xianhao Cheng, Guochao Wu
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Abstract

Background

Bacterial nanocellulose (BNC), a natural polymer material, gained significant popularity among researchers and industry. It has great potential in areas, such as textile manufacturing, fiber-based paper, and packaging products, food industry, biomedical materials, and advanced functional bionanocomposites. The main current fermentation methods for BNC involved static culture, as the agitated culture methods had lower raw material conversion rates and resulted in non-uniform product formation. Currently, studies have shown that the production of BNC can be enhanced by incorporating specific additives into the culture medium. These additives included organic acids or polysaccharides. γ-Polyglutamic acid (γ-PGA), known for its high polymerization, excellent biodegradability, and environmental friendliness, has found extensive application in various industries including daily chemicals, medicine, food, and agriculture.

Results

In this particular study, 0.15 g/L of γ-PGA was incorporated as a medium additive to cultivate BNC under agitated culture conditions of 120 rpm and 30 ℃. The BNC production increased remarkably by 209% in the medium with 0.15 g/L γ-PGA and initial pH of 5.0 compared to that in the standard medium, and BNC production increased by 7.3% in the medium with 0.06 g/L γ-PGA. The addition of γ-PGA as a medium additive resulted in significant improvements in BNC production. Similarly, at initial pH levels of 4.0 and 6.0, the BNC production also increased by 39.3% and 102.3%, respectively. To assess the characteristics of the BNC products, scanning electron microscopy, Fourier transform infrared spectroscopy, and thermogravimetric analysis were used. The average diameter of BNC fibers, which was prepared from the medium adding 0.15 g/L γ-PGA, was twice thicker than that of BNC fibers prepared from the control culture medium. That might be because that polyglutamic acid relieved the BNC synthesis from the shear stress from the agitation.

Conclusions

This experiment held great significance as it explored the use of a novel medium additive, γ-PGA, to improve the production and the glucose conversion rate in BNC fermentation. And the BNC fibers became thicker, with better thermal stability, higher crystallinity, and higher degree of polymerization (DPv). These findings lay a solid foundation for future large-scale fermentation production of BNC using bioreactors.

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搅拌培养条件下添加γ-聚谷氨酸对细菌纳米纤维素生产的影响
背景细菌纳米纤维素(BNC)是一种天然高分子材料,深受研究人员和工业界的青睐。它在纺织品制造、纤维纸和包装产品、食品工业、生物医学材料和高级功能性仿生复合材料等领域具有巨大潜力。目前,BNC 的主要发酵方法是静态培养,因为搅拌培养法的原料转化率较低,而且产品形成不均匀。目前的研究表明,在培养基中加入特定添加剂可提高 BNC 的产量。这些添加剂包括有机酸或多糖。γ-聚谷氨酸(γ-PGA)以其高聚合度、良好的生物降解性和环境友好性而著称,在日用化工、医药、食品和农业等多个行业得到广泛应用。与标准培养基相比,在添加 0.15 g/L γ-PGA、初始 pH 值为 5.0 的培养基中,BNC 产量显著增加了 209%;在添加 0.06 g/L γ-PGA 的培养基中,BNC 产量增加了 7.3%。添加 γ-PGA 作为培养基添加剂可显著提高 BNC 产量。同样,在初始 pH 值为 4.0 和 6.0 时,BNC 产量也分别增加了 39.3% 和 102.3%。为了评估 BNC 产品的特性,使用了扫描电子显微镜、傅立叶变换红外光谱和热重分析。用添加 0.15 g/L γ-PGA 的培养基制备的 BNC 纤维的平均直径比用对照培养基制备的 BNC 纤维粗两倍。结论 本实验探索了使用新型培养基添加剂 γ-PGA 提高 BNC 发酵的产量和葡萄糖转化率,意义重大。而且,BNC 纤维变得更粗,热稳定性更好,结晶度更高,聚合度(DPv)更高。这些发现为今后利用生物反应器大规模发酵生产 BNC 奠定了坚实的基础。
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来源期刊
Biotechnology for Biofuels
Biotechnology for Biofuels 工程技术-生物工程与应用微生物
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审稿时长
2.7 months
期刊介绍: Biotechnology for Biofuels is an open access peer-reviewed journal featuring high-quality studies describing technological and operational advances in the production of biofuels, chemicals and other bioproducts. The journal emphasizes understanding and advancing the application of biotechnology and synergistic operations to improve plants and biological conversion systems for the biological production of these products from biomass, intermediates derived from biomass, or CO2, as well as upstream or downstream operations that are integral to biological conversion of biomass. Biotechnology for Biofuels focuses on the following areas: • Development of terrestrial plant feedstocks • Development of algal feedstocks • Biomass pretreatment, fractionation and extraction for biological conversion • Enzyme engineering, production and analysis • Bacterial genetics, physiology and metabolic engineering • Fungal/yeast genetics, physiology and metabolic engineering • Fermentation, biocatalytic conversion and reaction dynamics • Biological production of chemicals and bioproducts from biomass • Anaerobic digestion, biohydrogen and bioelectricity • Bioprocess integration, techno-economic analysis, modelling and policy • Life cycle assessment and environmental impact analysis
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