Osmoregulation by choline-based deep eutectic solvent induces electroactivity in Bacillus subtilis biofilms

IF 3.4 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Neda Eghtesadi , Kayode Olaifa , Tri T. Pham , Vito Capriati , Obinna M. Ajunwa , Enrico Marsili
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Abstract

Gram-positive Bacillus subtilis is a model organism for the biotechnology industry and has recently been characterized as weakly electroactive in both planktonic cultures and biofilms. Increasing the extracellular electron transfer (EET) rate in B. subtilis biofilms will help to develop an efficient microbial electrochemical technology (MET) and improve the bioproduction of high-value metabolites under electrofermentative conditions. In our previous work, we have shown that the addition of compatible solute precursors such as choline chloride (ChCl) to the growth medium formulation increases current output and biofilm formation in B. subtilis. In this work, we utilized a low-carbon tryptone yeast extract medium with added salts to further expose B. subtilis to salt stress and observe the osmoregulatory and/or nutritional effects of a D-sorbitol/choline chloride (ChCl) (1:1 mol mol−1) deep eutectic solvents (DESs) on the electroactivity of the formed biofilm. The results show that ChCl and D-sorbitol alleviate the osmotic stress induced by the addition of NaH2PO4 and KH2PO4 salts and boost biofilm production. This is probably due to the osmoprotective effect of ChCl, a precursor of the osmoprotectant glycine betaine, and the induction of electroactive exopolymeric substances within the B. subtilis biofilm. Since high ionic strength media are commonly used in microbial biotechnology, the combination of ChCl-containing DESs and salt stress could enhance biofilm-based electrofermentation processes that bring significant benefits for biotechnological applications.

胆碱深共晶溶剂的渗透调节作用诱导枯草芽孢杆菌生物膜的电活性
革兰氏阳性枯草芽孢杆菌是生物技术产业中的一种模式生物,最近被证实在浮游培养物和生物膜中都具有弱电活性。提高枯草芽孢杆菌生物膜中的胞外电子传递(EET)速率将有助于开发高效的微生物电化学技术(MET),并改善电发酵条件下高价值代谢物的生物生产。在之前的工作中,我们已经证明,在生长培养基配方中添加氯化胆碱(ChCl)等兼容溶质前体可增加电流输出和枯草芽孢杆菌生物膜的形成。在这项工作中,我们利用添加了盐分的低碳胰蛋白酵母提取物培养基,使枯草杆菌进一步面临盐胁迫,并观察 D-山梨醇/氯化胆碱(ChCl)(1:1 mol mol-1)深共晶溶剂(DES)对所形成生物膜的电活性的渗透调节和/或营养影响。结果表明,氯化胆碱和 D-山梨醇可减轻加入 NaH2PO4 和 KH2PO4 盐引起的渗透应力,促进生物膜的生成。这可能是由于氯化胆碱(渗透保护剂甘氨酸甜菜碱的前体)的渗透保护作用,以及诱导枯草杆菌生物膜内的电活性外聚物质。由于高离子强度介质常用于微生物生物技术领域,因此将含氯化氢的 DES 与盐胁迫结合起来,可以增强基于生物膜的电发酵过程,从而为生物技术应用带来显著效益。
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来源期刊
Enzyme and Microbial Technology
Enzyme and Microbial Technology 生物-生物工程与应用微生物
CiteScore
7.60
自引率
5.90%
发文量
142
审稿时长
38 days
期刊介绍: Enzyme and Microbial Technology is an international, peer-reviewed journal publishing original research and reviews, of biotechnological significance and novelty, on basic and applied aspects of the science and technology of processes involving the use of enzymes, micro-organisms, animal cells and plant cells. We especially encourage submissions on: Biocatalysis and the use of Directed Evolution in Synthetic Biology and Biotechnology Biotechnological Production of New Bioactive Molecules, Biomaterials, Biopharmaceuticals, and Biofuels New Imaging Techniques and Biosensors, especially as applicable to Healthcare and Systems Biology New Biotechnological Approaches in Genomics, Proteomics and Metabolomics Metabolic Engineering, Biomolecular Engineering and Nanobiotechnology Manuscripts which report isolation, purification, immobilization or utilization of organisms or enzymes which are already well-described in the literature are not suitable for publication in EMT, unless their primary purpose is to report significant new findings or approaches which are of broad biotechnological importance. Similarly, manuscripts which report optimization studies on well-established processes are inappropriate. EMT does not accept papers dealing with mathematical modeling unless they report significant, new experimental data.
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