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水鳖子在微生物燃料电池中对甲壳素的降解和发电作用。

Chitin degradation and electricity generation by Aeromonas hydrophila in microbial fuel cells.

机构信息

CAS Key Laboratory of Urban Pollutant Conversion, Department of Chemistry, University of Science and Technology of China, Hefei, 230026, China.

CAS Key Laboratory of Urban Pollutant Conversion, Department of Chemistry, University of Science and Technology of China, Hefei, 230026, China.

出版信息

Chemosphere. 2017 Feb;168:293-299. doi: 10.1016/j.chemosphere.2016.10.080. Epub 2016 Oct 27.

Abstract

Chitin is one of the most abundant biopolymers in nature and the main composition of shrimp and crab shells (usually as food wastes). Thus it is essential to investigate the potential of degrading chitin for energy recovery. This study investigated the anaerobic degradation of chitin by Aeromonas hydrophila, a chitinolytic and popular electroactive bacterium, in both fermentation and microbial fuel cell (MFC) systems. The primary chitin metabolites produced in MFC were succinate, lactate, acetate, formate, and ethanol. The total metabolite concentration from chitin degradation increased seven-fold in MFC compared to the fermentation system, as well as additional electricity generation. Moreover, A. hydrophila degraded GlcNAc (the intermediate of chitin hydrolysis) significantly faster (0.97 and 0.94 mM C/d/mM-GlcNAc) than chitin (0.13 and 0.03 mM C/d/mM-GlcNAc) in MFC and fermentation systems, indicating that extracellular hydrolysis of chitin was the rate-limiting step and this step could be accelerated in MFC. Furthermore, more chemicals produced by the addition of exogenous mediators in MFC. This study proves that the chitin could be degraded effectively by an electroactive bacterium in MFC, and our results suggest that this bioelectrochemical system might be useful for the degradation of recalcitrant biomass to recover energy.

摘要

几丁质是自然界中最丰富的生物聚合物之一,也是虾和蟹壳的主要成分(通常作为食物废物)。因此,研究几丁质的降解潜力以回收能源至关重要。本研究考察了水栖菌属 Aeromonas hydrophila 在发酵和微生物燃料电池 (MFC) 系统中对几丁质的厌氧降解。在 MFC 中产生的主要几丁质代谢物为琥珀酸、乳酸盐、乙酸盐、甲酸盐和乙醇。与发酵系统相比,MFC 中几丁质降解产生的总代谢物浓度增加了七倍,同时还产生了额外的电能。此外,水栖菌属 Aeromonas hydrophila 在 MFC 和发酵系统中降解 GlcNAc(几丁质水解的中间产物)的速度明显快于几丁质(0.97 和 0.94 mM C/d/mM-GlcNAc 与 0.13 和 0.03 mM C/d/mM-GlcNAc),表明几丁质的细胞外水解是限速步骤,而在 MFC 中可以加速该步骤。此外,MFC 中外加介体的添加产生了更多的化学物质。本研究证明,电活性细菌可以有效地在 MFC 中降解几丁质,并且我们的结果表明,这种生物电化学系统可能有助于降解难降解的生物质以回收能源。

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