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Electrical Stimulation Improves Microbial Salinity Resistance and Organofluorine Removal in Bioelectrochemical Systems

机译:电刺激改善生物电化学系统中的耐微生物盐度和去除有机氟

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Fed batch bioelectrochemical systems (BESs) based on electrical stimulation were used to treat p-fluoronitrobenzene (p-FNB) wastewater at high salinities. At a NaCl concentration of 40 g/liter, p-FNB was removed 100% in 96 h in the BES, whereas in the biotic control (BC) (absence of current), p-FNB removal was only 10%. By increasing NaCl concentrations from 0 g/liter to 40 g/liter, defluorination efficiency decreased around 40% in the BES, and in the BC it was completely ceased. p-FNB was mineralized by 30% in the BES and hardly in the BC. Microorganisms were able to store 3.8 and 0.7 times more K+ and Na+ intracellularly in the BES than in the BC. Following the same trend, the ratio of protein to soluble polysaccharide increased from 3.1 to 7.8 as the NaCl increased from 0 to 40 g/liter. Both trends raise speculation that an electrical stimulation drives microbial preference toward K+ and protein accumulation to tolerate salinity. These findings are in accordance with an enrichment of halophilic organisms in the BES. Halobacterium dominated in the BES by 56.8% at a NaCl concentration of 40 g/liter, while its abundance was found as low as 17.5% in the BC. These findings propose a new method of electrical stimulation to improve microbial salinity resistance.
机译:基于电刺激的分批补料生化电化学系统(BES)用于处理高盐度的对氟硝基苯(p-FNB)废水。在NaCl浓度为40 g / L的情况下,BES中的p-FNB在96小时内被去除了100%,而在生物对照(BC)(无电流)中,p-FNB的去除仅为10%。通过将NaCl浓度从0 g /升增加到40 g /升,BES中的脱氟效率降低了约40%,而在BC中则完全停止了。在BES中,p-FNB矿化了30%,而在BC中则几乎没有。微生物在BES中的细胞内K +和Na +的存储量比BC中的3.8和0.7倍多。遵循相同的趋势,当NaCl从0升至40克/升时,蛋白质与可溶性多糖的比率从3.1升至7.8。两种趋势都引起了人们的猜测,即电刺激会促使微生物偏爱钾离子和蛋白质,从而耐受盐分。这些发现与BES中嗜盐生物的富集相符。在NaCl浓度为40 g / L的情况下,盐杆菌在BES中占主导地位,为56.8%,而在卑诗省,其含量低至17.5%。这些发现提出了一种新的电刺激方法来改善微生物的耐盐碱性。

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