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Effects of hydrogen and formate on the degradation of propionate and butyrate in thermophilic granules from an upflow anaerobic sludge blanket reactor.

机译:氢气和甲酸对上流厌氧污泥床反应器中嗜热颗粒中丙酸和丁酸降解的影响。

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摘要

Degradation of propionate and butyrate in whole and disintegrated granules from a thermophilic (55 degrees C) upflow anaerobic sludge blanket reactor fed with acetate, propionate, and butyrate as substrates was examined. The propionate and butyrate degradation rates in whole granules were 1.16 and 4.0 mumol/min/g of volatile solids, respectively, and the rates decreased 35 and 25%, respectively, after disintegration of the granules. The effect of adding different hydrogen-oxidizing bacteria (both sulfate reducers and methanogens), some of which used formate in addition to hydrogen, to disintegrated granules was tested. Addition of either Methanobacterium thermoautotrophicum delta H, a hydrogen-utilizing methanogen that does not use formate, or Methanobacterium sp. strain CB12, a hydrogen- and formate-utilizing methanogen, to disintegrated granules increased the degradation rate of both propionate and butyrate. Furthermore, addition of a thermophilic sulfate-reducing bacterium (a Desulfotomaculum sp. isolated in our laboratory) to disintegrated granules improved the degradation of both substrates even more than the addition of methanogens. By monitoring the hydrogen partial pressure in the cultures, a correlation between the hydrogen partial pressure and the degradation rate of propionate and butyrate was observed, showing a decrease in the degradation rate with increased hydrogen partial pressure. No significant differences in the stimulation of the degradation rates were observed when the disintegrated granules were supplied with methanogens that utilized hydrogen only or hydrogen and formate. This indicated that interspecies formate transfer was not important for stimulation of propionate and butyrate degradation.
机译:检查了以乙酸,丙酸酯和丁酸酯为底物的嗜热(55℃)上流厌氧污泥床反应器中完整颗粒和崩解颗粒中丙酸酯和丁酸酯的降解情况。在整个颗粒中,丙酸酯和丁酸酯的降解速率分别为挥发性固体的1.16和4.0μmol/ min / g,并且在崩解后,降解速率分别降低了35%和25%。测试了向分解的颗粒中添加不同的氢氧化细菌(硫酸盐还原剂和产甲烷菌)的效果,其中某些细菌除氢外还使用甲酸。添加不使用甲酸盐的利用热的产甲烷菌产甲烷甲烷嗜热自养菌H或产甲烷甲烷菌。 CB12菌株(一种利用氢和甲酸的产甲烷菌)分解后的颗粒增加了丙酸酯和丁酸酯的降解率。此外,向崩解的颗粒中添加嗜热硫酸盐还原细菌(在我们实验室中分离的Desulfotomaculum sp。)比添加产甲烷菌更能改善两种底物的降解。通过监测培养物中的氢分压,观察到氢分压与丙酸酯和丁酸酯的降解速率之间的相关性,表明降解速率随着氢分压的增加而降低。当向崩解的颗粒提供仅利用氢或氢和甲酸盐的产甲烷菌时,在降解速率的刺激上没有观察到显着差异。这表明种间甲酸盐的转移对于刺激丙酸酯和丁酸酯的降解并不重要。

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