van Leerdam Robin C, de Bok Frank A M, Bonilla-Salinas Monica, van Doesburg Wim, Lomans Bart P, Lens Piet N L, Stams Alfons J M, Janssen Albert J H
Sub-department of Environmental Technology, Wageningen University, Bomenweg 2, 6700 EV Wageningen, The Netherlands.
Bioresour Technol. 2008 Dec;99(18):8967-73. doi: 10.1016/j.biortech.2008.05.007. Epub 2008 Jun 17.
The degradation of methanethiol (MT) at 30 degrees C under saline-alkaline (pH 8-10, 0.5M Na(+)) conditions was studied in a lab-scale Upflow Anaerobic Sludge Blanket (UASB) reactor inoculated with estuarine sediment from the Wadden Sea (The Netherlands). At a sodium concentration of 0.5M and a pH between 8 and 9 complete MT degradation to sulfide, methane and carbon dioxide was possible at a maximum loading rate of 22mmolMTL(-1)day(-1) and a hydraulic retention time of 6h. The presence of yeast extract (100mg/L) in the medium was essential for complete MT degradation. 16S rRNA based DGGE and sequence analysis revealed that species related to the genera Methanolobus and Methanosarcina dominated the archaeal community in the reactor sludge. Their relative abundance fluctuated in time, possibly as a result of the changing operational conditions in the reactor. The most dominant MT-degrading archaeon was enriched from the reactor and obtained in pure culture. This strain WR1, which was most closely related to Methanolobus taylorii, degraded MT, dimethyl sulfide (DMS), methanol and trimethylamine. Its optimal growth conditions were 0.2M NaCl, 30 degrees C and pH 8.4. In batch and reactor experiments operated at pH 10, MT was not degraded.
在实验室规模的上流式厌氧污泥床(UASB)反应器中,接种来自荷兰瓦登海的河口沉积物,研究了在盐碱条件(pH 8 - 10,0.5M Na⁺)下30℃时甲硫醇(MT)的降解情况。在钠浓度为0.5M且pH在8至9之间时,最大负荷率为22mmolMTL⁻¹天⁻¹且水力停留时间为6小时的情况下,MT可完全降解为硫化物、甲烷和二氧化碳。培养基中酵母提取物(100mg/L)的存在对于MT的完全降解至关重要。基于16S rRNA的变性梯度凝胶电泳(DGGE)和序列分析表明,与甲醇叶菌属和甲烷八叠球菌属相关的物种在反应器污泥中的古菌群落中占主导地位。它们的相对丰度随时间波动,这可能是反应器中运行条件变化的结果。从反应器中富集得到了最主要的MT降解古菌并获得了纯培养物。该菌株WR1与泰勒甲醇叶菌关系最为密切,可降解MT、二甲基硫醚(DMS)、甲醇和三甲胺。其最佳生长条件为0.2M NaCl、30℃和pH 8.4。在pH 10条件下进行的批次和反应器实验中,MT未被降解。