Houghton J L, Foustoukos D I, Flynn T M, Vetriani C, Bradley Alexander S, Fike D A
Department of Earth and Planetary Sciences, Washington University, St. Louis, MO, 63130, USA.
Geophysical Laboratory, Carnegie Institution of Washington, Washington, DC, 20015, USA.
Environ Microbiol. 2016 Sep;18(9):3057-72. doi: 10.1111/1462-2920.13232. Epub 2016 Mar 21.
Previous studies of the stoichiometry of thiosulfate oxidation by colorless sulfur bacteria have failed to demonstrate mass balance of sulfur, indicating that unidentified oxidized products must be present. Here the reaction stoichiometry and kinetics under variable pH conditions during the growth of Thiomicrospira thermophila strain EPR85, isolated from diffuse hydrothermal fluids at the East Pacific Rise, is presented. At pH 8.0, thiosulfate was stoichiometrically converted to sulfate. At lower pH, the products of thiosulfate oxidation were extracellular elemental sulfur and sulfate. We were able to replicate previous experiments and identify the missing sulfur as tetrathionate, consistent with previous reports of the activity of thiosulfate dehydrogenase. Tetrathionate was formed under slightly acidic conditions. Genomic DNA from T. thermophila strain EPR85 contains genes homologous to those in the Sox pathway (soxAXYZBCDL), as well as rhodanese and thiosulfate dehydrogenase. No other sulfur oxidizing bacteria containing sox(CD)2 genes have been reported to produce extracellular elemental sulfur. If the apparent modified Sox pathway we observed in T. thermophila is present in marine Thiobacillus and Thiomicrospira species, production of extracellular elemental sulfur may be biogeochemically important in marine sulfur cycling.
以往关于无色硫细菌氧化硫代硫酸盐化学计量学的研究未能证明硫的质量平衡,这表明必定存在未识别的氧化产物。本文介绍了从东太平洋海隆的扩散热液流体中分离出的嗜热硫微螺菌菌株EPR85生长过程中,在不同pH条件下的反应化学计量学和动力学。在pH 8.0时,硫代硫酸盐按化学计量转化为硫酸盐。在较低pH值下,硫代硫酸盐氧化的产物是细胞外元素硫和硫酸盐。我们能够重复之前的实验,并确定缺失的硫为连四硫酸盐,这与之前关于硫代硫酸盐脱氢酶活性的报道一致。连四硫酸盐在微酸性条件下形成。嗜热硫微螺菌菌株EPR85的基因组DNA包含与Sox途径(soxAXYZBCDL)中的基因同源的基因,以及硫氰酸酶和硫代硫酸盐脱氢酶。尚未有其他含有sox(CD)2基因的硫氧化细菌被报道能产生细胞外元素硫。如果我们在嗜热硫微螺菌中观察到的明显修饰的Sox途径存在于海洋硫杆菌属和硫微螺菌属物种中,那么细胞外元素硫的产生在海洋硫循环中可能具有重要的生物地球化学意义。