S2--oxidizing characteristics and main bio-oxidation metabolic pathway of Stenotrophomonas sp.sp3
XU Yao-yao1,2, SONG Chen3,4, LU Jin-xia1, WANG Jin2, YUE Zheng-bo2, LIU Xiao-ling1
1. Chinese Research Academy of Environmental Sciences, Beijing 100012, China; 2. School of Resources and Environmental Engineering, Hefei University of Technology, Hefei 230009, China; 3. Nanjing R & D Technology Group Co., Ltd, Nanjing 210029, China; 4. Nanjing Hydraulic Research Institute, Nanjing 225600, China
Abstract:Inorganic sulfur (S2-) was used as the target pollutant, and a single strain capable of S2--oxidizing was obtained from Dongsha river (a black-stinking river) located in Beijing. Through both of the physiological-biochemical characteristics and the 16S rRNA sequencing experiment, this single strain was identified as Stenotrophomonas, and named as Stenotrophomonas sp.sp3. The experiment on the growth and S2--oxidizing characteristics of this strain sp3 was then carried out. The best conditions of S2--oxidizing were as follows:initial pH of 7.0, 25℃, initial glucose concentration of 0.25% along with initial cell concentration of 1.00g/L. Under the above bio-oxidation conditions, the highest S2--oxidizing ratio was arrived at 86.6% by this strain sp3 after the bio-reaction of 60h. The concentration of S2-decreased continually and then kept in a stable status in the whole bio-reaction process, and other sulphur chemical forms including S0, S2O32-, SO32- and SO42- were produced in this period. With the bio-oxidation of S2-, the concentration of SO42- increased slowly. High-throughput sequencing technologies were used to investigate the main metabolic pathway of S2-bio-oxidation by this strain sp3. The paracoccus sulfur oxidation process was the possibly main metabolic pathway of S2-(unstable valence state) to SO42- (stable valence state). It was initially concluded that a portion of S2-was oxidized to S0, while other part of S2-was directly oxidized to SO32; and then S0 reacted with SO32- spontaneously to form S2O32-, while the latter was released SO32- and S0 by the disproportionate reaction again. The SO32- accumulated gradually in the system was further directly oxidized to SO42-. This study indicated that this strain sp3 has potential application in water purification of the black-stinking wate bodies.
徐瑶瑶, 宋晨, 路金霞, 王进, 岳正波, 刘晓玲. 寡养单胞菌对S2-氧化特性及主要代谢途径[J]. 中国环境科学, 2019, 39(8): 3373-3382.
XU Yao-yao, SONG Chen, LU Jin-xia, WANG Jin, YUE Zheng-bo, LIU Xiao-ling. S2--oxidizing characteristics and main bio-oxidation metabolic pathway of Stenotrophomonas sp.sp3. CHINA ENVIRONMENTAL SCIENCECE, 2019, 39(8): 3373-3382.
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