Bioactivities and formation/utilization of soluble microbial products (SMP) in the biological sulfate reduction under different conditions
The biological sulfate reduction (BSR) plays a critical role in the organic compound removal in the sulfur bioconversion-associated sewage treatment process. The soluble microbial products (SMP) are the major components of residual organic compounds in the secondary treatment effluent and its presen...
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sg-ntu-dr.10356-1527002021-09-20T01:35:30Z Bioactivities and formation/utilization of soluble microbial products (SMP) in the biological sulfate reduction under different conditions Qian, Jin Zhou, Junmei Pei, Xiangjun Zhang, Mingkuan Liu, Yu School of Civil and Environmental Engineering Nanyang Environment and Water Research Institute Advanced Environmental Biotechnology Centre (AEBC) Engineering::Environmental engineering Soluble Microbial Products Biological Sulfate Reduction The biological sulfate reduction (BSR) plays a critical role in the organic compound removal in the sulfur bioconversion-associated sewage treatment process. The soluble microbial products (SMP) are the major components of residual organic compounds in the secondary treatment effluent and its presence directly affects treatment capacity. In addition, the SMP could be one of the available organic substrates and be utilized as an electron donor in the bioreactions. However, the SMP formation and utilization in the BSR are poorly understood. Herein, the BSR activities and SMP generation/utilization were simultaneously investigated under different conditions, i.e. pH, temperature and ratio of organic carbon (C) to sulfur (S). The role of SMP as the electron donor for BSR was also identified. The higher BSR activities and rapid SMP synthesis were found under neutral and alkaline conditions, but the SMP utilization as the electron donor is not favorable at pH 7.0. The BSR activity became higher and more SMP was synthesized by raising the temperature. The ratio of C to S rarely affected the sulfidogenic activity but has an effect on the net SMP generation (total SMP generation - SMP consumption by SBR as the electron donor). The lower ratio of C/S could result in the low residual SMP level in the reactor. And the SMP-induced BSR activity was higher under the acid and alkaline conditions compared with the neutral condition. This work was financially supported by the National Natural Science Foundation of China (No. 51608444) and the Natural Science Foundation of Shenzhen (No. JCYJ20170306153655840). Dr. Jin Qian wishes to thank the Fundamental Research Funds for Central Universities (No. 3102017zy002). 2021-09-20T01:35:30Z 2021-09-20T01:35:30Z 2019 Journal Article Qian, J., Zhou, J., Pei, X., Zhang, M. & Liu, Y. (2019). Bioactivities and formation/utilization of soluble microbial products (SMP) in the biological sulfate reduction under different conditions. Chemosphere, 221, 37-44. https://dx.doi.org/10.1016/j.chemosphere.2018.12.208 0045-6535 https://hdl.handle.net/10356/152700 10.1016/j.chemosphere.2018.12.208 30634147 2-s2.0-85060015054 221 37 44 en Chemosphere © 2018 Published by Elsevier Ltd. All rights reserved. |
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Engineering::Environmental engineering Soluble Microbial Products Biological Sulfate Reduction Qian, Jin Zhou, Junmei Pei, Xiangjun Zhang, Mingkuan Liu, Yu Bioactivities and formation/utilization of soluble microbial products (SMP) in the biological sulfate reduction under different conditions |
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The biological sulfate reduction (BSR) plays a critical role in the organic compound removal in the sulfur bioconversion-associated sewage treatment process. The soluble microbial products (SMP) are the major components of residual organic compounds in the secondary treatment effluent and its presence directly affects treatment capacity. In addition, the SMP could be one of the available organic substrates and be utilized as an electron donor in the bioreactions. However, the SMP formation and utilization in the BSR are poorly understood. Herein, the BSR activities and SMP generation/utilization were simultaneously investigated under different conditions, i.e. pH, temperature and ratio of organic carbon (C) to sulfur (S). The role of SMP as the electron donor for BSR was also identified. The higher BSR activities and rapid SMP synthesis were found under neutral and alkaline conditions, but the SMP utilization as the electron donor is not favorable at pH 7.0. The BSR activity became higher and more SMP was synthesized by raising the temperature. The ratio of C to S rarely affected the sulfidogenic activity but has an effect on the net SMP generation (total SMP generation - SMP consumption by SBR as the electron donor). The lower ratio of C/S could result in the low residual SMP level in the reactor. And the SMP-induced BSR activity was higher under the acid and alkaline conditions compared with the neutral condition. |
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School of Civil and Environmental Engineering |
author_facet |
School of Civil and Environmental Engineering Qian, Jin Zhou, Junmei Pei, Xiangjun Zhang, Mingkuan Liu, Yu |
format |
Article |
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Qian, Jin Zhou, Junmei Pei, Xiangjun Zhang, Mingkuan Liu, Yu |
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Qian, Jin |
title |
Bioactivities and formation/utilization of soluble microbial products (SMP) in the biological sulfate reduction under different conditions |
title_short |
Bioactivities and formation/utilization of soluble microbial products (SMP) in the biological sulfate reduction under different conditions |
title_full |
Bioactivities and formation/utilization of soluble microbial products (SMP) in the biological sulfate reduction under different conditions |
title_fullStr |
Bioactivities and formation/utilization of soluble microbial products (SMP) in the biological sulfate reduction under different conditions |
title_full_unstemmed |
Bioactivities and formation/utilization of soluble microbial products (SMP) in the biological sulfate reduction under different conditions |
title_sort |
bioactivities and formation/utilization of soluble microbial products (smp) in the biological sulfate reduction under different conditions |
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2021 |
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https://hdl.handle.net/10356/152700 |
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1712300647818199040 |