[1] R.H. Liao, Y. Miao, J. Li, Y. Li, W. Zhu, J. Du, Y.M. Li, A.M. Li, H.J. Shen, Temperature dependence of denitrification microbial communities and functional genes in an expanded granular sludge bed reactor treating nitrate-rich wastewater, RSC Adv. 8(73) (2018) 42087-42094. [2] A. Cockburn, G. Brambilla, M.L. Fernandez, D. Arcella, L.R. Bordajandi, B. Cottrill, C. Peteghem, J.L. Dorne, Nitrite in feed:From animal health to human health, Toxicol. Appl. Pharmacol. 270(3) (2013) 209-217. [3] T.V. Krishna Mohan, Y.V. Nancharaiah, V.P. Venugopalan, P.M. Satya Sai, Effect of C/N ratio on denitrification of high-strength nitrate wastewater in anoxic granular sludge sequencing batch reactors, Ecol. Eng. 91(2016) 441-448. [4] Y.V. Nancharaiah, T.V. Krishna Mohan, P.M. Satya Sai, V.P. Venugopalan, Denitrification of high strength nitrate bearing acidic waters in granular sludge sequencing batch reactors, Int. Biodeterior. Biodegradation 119(2017) 28-36. [5] Y. Miao, Z. Wang, R.H. Liao, P. Shi, A.M. Li, Assessment of phenol effect on microbial community structure and function in an anaerobic denitrifying process treating high concentration nitrate wastewater, Chem. Eng. J. 330(2017) 757-763. [6] Y.X. Liu, Y. Wang, Y. Li, H. An, Y.K. Lv, Nitrogen removal characteristics of heterotrophic nitrification-aerobic denitrification by Alcaligenes faecalis C16, Chin. J. Chem. Eng. 23(5) (2015) 827-834. [7] Q.L. Ge, X.P. Yue, G.Y. Wang, Simultaneous heterotrophic nitrification and aerobic denitrification at high initial phenol concentration by isolated bacterium Diaphorobacter sp. PD-7, Chin. J. Chem. Eng. 23(5) (2015) 835-841. [8] S.H. Chen, S.Y. He, C.J. Wu, D.Y. Du, Characteristics of heterotrophic nitrification and aerobic denitrification bacterium Acinetobacter sp. T1 and its application for pig farm wastewater treatment, J. Biosci. Bioeng. 127(2) (2019) 201-205. [9] T.X. He, Z.L. Li, D.T. Xie, Q. Sun, Y. Xu, Q. Ye, J.P. Ni, Simultaneous nitrification and denitrification with different mixed nitrogen loads by a hypothermia aerobic bacterium, Biodegradation 29(2) (2018) 159-170. [10] H.Y. Zheng, Y. Liu, G.D. Sun, X.Y. Gao, Q.L. Zhang, Z.P. Liu, Denitrification characteristics of a marine origin psychrophilic aerobic denitrifying bacterium, J. Environ. Sci. 23(11) (2011) 1888-1893. [11] W.J. Wan, D.L. He, Z.J. Xue, Removal of nitrogen and phosphorus by heterotrophic nitrification-aerobic denitrification of a denitrifying phosphorus-accumulating bacterium Enterobacter cloacae HW-15, Ecol. Eng. 99(2017) 199-208. [12] B. Zhao, D.Y. Cheng, D.Y. Cheng, P. Tan, Q. An, J.S. Guo, Characterization of an aerobic denitrifier Pseudomonas stutzeri strain XL-2 to achieve efficient nitrate removal, Bioresour. Technol. 250(2018) 564-573. [13] E. Raper, T. Stephenson, D.R. Anderson, R. Fisher, A. Soares, Industrial wastewater treatment through bioaugmentation, Process. Saf. Environ. 118(2018) 178-187. [14] Y.L. Yang, L.X. Xie, T. Xin, K.H. Hu, S.B. Huang, Municipal wastewater treatment by the bioaugmentation of Bacillus sp. K5 within a sequencing batch reactor, PLoS One 12(6) (2017) e0178837. [15] B. Zhao, X.C. Ran, M. Tian, Q. An, J.S. Guo, Assessing the performance of a sequencing batch biofilm reactor bioaugmented with P. stutzeri strain XL-2 treating ammoniumrich wastewater, Bioresour. Technol. 270(2018) 70-79. [16] M. Herrero, D.C. Stuckey, Bioaugmentation and its application in wastewater treatment:a review, Chemosphere 140(2015) 119-128. [17] A. Nzila, Mini review:Update on bioaugmentation in anaerobic processes for biogas production, Anaerobe 46(2017) 3-12. [18] J.X. Yang, B. Zhao, Q. An, Y.S. Huang, J.S. Guo, Bioaugmentation with A. faecalis strain NR for achieving simultaneous nitrogen and organic carbon removal in a biofilm reactor, Bioresour. Technol. 247(2018) 871-880. [19] N.K. Patil, R. Kundapur, Y.S. Shouche, T.B. Karegoudar, Degradation of a Plasticizer, di-n-Butylphthalate by Delftia sp. TBKNP-05, Curr. Microbiol. 52(5) (2006) 225-230. [20] P. Muchesa, M. Leifels, L. Jurzik, K.B. Hoorzook, T.G. Barnard, C. Bartie1, Coexistence of free-living amoebae and bacteria in selected South African hospital water distribution systems, Parasitol. Res. 116(1) (2017) 155-165. [21] J.L. Wang, L.B. Chu, Biological nitrate removal from water and wastewater by solidphase denitrification process, Biotechnol. Adv. 34(6) (2016) 1103-1112. [22] D. Mieczkowski, A. Cydzik-Kwiatkowska, P. Rusanowska, P. Swiatczak, Temperature-induced changes in treatment efficiency and microbial structure of aerobic granules treating landfill leachate, World J. Microbiol. Biotechnol. 32(6) (2016) 91. [23] H.S. Chen, G. Cao, D. Zhang, Z.Z. Huang, C.H. Mo, Aerobic denitrification and microbial community shift in SBR bioaugmented with strains YH01 and YH02, Huan jing ke xue 39(4) (2018) 1773-1781. [24] D.W. Ren, J.S. Madsen, S.J. Sorensen, M. Burmolle, High prevalence of biofilm synergy among bacterial soil isolates in cocultures indicates bacterial interspecific cooperation, ISME J. 9(1) (2015) 81-89. [25] F. Ma, Y.L. Sun, A. Li, X.N. Zhang, J.X. Yang, Activation of accumulated nitrite reduction by immobilized Pseudomonas stutzeri T13 during aerobic denitrification, Bioresour. Technol. 187(2015) 30-36. [26] H.Y. Wang, S. Qun, J. Wang, H. Zhang, Q.L. He, W. Zhang, J.Y. Song, J.P. Zhou, H. Li, Simultaneous nitrification, denitrification and phosphorus removal in an aerobic granular sludge sequencing batch reactor with high dissolved oxygen:effects of carbon to nitrogen ratios, Sci. Total Environ. 642(2018) 1145-1152. [27] T.V. Krishna Mohan, K. Renu, Y.V. Nancharaiah, P.M. Satya Sai, V.P. Venugopalan, Nitrate removal from high strength nitrate-bearing wastes in granular sludge sequencing batch reactors, J. Biosci. Bioeng. 121(2) (2016) 191-195. [28] W.F. Wang, L.X. Cao, H.M. Tan, R.D. Zhang, Nitrogen removal from synthetic wastewater using single and mixed culture systems of denitrifying fungi, bacteria, and actinobacteria, Appl. Microbiol. Biotechnol. 100(22) (2016) 9699-9707. [29] J.S. Ye, H. Yin, J. Qiang, H. Peng, H.M. Qin, N. Zhang, B.Y. He, Biodegradation of anthracene by Aspergillus fumigatus, J. Hazard. Mater. 185(1) (2011) 174-181. [30] Q. Chen, J. Ni, T. Ma, T. Liu, M.S. Zheng, Bioaugmentation treatment of municipal wastewater with heterotrophic-aerobic nitrogen removal bacteria in a pilot-scale SBR, Bioresour. Technol. 183(2015) 25-32. [31] J. Jena, R. Kumar, M. Saifuddin, A. Dixit, T. Das, Anoxic-aerobic SBR system for nitrate, phosphate and COD removal from high-strength wastewater and diversity study of microbial communities, Biochem. Eng. J. 105(2016) 80-89. [32] M. Wang, J.K. Chen, B. Li, Characterization of bacterial community structure and diversity in rhizosphere soils of three plants in rapidly changing salt marshes using 16S rDNA, Pedosphere 17(5) (2007) 545-556. [33] C.L. Xu, R. Sun, X.J. Qiao, C.C. Xu, Protective effect of glutamine on intestinal injury and bacterial community in rats exposed to hypobaric hypoxia environment, World J. Gastroenterol. 20(16) (2014) 4662-4674. [34] R.H. L, Y. Li, X.M. Yu, P. Shi, Z. Wang, K. Shen, Q.Q. Shi, Y. Miao, W.T. Li, A.M. Li, Performance and microbial diversity of an expanded granular sludge bed reactor for high sulfate and nitrate waste brine treatment, J. Environ. Sci. 26(4) (2014) 717-725. [35] I. Manconi, A. Carucci, P. Lens, Combined removal of sulfur compounds and nitrate by autotrophic denitrification in bioaugmented activated sludge system, Biotechnol. Bioeng. 98(3) (2007) 551-560. [36] R.C. Zhang, X.J. Xu, C. Chen, B. Shao, X. Zhou, Y. Yuan, D.J. Lee, N.Q. Ren, Bioreactor performance and microbial community analysis of autotrophic denitrification under micro-aerobic condition, Sci. Total Environ. 647(2019) 914-922. [37] J.L. Shao, G. Cao, Z.H. Li, Z.Z. Huang, K. Luo, C.H. Mo, Analysis of the microbial community structure in continuous flow reactor enhanced by heterotrophic nitrification and aerobic denitrification bacterium Burkholderia sp. YX02, Environ. Sci. 37(2) (2016) 630-637.(in Chinese) [38] C. Du, C.W. C, S. Qiu, S.N. Shi, A. Li, F. Ma, Nitrogen removal and microbial community shift in an aerobic denitrification reactor bioaugmented with a Pseudomonas strain for coal-based ethylene glycol industry wastewater treatment, Environ. Sci. Pollut. Res. 24(12) (2017) 11435-11445. [39] H. Yun, B. Liang, D.Y. Kong, G.S. Qi, A.J. Wang, Enhanced biotransformation of triclocarban by Ochrobactrum sp. TCC-1 under anoxic nitrate respiration conditions, Curr. Microbiol. 74(4) (2017) 491-498. |