Removal of oxytetracycline and ofloxacin in wastewater by microalgae-bacteria symbiosis for bioenergy production.
暂无分享,去创建一个
Yun Huang | A. Xia | Q. Liao | Xianqing Zhu | Xiaobo Guo | Xun Zhu | Su Shiung Lam | Jingmiao Zhang | Dunxue Yao
[1] Yun Huang,et al. Microalgae cultivation for antibiotic oxytetracycline wastewater treatment. , 2022, Environmental research.
[2] Yun Huang,et al. Co-production of carbon quantum dots and biofuels via hydrothermal conversion of biomass , 2022, Fuel Processing Technology.
[3] Yu Hong,et al. Performance and mechanism of Chlorella in swine wastewater treatment: roles of nitrogen-phosphorus ratio adjustment and indigenous bacteria. , 2022, Bioresource technology.
[4] R. Ruan,et al. Effects of microalgae-bacteria inoculation ratio on biogas slurry treatment and microorganism interactions in the symbiosis system , 2022, Journal of Cleaner Production.
[5] K. Agrawal,et al. An exploration of natural synergy using microalgae for the remediation of pharmaceuticals and xenobiotics in wastewater , 2022, Algal Research.
[6] Lili Lin,et al. Degradation and utilization of EPS from excessive activated sludge by interaction of electrogenesis and light stimulation , 2022, Journal of Environmental Chemical Engineering.
[7] Y. Liu,et al. Degradation of amoxicillin by newly isolated Bosea sp. Ads-6. , 2022, The Science of the total environment.
[8] Jo‐Shu Chang,et al. Bioremediation of sulfonamides by a microalgae-bacteria consortium - Analysis of pollutants removal efficiency, cellular composition, and bacterial community. , 2022, Bioresource technology.
[9] Haixing Chang,et al. Insights into the microalgae-bacteria consortia treating swine wastewater: symbiotic mechanism and resistance genes analysis. , 2022, Bioresource technology.
[10] Liwei Sun,et al. Effects of ofloxacin on the structure and function of freshwater microbial communities. , 2022, Aquatic toxicology.
[11] G. Zeng,et al. Effects of oxytetracycline and zinc ion on nutrient removal and biomass production via microalgal culturing in anaerobic digester effluent , 2022, Bioresource Technology.
[12] G. Fongaro,et al. Removal of veterinary antibiotics in swine wastewater using microalgae-based process. , 2021, Environmental research.
[13] Jo‐Shu Chang,et al. Enhanced biodegradation of chlortetracycline via a microalgae-bacteria consortium. , 2021, Bioresource technology.
[14] J. Peñuelas,et al. Gammaproteobacteria, a core taxon in the guts of soil fauna, are potential responders to environmental concentrations of soil pollutants , 2021, Microbiome.
[15] Lushan Wang,et al. Variations in antibiotic resistance genes and removal mechanisms induced by C/N ratio of substrate during composting. , 2021, The Science of the total environment.
[16] K. Pazdro,et al. The Toxic Effects of Antibiotics on Freshwater and Marine Photosynthetic Microorganisms: State of the Art , 2021, Plants.
[17] Ze-hua Liu,et al. Veterinary antibiotics in swine and cattle wastewaters of China and the United States: Features and differences , 2021, Water environment research : a research publication of the Water Environment Federation.
[18] R. Ruan,et al. Effect of chlortetracycline on the growth and intracellular components of Spirulina platensis and its biodegradation pathway. , 2021, Journal of hazardous materials.
[19] A. Nizami,et al. Carbon cloth facilitates semi-continuous anaerobic digestion of organic wastewater rich in volatile fatty acids from dark fermentation. , 2020, Environmental pollution.
[20] Shanming Chen,et al. Biochemical responses of the freshwater microalga Dictyosphaerium sp. upon exposure to three sulfonamides. , 2020, Journal of environmental sciences.
[21] Hafiz M.N. Iqbal,et al. Phyco-remediation of swine wastewater as a sustainable model based on circular economy. , 2020, Journal of environmental management.
[22] H. Iwata,et al. Tetracycline Resistance Gene Profiles in Red Seabream (Pagrus major) Intestine and Rearing Water After Oxytetracycline Administration , 2020, Frontiers in Microbiology.
[23] G. Zeng,et al. Microalgal and duckweed based constructed wetlands for swine wastewater treatment: A review. , 2020, Bioresource technology.
[24] Shan Gao,et al. Effects of oxytetracycline dihydrate and sulfamethoxazole on Microcystis aeruginosa and Chlamydomonas microsphaera , 2020, Journal of Oceanology and Limnology.
[25] Xiaobo Tan,et al. Removal of ofloxacin with biofuel production by oleaginous microalgae Scenedesmus obliquus. , 2020, Bioresource technology.
[26] Paul Chen,et al. Auto-flocculation microalgae species Tribonema sp. and Synechocystis sp. with T-IPL pretreatment to improve swine wastewater nutrient removal. , 2020, The Science of the total environment.
[27] V. Sharma,et al. Occurrence and toxicity of antibiotics in the aquatic environment: A review. , 2020, Chemosphere.
[28] Jo‐Shu Chang,et al. Current advances in biological swine wastewater treatment using microalgae-based processes. , 2019, Bioresource technology.
[29] Zhou Qifa,et al. Vetiver and Dictyosphaerium sp. co-culture for the removal of nutrients and ecological inactivation of pathogens in swine wastewater , 2019, Journal of advanced research.
[30] J. Reiss,et al. Antibiotic pollution in surface fresh waters: Occurrence and effects. , 2019, The Science of the total environment.
[31] H. Ngo,et al. Microalgae biomass from swine wastewater and its conversion to bioenergy. , 2019, Bioresource technology.
[32] N. Morad,et al. Removal of COD, BOD and nutrients in swine manure wastewater using freshwater green microalgae , 2018 .
[33] Roi Mera,et al. Bioremediation of oxytetracycline in seawater by living and dead biomass of the microalga Phaeodactylum tricornutum. , 2016, Journal of hazardous materials.
[34] S. Kueppers,et al. Electrochemical oxidation of fluoroquinolone antibiotics: Mechanism, residual antibacterial activity and toxicity change. , 2016, Water research.
[35] M. Matlock,et al. Recovery of nutrients from swine wastewater using ultrafiltration: Applications for microalgae cultivation in photobioreactors , 2016 .
[36] A. Xia,et al. Microalgal Cultivation in Treating Liquid Digestate from Biogas Systems. , 2016, Trends in biotechnology.
[37] Jun Cheng,et al. Growth optimisation of microalga mutant at high CO₂ concentration to purify undiluted anaerobic digestion effluent of swine manure. , 2015, Bioresource technology.
[38] P. McGinn,et al. Simultaneous remediation of nutrients from liquid anaerobic digestate and municipal wastewater by the microalga Scenedesmus sp. AMDD grown in continuous chemostats , 2015, Journal of applied microbiology.
[39] A. Cid,et al. Toxicity induced by three antibiotics commonly used in aquaculture on the marine microalga Tetraselmis suecica (Kylin) Butch. , 2014, Marine environmental research.
[40] G. Ying,et al. Antibacterial activity of the soil‐bound antimicrobials oxytetracycline and ofloxacin , 2014, Environmental toxicology and chemistry.
[41] H. Dang,et al. Molecular determination of oxytetracycline‐resistant bacteria and their resistance genes from mariculture environments of China , 2007, Journal of applied microbiology.
[42] D. Schwudke,et al. Predatory mechanisms of Bdellovibrio and like organisms. , 2007, Future microbiology.
[43] Michael J Lydy,et al. Toxicity of fluoroquinolone antibiotics to aquatic organisms , 2005, Environmental toxicology and chemistry.