Shaanxi Key Laboratory of Environmental Engineering, Xi'an University of Architecture and Technology, Xi'an, 710055, China.
Key Lab of Northwest Water Resource, Environment and Ecology, Ministry of Education, Xi'an University of Architecture and Technology, Xi'an, 710055, China.
Environ Sci Pollut Res Int. 2023 Aug;30(39):91095-91107. doi: 10.1007/s11356-023-28763-8. Epub 2023 Jul 19.
Extensive application of carbon quantum dots (CQDs) enlarges its concentration in sewage treatment system. The response of nitrifying sludge to CQDs after long-term exposure was investigated. Results showed that CQD concentrations of 0-100 mg/L presented positive effect to enzymes involved in nitrification, accelerating NH-N degradation and NO-N transformation. The oxidation rate of NO-N was significantly improved from 3.14 to 7.91 mg/(L h) under the stress of 100 mg/L CQDs. Besides, CQDs stimulated the production of sludge biomass and kept the stability of sludge settleability. Additionally, CQDs were mainly captured by loosely bound extracellular polymeric substances, reducing aromatic-like protein. Microbes alleviated CQD stress by secreting tryptophan-like protein and polysaccharides. After few CQDs entered cells, intracellular antioxidant defense was activated. Total antioxidant capacity level was heightened at least 31%. The activities of superoxide dismutase and catalase were enhanced at relatively low and high CQD concentration levels. Hence, microbial metabolic pathways, microbial community, and nitrifying bacteria were not significantly affected by CQDs. The findings of this work provide new insight for understanding the environmental implication of CQDs in the biological treatment system.
大量应用碳量子点(CQDs)会增加其在污水处理系统中的浓度。本研究考察了长期暴露于 CQDs 后硝化污泥的响应。结果表明,0-100mg/L 的 CQD 浓度对硝化相关酶表现出积极影响,加速了 NH4-N 的降解和 NO2-N 的转化。在 100mg/L CQD 的胁迫下,NO2-N 的氧化速率从 3.14mg/(L·h)显著提高到 7.91mg/(L·h)。此外,CQDs 刺激了污泥生物量的产生,并保持了污泥沉降性能的稳定性。此外,CQDs 主要被松散结合的胞外聚合物物质捕获,减少了类芳香族蛋白。微生物通过分泌色氨酸类似蛋白和多糖来缓解 CQD 胁迫。少量 CQDs 进入细胞后,细胞内抗氧化防御被激活。总抗氧化能力水平至少提高了 31%。超氧化物歧化酶和过氧化氢酶的活性在相对较低和较高的 CQD 浓度水平下增强。因此,微生物代谢途径、微生物群落和硝化细菌没有受到 CQDs 的显著影响。本研究结果为理解 CQDs 在生物处理系统中的环境影响提供了新的见解。