School of Environmental Science and Engineering, Qingdao University, Qingdao 266071, China.
School of Environmental Science and Engineering, Qingdao University, Qingdao 266071, China.
Trends Biotechnol. 2022 Feb;40(2):226-239. doi: 10.1016/j.tibtech.2021.06.006. Epub 2021 Jul 17.
Hypersaline wastewater is difficult to treat due to the inhibition of salt stress on microbes' viability and metabolic capabilities. Haloarchaea, native microorganisms that thrive in hypersaline habitats, overcome this key obstacle naturally. This review provides a comprehensive overview of the metabolic versatility of Haloarchaea in hypersaline wastewater treatment, including carbon, nitrogen, phosphorus, sulfur, and heavy metal metabolism. It also analyzes factors affecting pollutant removal and addresses metabolic mechanisms. Additionally, haloarchaea microbial characteristics and strategies to cope with salt stress are highlighted. Finally, the biotechnological potential of biomolecules produced from haloarchaea is investigated. To get better insight into the potential of haloarchaea, a deeper investigation of basic metabolism and more in-depth studies of their genomics and applications in actual wastewater are also necessary.
高盐废水处理困难,因为盐度会抑制微生物的生存能力和代谢能力。嗜盐古菌是在高盐环境中生存的本地微生物,它们能够自然克服这一关键障碍。本综述全面概述了嗜盐古菌在高盐废水处理中的代谢多样性,包括碳、氮、磷、硫和重金属代谢。它还分析了影响污染物去除的因素,并讨论了代谢机制。此外,还强调了嗜盐古菌微生物的特征和应对盐胁迫的策略。最后,研究了从嗜盐古菌中产生的生物分子的生物技术潜力。为了更好地了解嗜盐古菌的潜力,还需要更深入地研究其基础代谢,并更深入地研究其基因组学及其在实际废水中的应用。