College of Resources and Environment, University of Chinese Academy of Sciences, No. 19(A) Yuquan Road, Shijingshan District, Beijing, 100049, China.
Yanshan Earth Critical Zone and Surface Fluxes Research Station, University of Chinese Academy of Sciences, Beijing, 101408, China.
Appl Microbiol Biotechnol. 2021 Jul;105(13):5299-5307. doi: 10.1007/s00253-021-11414-8. Epub 2021 Jun 28.
Biological wastewater treatment (BWT) is currently the most widely applied approach for treating wastewater. The performance of BWT systems depends on the complex microbial communities they support. Although bacteriophages (phages), which are the viruses that infect prokaryotes, are recognized as the most abundant life entities, understanding of their ecological roles in BWT systems remains limited. Here, we review recent progress in phage-associated researches in BWT systems, including the interactions between phage and host, polyvalent phages, the influence of phage activity on BWT performance, and the potential applications of phage-based control for sludge bulking/foaming and pathogens. The challenges and perspectives of phage ecology are also outlined, which are expected to provide implications for future research and applications.Key points• Phage-host interactions in BWT systems are summarized• Impacts of phage activities on BWT performance• Potential applications of phages in BWT systems.
生物污水处理(BWT)是目前应用最广泛的废水处理方法。BWT 系统的性能取决于其所支持的复杂微生物群落。尽管噬菌体(phages),即感染原核生物的病毒,被认为是最丰富的生命实体,但人们对它们在 BWT 系统中的生态作用仍知之甚少。本文综述了 BWT 系统中噬菌体相关研究的最新进展,包括噬菌体与宿主之间的相互作用、多价噬菌体、噬菌体活性对 BWT 性能的影响,以及基于噬菌体的控制在污泥膨胀/泡沫和病原体方面的潜在应用。还概述了噬菌体生态学的挑战和展望,预计这将为未来的研究和应用提供启示。
关键点
• BWT 系统中噬菌体-宿主相互作用的总结
• 噬菌体活性对 BWT 性能的影响
• 噬菌体在 BWT 系统中的潜在应用。