University of Chemistry and Technology Prague, Department of Water Technology and Environmental Engineering, Technická 5, 166 28 Prague, Czechia.
University of Chemistry and Technology Prague, Department of Water Technology and Environmental Engineering, Technická 5, 166 28 Prague, Czechia.
Bioresour Technol. 2022 Apr;349:126847. doi: 10.1016/j.biortech.2022.126847. Epub 2022 Feb 12.
The adaptation of bacteria involved in the anaerobic ammonium oxidation (anammox) to low temperatures in the mainstream of WWTP will unlock substantial treatment savings. However, their adaptation mechanisms have begun to be revealed only very recently. This study reviewed the state-of-the-art knowledge on these mechanisms from -omics studies, crucially including metaproteomics and metabolomics. Anammox bacteria adapt to low temperatures by synthesizing both chaperones of RNA and proteins and chemical chaperones. Furthermore, they preserve energy for the core metabolism by reducing biosynthesis in general. Thus, in this study, a number of biomarkers are proposed to help practitioners assess the extent of anammox bacteria adaptation and predict the decomposition of biofilms/granules or slower growth. The promising biomarkers also include unique ladderane lipids. Further proteomic and metabolomic studies are necessary for a more detailed understanding of anammox low-temperature adaptation, thus easing the transition to more cost-effective and sustainable wastewater treatment.
细菌对污水处理厂主流工艺中低温环境的适应将带来大量的处理成本节省。然而,它们的适应机制直到最近才开始被揭示。本研究从组学研究,特别是包括宏蛋白质组学和代谢组学,综述了这些机制的最新知识。厌氧氨氧化菌通过合成 RNA 和蛋白质的伴侣以及化学伴侣来适应低温。此外,它们通过普遍减少生物合成来为核心代谢保存能量。因此,在这项研究中,提出了一些生物标志物来帮助从业者评估厌氧氨氧化菌适应的程度,并预测生物膜/颗粒的分解或生长缓慢。有前途的生物标志物还包括独特的梯烷脂类。为了更详细地了解厌氧氨氧化低温适应,还需要进一步进行蛋白质组学和代谢组学研究,从而更容易实现更具成本效益和可持续的废水处理。