Xu Boyan, Su Qingxian, Yang Yuxin, Huang Shujuan, Yang Yue, Shi Xueqing, Choo Kwang-Ho, Ng How Yong, Lee Chung-Hak
Center for Water Research, Advanced Institute of Natural Sciences, Beijing Normal University, Zhuhai, 519087, China.
Department of Civil and Environmental Engineering, National University of Singapore, 117576, Singapore.
Environ Sci Technol. 2024 Jul 16. doi: 10.1021/acs.est.4c04535.
The occurrence of biofouling restricts the widespread application of membrane bioreactors (MBRs) in wastewater treatment. Regulation of quorum sensing (QS) is a promising approach to control biofouling in MBRs, yet the underlying mechanisms are complex and remain to be illustrated. A fundamental understanding of the relationship between QS and membrane biofouling in MBRs is lacking, which hampers the development and application of quorum quenching (QQ) techniques in MBRs (QQMBRs). While many QQ microorganisms have been isolated thus far, critical criteria for selecting desirable QQ microorganisms are still missing. Furthermore, there are inconsistent results regarding the QQ lifecycle and the effects of QQ on the physicochemical characteristics and microbial communities of the mixed liquor and biofouling assemblages in QQMBRs, which might result in unreliable and inefficient QQ applications. This review aims to comprehensively summarize timely QQ research and highlight the important yet often ignored perspectives of QQ for biofouling control in MBRs. We consider what this "information" can and cannot tell us and explore its values in addressing specific and important questions in QQMBRs. Herein, we first examine current analytical methods of QS signals and discuss the critical roles of QS in fouling-forming microorganisms in MBRs, which are the cornerstones for the development of QQ technologies. To achieve targeting QQ strategies in MBRs, we propose the substrate specificity and degradation capability of isolated QQ microorganisms and the surface area and pore structures of QQ media as the critical criteria to select desirable functional microbes and media, respectively. To validate the biofouling retardation efficiency, we further specify the QQ effects on the physicochemical properties, microbial community composition, and succession of mixed liquor and biofouling assemblages in MBRs. Finally, we provide scale-up considerations of QQMBRs in terms of the debated QQ lifecycle, practical synergistic strategies, and the potential cost savings of MBRs. This review presents the limitations of classic QS/QQ hypotheses in MBRs, advances the understanding of the role of QS/QQ in biofouling development/retardation in MBRs, and builds a bridge between the fundamental understandings and practical applications of QQ technology.
生物污垢的出现限制了膜生物反应器(MBR)在废水处理中的广泛应用。群体感应(QS)调控是控制MBR中生物污垢的一种有前景的方法,但其潜在机制复杂,仍有待阐明。目前缺乏对MBR中QS与膜生物污垢之间关系的基本认识,这阻碍了群体淬灭(QQ)技术在MBR(QQMBR)中的开发和应用。虽然到目前为止已经分离出许多QQ微生物,但仍缺少选择理想QQ微生物的关键标准。此外,关于QQ生命周期以及QQ对QQMBR中混合液和生物污垢聚集体的物理化学特性及微生物群落的影响,结果并不一致,这可能导致QQ应用不可靠且效率低下。本综述旨在全面总结当前关于QQ的研究,并突出QQ在控制MBR生物污垢方面重要但常被忽视的观点。我们思考这些“信息”能告诉我们什么以及不能告诉我们什么,并探索其在解决QQMBR中特定且重要问题方面的价值。在此,我们首先研究QS信号的当前分析方法,并讨论QS在MBR中形成污垢的微生物中的关键作用,这是QQ技术发展的基石。为了在MBR中实现靶向QQ策略,我们提出将分离出的QQ微生物的底物特异性和降解能力以及QQ介质的表面积和孔结构分别作为选择理想功能微生物和介质的关键标准。为了验证生物污垢延缓效率,我们进一步明确了QQ对MBR中混合液和生物污垢聚集体的物理化学性质、微生物群落组成及演替的影响。最后,我们从备受争议的QQ生命周期、实际协同策略以及MBR潜在成本节约等方面提供了QQMBR放大规模的考虑因素。本综述揭示了经典QS/QQ假说在MBR中的局限性,增进了对QS/QQ在MBR生物污垢形成/延缓中作用的理解,并在QQ技术的基本认识和实际应用之间架起了一座桥梁。