破解季节性海水生物污损密码:利用定量感应抑制剂功能化膜加强生物污损控制

IF 10.4 1区 工程技术 Q1 ENGINEERING, CHEMICAL
Chao Chen, Yu Yang, Kwang-Ho Choo, How Yong Ng, Satoshi Takizawa, Li-an Hou
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引用次数: 0

摘要

膜生物污损是海水反渗透(SWRO)脱盐过程中一直面临的挑战。在此,我们深入研究了微生物群落的季节性变化对膜生物污损的影响,并创新性地制造了法定量感应抑制剂(酰化酶(AC)和蒽酸甲酯(MA))改性膜来应对这一问题。结果表明,在海水和膜生物膜中,变形菌在所有季节都占主导地位,而其他菌门则随季节而变化。在菌类水平上,膜上的两种主要细菌是γ-和α-蛋白细菌,分别占 14-48% 和 4-27%。弧菌属、弧菌属和罗杆菌科等菌属被确定为关键物种,它们与胞外聚合物质(EPS)和生物膜的形成呈显著正相关,导致膜通量大幅减少 70% 至 77%。与原始膜相比,在膜上引入 AC 和 MA 抑制剂可抑制关键菌 Rhodobacteraceae 和 Arcobacter 并影响它们的新陈代谢,从而使 EPS 分别显著减少 65-69% 和 55-59%,并使膜通量分别减少 30-32% 和 18-22%。这些发现揭示了膜生物污损的季节性规律,并为基于 QS 抑制协同生物膜形成的抗生物污损策略提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cracking the code of seasonal seawater biofouling: enhanced biofouling control with quorum sensing inhibitor-functionalized membranes

Cracking the code of seasonal seawater biofouling: enhanced biofouling control with quorum sensing inhibitor-functionalized membranes

Cracking the code of seasonal seawater biofouling: enhanced biofouling control with quorum sensing inhibitor-functionalized membranes
Membrane biofouling poses an ongoing challenge in seawater reverse osmosis (SWRO) desalination. Here we delved into the impact of seasonal variations in microbial communities on membrane biofouling and innovatively fabricated quorum sensing inhibitors (acylase (AC) and methyl anthranilate (MA))-modified membranes to combat it. Results indicated that Proteobacteria dominated in seawater and membrane biofilm across all seasons, while other phyla varied seasonally. At the class level, the two leading bacteria on the membrane were Gamma- and Alphaproteobacteria, constituting 14–48% and 4–27%, respectively. Genera like Arcobacter, Vibrio, and Rhodobacteraceae were identified as keystone species that exhibited a significant positive correlation with extracellular polymeric substance (EPS) and biofilm formation, leading to a substantive reduction in membrane flux by 70 to 77%. The introduction of AC and MA inhibitors on the membrane suppressed keystone bacteria Rhodobacteraceae and Arcobacter and affected their metabolism, thereby significantly reducing EPS by 65–69% and 55–59%, respectively, and alleviating membrane flux decline by 30–32% and 18–22%, respectively, compared to the pristine membrane. These findings shed new light on the seasonal patterns of membrane biofouling and provide valuable insights into anti-biofouling strategies based on QS inhibition for collaborative biofilm formation.
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来源期刊
npj Clean Water
npj Clean Water Environmental Science-Water Science and Technology
CiteScore
15.30
自引率
2.60%
发文量
61
审稿时长
5 weeks
期刊介绍: npj Clean Water publishes high-quality papers that report cutting-edge science, technology, applications, policies, and societal issues contributing to a more sustainable supply of clean water. The journal's publications may also support and accelerate the achievement of Sustainable Development Goal 6, which focuses on clean water and sanitation.
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