光催化能否抑制种间细菌合作,从而抑制水环境中复杂细菌生物膜的形成?

IF 11.4 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL Water Research Pub Date : 2024-07-23 DOI:10.1016/j.watres.2024.122137
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引用次数: 0

摘要

细菌生物膜作为机会性水生细菌病原体的环境储藏库,对公共卫生构成了重大风险。了解复杂细菌生物膜在不同刺激和应激反应调控机制下的种间作用是控制其传播的关键。在此,研究人员在贯流反应器中构建了双种混合(TSM)生物膜(金黄色葡萄球菌和铜绿假单胞菌)。与单种生物膜相比,TSM 生物膜具有更高的生长活性,能更快达到成熟,形成交错的群落结构。此外,与单一浮游微生物相比,TSM 生物膜对不同抗生素的耐药性大大提高(16-128 倍),尤其是对那些影响蛋白质合成和细胞膜完整性的抗生素。在有刺激的情况下,光催化可在 10 小时内有效灭活 TSM 生物膜,与紫外线照射相比,灭活时间缩短了 4 倍。此外,光催化还能有效消耗 TSM 生物膜的胞外聚合物,并抑制其种间法定量感应信号分子自动诱导因子-2(AI-2)的分泌。然而,在光催化的最初 2 - 4 小时内,TSM 生物膜的 AI-2 诱导的相关毒力因子和生物膜生长相关基因的表达最初上调了 3 - 10 倍,随后显著下调。此外,与对照组相比,添加 AI-2 前体 4,5-二羟基-2,3-戊二酮可有效延迟 TSM 生物膜的光催化灭活效率。这些结果表明,光催化可以通过淬灭 TSM 生物膜中的 AI-2 来抑制种间合作,从而有效灭活生物膜。这项工作为控制公共卫生工程系统中的生物膜提供了启示。
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Can photocatalysis inhibit interspecies bacterial cooperation to quench the formation of robust complex bacterial biofilms in water environments?

Bacterial biofilms pose significant a public health risk as an environmental reservoir for opportunistic aquatic bacterial pathogens. Understanding the interspecies roles of complex bacterial biofilms under different stimuli and regulatory mechanisms of stress responses is the key to controlling their dissemination. Herein, two-species mixture (TSM) biofilms (Staphylococcus aureus and Pseudomonas aeruginosa) were constructed in a flowthrough reactor. Compared with the single-species biofilms, the TSM biofilm had higher growth activity to reach maturity faster, forming a staggered community structure. Moreover, the TSM biofilm exhibited greatly improved resistance to different antibiotics (16−128 times higher), especially to those that act on protein synthesis and cell membrane integrity, when compared to single planktonic microorganisms. In the presence of stimuli, photocatalysis effectively inactivated the TSM biofilm within 10 h, a 4-fold shorter inactivation time compared to UVC irradiation. In addition, photocatalysis effectively depleted the extracellular polymers of the TSM biofilm and inhibited secretion of their interspecies quorum sensing signaling molecule autoinducer-2 (AI-2). However, the expression of AI-2 induced related virulence factors, and biofilm growth-related genes were initially up-regulated 3 − 10 fold for the TSM biofilm within the first 2 − 4 h of photocatalysis, followed by significant down-regulation. Furthermore, the addition of the AI-2 precursor 4,5-dihydroxy-2,3-pentanedione effectively delayed the photocatalytic inactivation efficiency of the TSM biofilm compared to the control. These results suggest that photocatalysis can effectively inactivate biofilms by inhibiting interspecies cooperation by quenching AI-2 in the TSM biofilm. This work sheds light on controlling biofilms in public health engineering systems.

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来源期刊
Water Research
Water Research 环境科学-工程:环境
CiteScore
20.80
自引率
9.40%
发文量
1307
审稿时长
38 days
期刊介绍: Water Research, along with its open access companion journal Water Research X, serves as a platform for publishing original research papers covering various aspects of the science and technology related to the anthropogenic water cycle, water quality, and its management worldwide. The audience targeted by the journal comprises biologists, chemical engineers, chemists, civil engineers, environmental engineers, limnologists, and microbiologists. The scope of the journal include: •Treatment processes for water and wastewaters (municipal, agricultural, industrial, and on-site treatment), including resource recovery and residuals management; •Urban hydrology including sewer systems, stormwater management, and green infrastructure; •Drinking water treatment and distribution; •Potable and non-potable water reuse; •Sanitation, public health, and risk assessment; •Anaerobic digestion, solid and hazardous waste management, including source characterization and the effects and control of leachates and gaseous emissions; •Contaminants (chemical, microbial, anthropogenic particles such as nanoparticles or microplastics) and related water quality sensing, monitoring, fate, and assessment; •Anthropogenic impacts on inland, tidal, coastal and urban waters, focusing on surface and ground waters, and point and non-point sources of pollution; •Environmental restoration, linked to surface water, groundwater and groundwater remediation; •Analysis of the interfaces between sediments and water, and between water and atmosphere, focusing specifically on anthropogenic impacts; •Mathematical modelling, systems analysis, machine learning, and beneficial use of big data related to the anthropogenic water cycle; •Socio-economic, policy, and regulations studies.
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