《医院废水和城市污水塑造了环境生物膜的基质和活性耐药基因组》

  • 来源专题:水环境治理与保护
  • 编译者: 王阳1
  • 发布时间:2023-10-23
  • Abstract

    Understanding the dynamics of antibiotic resistance gene (ARG) transfer and dissemination in natural environments remains challenging. Biofilms play a crucial role in bacterial survival and antimicrobial resistance (AMR) dissemination in natural environments, particularly in aquatic systems. This study focused on hospital and urban wastewater (WW) biofilms to investigate the potential for ARG dissemination through mobile genetic elements (MGEs). The analysis included assessing the biofilm extracellular polymeric substances (EPS), microbiota composition as well as metatranscriptomic profiling of the resistome and mobilome. We produced both in vitro and in situ biofilms and performed phenotypic and genomic analyses. In the in vitro setup, untreated urban and hospital WW was used to establish biofilm reactors, with ciprofloxacin added as a selective agent at minimal selective concentration. In the in situ setup, biofilms were developed directly in hospital and urban WW pipes.

    We first showed that a) the composition of EPS differed depending on the growth environment (in situ and in vitro) and the sampling origin (hospital vs urban WW) and that b) ciprofloxacin impacted the composition of the EPS. The metatranscriptomic approach showed that a) expression of several ARGs and MGEs increased upon adding ciprofloxacin for biofilms from hospital WW only and b) that the abundance and type of plasmids that carried individual or multiple ARGs varied depending on the WW origins of the biofilms. When the same plasmids were present in both, urban and hospital WW biofilms, they carried different ARGs.  We showed that hospital and urban wastewaters shaped the structure and active resistome of environmental biofilms, and we confirmed that hospital WW is an important hot spot for the dissemination and selection of antimicrobial resistance. Our study provides a comprehensive assessment of WW biofilms as crucial hotspots for ARG transfer. Hospital WW biofilms exhibited distinct characteristics, including higher eDNA abundance and expression levels of ARGs and MGEs, highlighting their role in antimicrobial resistance dissemination. These findings emphasize the importance of understanding the structural, ecological, functional, and genetic organization of biofilms in anthropized environments and their contribution to antibiotic resistance dynamics.

    Keywords:Wastewater impacted biofilms、Biofilm matrix

    Antimicrobial resistance

    Resistome

    Metatranscriptome

    Active resistance mobilome

  • 原文来源:https://www.sciencedirect.com/science/article/pii/S0043135423008448
相关报告
  • 《用于监测废水和下游环境中抗生素耐药性的候选生物标志物》

    • 来源专题:水环境治理与保护
    • 编译者:王阳1
    • 发布时间:2023-12-06
    • Abstract Urban wastewater treatment plants (UWTPs) are essential for reducing the pollutants load and protecting water bodies. However, wastewater catchment areas and UWTPs emit continuously antibiotic resistant bacteria (ARB) and antibiotic resistance genes (ARGs), with recognized impacts on the downstream environments. Recently, the European Commission recommended to monitor antibiotic resistance in UWTPs serving more than 100 000 population equivalents. Antibiotic resistance monitoring in environmental samples can be challenging. The expected complexity of these systems can jeopardize the interpretation capacity regarding, for instance, wastewater treatment efficiency, impacts of environmental contamination, or risks due to human exposure. Simplified monitoring frameworks will be essential for the successful implementation of analytical procedures, data analysis, and data sharing. This study aimed to test a set of biomarkers representative of ARG contamination, selected based on their frequent human association and, simultaneously, rare presence in pristine environments. In addition to the 16S rRNA gene, ten potential biomarkers (intI1, sul1, ermB, ermF, aph(3′’)-Ib, qacEΔ1, uidA, mefC, tetX, and crAssphage) were monitored in DNA extracts (n = 116) from raw wastewater, activated sludge, treated wastewater, and surface water (upstream and downstream of UWTPs) samples collected in the Czech Republic, Denmark, Israel, the Netherlands, and Portugal. Each biomarker was sensitive enough to measure decreases (on average by up to 2.5 log-units gene copy/mL) from raw wastewater to surface water, with variations in the same order of magnitude as for the 16S rRNA gene. The use of the 10 biomarkers allowed the typing of water samples whose origin or quality could be predicted in a blind test. The results show that, based on appropriate biomarkers, qPCR can be used for a cost-effective and technically accessible approach to monitoring wastewater and the downstream environment. key words:wastewater、Candidate biomarkers、antibiotic resistance
  • 《单细胞拉曼结合靶向宏基因组揭示土壤活性抗生素耐药组》

    • 来源专题:转基因生物新品种培育
    • 编译者:姜丽华
    • 发布时间:2022-10-31
    •      抗生素耐药性(AMR)在人类、环境和动植物间的传播,加剧全球“One Health”的负担。土壤是“One Health”的关键环节之一,所携带的抗生素耐药性可通过食物链等方式转移至人类而带来健康威胁。土壤中栖息着地球上最丰富多样的微生物,其中活性耐药菌在驱动土壤耐药性传播中具有关键作用。然而,由于高达99%的土壤微生物不可培养,针对土壤原位活性耐药菌的探索较少,土壤中抗生素耐药性风险的研究面临挑战,阻碍了AMR环境行为及阻控策略的发展。   虽然分子生物学技术提升了我们对土壤微生物组和抗性组的认识,但基因信息仅反映耐药潜力而非耐药表型,且不能区分胞外、死亡或休眠菌的DNA,因此难以解析具体发挥作用的耐药微生物,影响AMR健康风险的精确评估。基于培养的方法仅能关注少数可培养的指示菌,忽视了土壤中大量未培养菌的贡献。因此,亟需开发合适的技术手段,从表型和基因型两个层面全面解析土壤中重要的活性耐药菌。   中国科学院院士、中国科学院城市环境研究所研究员朱永官团队在《美国国家科学院院刊》(PNAS)上,发表了题为Active antibiotic resistome in soils unraveled by single-cell isotope probing and targeted metagenomics的论文。该研究通过发展单细胞拉曼-稳定同位素标记和靶向宏基因组联用技术,示踪了土壤原位活性抗生素耐药菌,量化了其表型耐药水平,并结合单细胞靶向分选与测序揭示了土壤高活性耐药菌的抗性组和移动组。朱永官团队长期致力于环境耐药性研究,并在“One Health”的背景下提出监测和防控抗生素耐药风险的方法理论框架。   该研究利用单细胞拉曼-重水同位素标记技术,针对土壤的复杂性以及对抗生素有效性的影响,通过优化抗生素剂量、孵育时间、采谱深度,建立了准确示踪土壤活性耐药菌的单细胞方法与判别标准,利用土壤原位环境的多种已知抗性菌和敏感菌,对方法在不同土壤和不同机制抗生素的普适性和准确性进行交互验证,将方法从简单的临床耐药菌的研究拓展至包含大量未培养菌的复杂土壤环境。   利用该方法,研究在单细胞水平和表型层面克服培养限制,直接示踪和定量了土壤原位活性耐药菌的丰度和活性水平,揭示了人类活动(如农业耕种和污染排放)显著增加土壤的表型耐药水平。由于高代谢活性耐药菌对AMR环境传播的重要作用,研究进一步提出将表型耐药水平作为环境AMR风险评价的新指标,改进了长期以来AMR风险评价仅有基因信息而无耐药表型信息的境况。   该研究针对拉曼技术识别具有潜在健康风险的高度活跃土壤耐药菌,利用单细胞分选与靶向宏基因组测序技术,鉴定出多数高表型耐药菌属于之前难以研究的未培养菌以及一株新型的抗生素抗性病原菌,证明了土壤未培养菌是AMR的重要宿主。科研团队在单细胞水平破译了活性耐药菌携带的抗性基因、毒力因子、可移动遗传元件(包括质粒、插入序列和前噬菌体)。该工作将多种抗生素耐药表型和多种基因型关联,为剖析环境中大量未培养耐药菌提供了崭新的方法。   该工作发展的单细胞拉曼结合靶向宏基因组的方法,为复杂环境耐药研究提供了新手段,深化了科学家对土壤活性抗生素耐药性的认知。该方法可广泛用于其他生态系统,并对在“One Health”框架下推进环境耐药性的风险评估与制定防控策略具有重要价值。研究工作得到国家自然科学基金相关人才计划项目、创新研究群体项目、面上项目,以及中国科学院基础前沿科学研究计划“从0到1”原始创新项目的支持。