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通过 VADER 和 CRISPR-Cas 免疫技术降解抗生素抗性基因。

Degradation of Antibiotic Resistance Genes by VADER with CRISPR-Cas Immunity.

机构信息

Shandong Key Laboratory of Water Pollution Control and Resource Reuse, School of Environmental Science and Engineering, Shandong University, Qingdao, China.

Sino-French Research Institute for Ecology and Environment, Shandong University, Qingdao, China.

出版信息

Appl Environ Microbiol. 2023 Apr 26;89(4):e0005323. doi: 10.1128/aem.00053-23. Epub 2023 Mar 28.

Abstract

The evolution and dissemination of antibiotic resistance genes (ARGs) are prompting severe health and environmental issues. While environmental processes, e.g., biological wastewater treatment, are key barriers to prevent the spread of ARGs, they are often sources of ARGs at the same time, requiring upgraded biotechnology. Here, we present VADER, a synthetic biology system for the degradation of ARGs based on CRISPR-Cas immunity, an archaeal and bacterial immune system for eliminating invading foreign DNAs, to be implemented for wastewater treatment processes. Navigated by programmable guide RNAs, VADER targets and degrades ARGs depending on their DNA sequences, and by employing an artificial conjugation machinery, IncP, it can be delivered via conjugation. The system was evaluated by degrading plasmid-borne ARGs in Escherichia coli and further demonstrated via the elimination of ARGs on the environmentally relevant RP4 plasmid in Pseudomonas aeruginosa. Next, a prototype conjugation reactor at a 10-mL scale was devised, and 100% of the target ARG was eliminated in the transconjugants receiving VADER, giving a proof of principle for the implementation of VADER in bioprocesses. By generating a nexus of synthetic biology and environmental biotechnology, we believe that our work is not only an enterprise for tackling ARG problems but also a potential solution for managing undesired genetic materials in general in the future. Antibiotic resistance has been causing severe health problems and has led to millions of deaths in recent years. Environmental processes, especially those of the wastewater treatment sector, are an important barrier to the spread of antibiotic resistance from the pharmaceutical industry, hospitals, or civil sewage. However, they have been identified as a nonnegligible source of antibiotic resistance at the same time, as antibiotic resistance with its main cause, antibiotic resistance genes (ARGs), may accumulate in biological treatment units. Here, we transplanted the CRISPR-Cas system, an immune system via programmable DNA cleavage, to tackle the antibiotic resistance problem raised in wastewater treatment processes, and we propose a new sector specialized in ARG removal with a conjugation reactor to implement the CRISPR-Cas system. Our study provides a new angle for resolving public health issues via the implementation of synthetic biology in environmental contexts at the process level.

摘要

抗生素耐药基因 (ARGs) 的进化和传播正在引发严重的健康和环境问题。虽然环境过程(例如生物废水处理)是防止 ARGs 传播的关键障碍,但它们同时也是 ARGs 的来源,需要升级生物技术。在这里,我们提出了 VADER,这是一种基于 CRISPR-Cas 免疫的用于降解 ARGs 的合成生物学系统,CRISPR-Cas 免疫是一种古细菌和细菌免疫系统,用于消除入侵的外源 DNA,以便在废水处理过程中实施。VADER 通过可编程的指导 RNA 进行导航,根据其 DNA 序列靶向和降解 ARGs,并通过采用人工 conjugation 机制 IncP 通过 conjugation 进行传递。该系统通过降解大肠杆菌中质粒携带的 ARGs 进行了评估,并进一步通过消除铜绿假单胞菌中环境相关的 RP4 质粒上的 ARGs 进行了验证。接下来,设计了一个 10 毫升规模的原型 conjugation 反应器,在接收 VADER 的转导体中 100%消除了目标 ARG,为在生物工艺中实施 VADER 提供了原理验证。通过将合成生物学和环境生物技术相结合,我们相信我们的工作不仅是解决 ARG 问题的一项事业,而且也是未来管理一般不需要的遗传物质的潜在解决方案。 抗生素耐药性近年来导致了严重的健康问题,并导致数百万人死亡。环境过程,特别是废水处理部门的环境过程,是制药工业、医院或民用污水中抗生素耐药性传播的重要障碍。然而,与此同时,它们也被认为是抗生素耐药性的一个不可忽视的来源,因为抗生素耐药性及其主要原因抗生素耐药基因 (ARGs) 可能在生物处理单元中积累。在这里,我们移植了 CRISPR-Cas 系统,一种通过可编程 DNA 切割的免疫系统,以解决废水处理过程中出现的抗生素耐药性问题,并提出了一个专门用于 ARG 去除的新部门,该部门带有一个 conjugation 反应器来实施 CRISPR-Cas 系统。我们的研究通过在环境背景下在工艺层面实施合成生物学为解决公共卫生问题提供了一个新视角。

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