益生菌大肠杆菌Nissle 1917的精确工程与初始编辑。

IF 3.7 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Applied and Environmental Microbiology Pub Date : 2025-02-19 Epub Date: 2025-01-31 DOI:10.1128/aem.00031-25
Pei-Ru Chen, Ying Wei, Xin Li, Hai-Yan Yu, Shu-Guang Wang, Xian-Zheng Yuan, Peng-Fei Xia
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引用次数: 0

摘要

CRISPR-Cas系统正在利用工程益生菌作为下一代诊断和治疗手段,改变精准医疗。为了促进人类健康和治疗疾病,工程益生菌需要最大限度的多功能性,以实现非自然功能,同时最大限度地减少不希望的基因组干扰。在这里,我们提出了一种为益生菌大肠杆菌Nissle 1917量身定制的精简的引物编辑方法,仅使用必要的遗传模块,包括化脓性链球菌的Cas9 nickase,密码子优化的逆转录酶和引物编辑指导RNA,以及具有较长诱导时间的优化工作流程。结果,我们在每一轮实验中都实现了所有类型的启动编辑,DNA删除、插入和替代的效率分别为25.0%、52.0%和66.7%。对脱靶效应的综合评估显示,意外突变显著减少,特别是与两种不同的碱基编辑方法相比。利用引体编辑系统,我们插入了一个独特的DNA序列来对编辑过的菌株进行编码,并建立了一个无抗生素抗性基因的平台,以实现非自然功能。我们的主要编辑策略提出了一种CRISPR- cas系统,可以在任何具有基本CRISPR设置的实验室中轻松实施,为工程益生菌的未来创新铺平了道路。基因编辑的最终目标之一是在生物体的特定位点上引入设计好的DNA变异,同时将基因组中的意外干扰降到最低。实现这一目标对于创造工程益生菌作为促进人类健康和治疗疾病的活诊断和治疗手段尤为重要。在这一努力中,我们报告了一种用于益生菌大肠杆菌尼索尔1917的精确工程定制的初始编辑系统。有了这样一个系统,我们开发了一个条形码系统,用于跟踪工程菌株,我们建立了一个无抗生素耐药基因的平台,以实现非自然功能。我们不仅为益生菌提供了一种强大的基因编辑方法,而且还为创新CRISPR-Cas系统的发展提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Precision engineering of the probiotic <i>Escherichia coli</i> Nissle 1917 with prime editing.

Precision engineering of the probiotic <i>Escherichia coli</i> Nissle 1917 with prime editing.

Precision engineering of the probiotic <i>Escherichia coli</i> Nissle 1917 with prime editing.

Precision engineering of the probiotic Escherichia coli Nissle 1917 with prime editing.

CRISPR-Cas systems are transforming precision medicine with engineered probiotics as next-generation diagnostics and therapeutics. To promote human health and treat disease, engineering probiotic bacteria demands maximal versatility to enable non-natural functionalities while minimizing undesired genomic interferences. Here, we present a streamlined prime editing approach tailored for probiotic Escherichia coli Nissle 1917 utilizing only essential genetic modules, including Cas9 nickase from Streptococcus pyogenes, a codon-optimized reverse transcriptase, and a prime editing guide RNA, and an optimized workflow with longer induction. As a result, we achieved all types of prime editing in every individual round of experiments with efficiencies of 25.0%, 52.0%, and 66.7% for DNA deletion, insertion, and substitution, respectively. A comprehensive evaluation of off-target effects revealed a significant reduction in unintended mutations, particularly in comparison to two different base editing methods. Leveraging the prime editing system, we inserted a unique DNA sequence to barcode the edited strain and established an antibiotic-resistance-gene-free platform to enable non-natural functionalities. Our prime editing strategy presents a CRISPR-Cas system that can be readily implemented in any laboratories with the basic CRISPR setups, paving the way for future innovations in engineered probiotics.IMPORTANCEOne ultimate goal of gene editing is to introduce designed DNA variations at specific loci in living organisms with minimal unintended interferences in the genome. Achieving this goal is especially critical for creating engineered probiotics as living diagnostics and therapeutics to promote human health and treat diseases. In this endeavor, we report a customized prime editing system for precision engineering of probiotic Escherichia coli Nissle 1917. With such a system, we developed a barcoding system for tracking engineered strains, and we built an antibiotic-resistance-gene-free platform to enable non-natural functionalities. We provide not only a powerful gene editing approach for probiotic bacteria but also new insights into the advancement of innovative CRISPR-Cas systems.

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来源期刊
Applied and Environmental Microbiology
Applied and Environmental Microbiology 生物-生物工程与应用微生物
CiteScore
7.70
自引率
2.30%
发文量
730
审稿时长
1.9 months
期刊介绍: Applied and Environmental Microbiology (AEM) publishes papers that make significant contributions to (a) applied microbiology, including biotechnology, protein engineering, bioremediation, and food microbiology, (b) microbial ecology, including environmental, organismic, and genomic microbiology, and (c) interdisciplinary microbiology, including invertebrate microbiology, plant microbiology, aquatic microbiology, and geomicrobiology.
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