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工程化 λ 噬菌体增强并针对特定菌株杀伤肠出血性大肠杆菌。

An Engineered λ Phage Enables Enhanced and Strain-Specific Killing of Enterohemorrhagic Escherichia coli.

机构信息

College of Life Science, Henan Normal Universitygrid.462338.8, Xinxiang, Henan, China.

Key Laboratory of Molecular Biophysics of the Ministry of Education, Hubei Key Laboratory of Bioinformatics and Molecular Imaging, Center for Artificial Intelligence Biology, Department of Bioinformatics and Systems Biology, College of Life Science and Technology, Huazhong University of Science and Technologygrid.33199.31, Wuhan, Hubei, China.

出版信息

Microbiol Spectr. 2022 Aug 31;10(4):e0127122. doi: 10.1128/spectrum.01271-22. Epub 2022 Jul 25.

Abstract

Bacteriophages (phages) are ideal alternatives to traditional antimicrobial agents in a world where antimicrobial resistance (AMR) is emerging and spreading at an unprecedented speed. In addition, due to their narrow host ranges, phages are also ideal tools to modulate the gut microbiota in which alterations of specific bacterial strains underlie human diseases, while dysbiosis caused by broad-spectrum antibiotics can be harmful. Here, we engineered a lambda phage (Eλ) to target enterohemorrhagic Escherichia coli (EHEC) that causes a severe, sometimes lethal intestinal infection in humans. We enhanced the killing ability of the Eλ phage by incorporating a CRISPR-Cas3 system into the wild-type λ (wtλ) and the specificity by introducing multiple EHEC-targeting CRISPR spacers while knocking out the lytic gene . experiments showed that the Eλ suppressed the growth of EHEC up to 18 h compared with only 6 h with the wtλ; at the multiplicity of infection (MOI) of 10, the Eλ killed the EHEC cells with ~100% efficiency and did not affect the growth of other laboratory- and human-gut isolated E. coli strains. In addition, the EHEC cells did not develop resistance to the Eλ. Mouse experiments further confirmed the enhanced and strain-specific killing of the Eλ to EHEC, while the overall mouse gut microbiota was not disturbed. Our methods can be used to target other genes that are responsible for antibiotic resistance genes and/or human toxins, engineer other phages, and support application of the engineered phages. Pathogenic strains of Escherichia coli are responsible for 0.8 million deaths per year and together ranked the first among all pathogenic species. Here, we obtained, for the first time, an engineered phage, Eλ, that could specifically and efficiently eliminate EHEC, one of the most common and often lethal pathogens that can spread from person to person. We verified the superior performance of the Eλ over the wild-type phage with and experiments and showed that the Eλ could suppress EHEC growth to nondetectable levels, fully rescue the EHEC-infected mice, and rescore disturbed mouse gut microbiota. Our results also indicated that the EHEC did not develop resistance to the Eλ, which has been the biggest challenge in phage therapy. We believe our methods can be used to target other pathogenic strains of E. coli and support application of the engineered phages.

摘要

噬菌体(phages)是对抗微生物药物的理想替代品,因为在微生物抗药性(AMR)以空前的速度出现和传播的时代,噬菌体具有很窄的宿主范围。此外,由于其宿主范围狭窄,噬菌体也是调节肠道微生物群的理想工具,因为特定细菌菌株的改变是人类疾病的基础,而广谱抗生素引起的生态失调可能是有害的。在这里,我们设计了一种靶向肠出血性大肠杆菌(EHEC)的 lambda 噬菌体(Eλ),这种大肠杆菌会引起人类严重的、有时甚至致命的肠道感染。我们通过将 CRISPR-Cas3 系统整合到野生型 λ(wtλ)中,增强了 Eλ 噬菌体的杀伤能力,同时通过引入多个针对 EHEC 的 CRISPR 间隔物并敲除裂解基因,提高了其特异性。实验表明,与仅使用 wtλ 相比,Eλ 抑制 EHEC 的生长长达 18 小时;在感染复数(MOI)为 10 时,Eλ 以约 100%的效率杀死 EHEC 细胞,并且不影响其他实验室和人肠道分离的大肠杆菌菌株的生长。此外,EHEC 细胞对 Eλ 没有产生抗药性。小鼠实验进一步证实了 Eλ 对 EHEC 的增强和特异性杀伤作用,而小鼠的肠道微生物群总体上没有受到干扰。我们的方法可用于针对负责抗生素耐药性基因和/或人类毒素的其他基因,设计其他噬菌体,并支持对工程噬菌体的应用。导致每年有 80 万人死亡,在所有病原体中排名第一。在这里,我们首次获得了一种能够特异性和有效地消除 EHEC 的工程噬菌体 Eλ,EHEC 是一种最常见且通常致命的病原体,可以在人与人之间传播。我们通过 和 实验验证了 Eλ 相对于野生型噬菌体的优越性能,并表明 Eλ 可以将 EHEC 的生长抑制到无法检测的水平,完全挽救 EHEC 感染的小鼠,并重新评估受干扰的小鼠肠道微生物群。我们的结果还表明,EHEC 对 Eλ 没有产生抗药性,这是噬菌体治疗中最大的挑战。我们相信我们的方法可用于针对其他致病性大肠杆菌菌株,并支持对工程噬菌体的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a520/9431524/b436a211538f/spectrum.01271-22-f001.jpg

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