In vivo evaluation of phage therapy against Klebsiella pneumoniae using the Galleria mellonella model and molecular characterization of a novel Drulisvirus phage species.

IF 3.7 2区 生物学 Q2 MICROBIOLOGY
Gustavo Quispe-Villegas, Gabriela I Alcántara-Lozano, Diego Cuicapuza, Raúl Laureano, Brenda Ayzanoa, Pablo Tsukayama, Jesús Tamariz
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引用次数: 0

Abstract

Multidrug-resistant (MDR) Klebsiella pneumoniae is challenging to treat with conventional antibiotic regimens, posing a threat to healthcare systems. Phage therapy presents a promising alternative treatment strategy; however, characterization of its efficacy and safety is required. Here, we describe the microbiological and molecular characterization of a novel bacteriophage with activity against MDR K. pneumoniae using a greater wax moth (Galleria mellonella) model system. A bacteriophage was isolated from hospital wastewater. Viral kinetics and phage stability were evaluated under varied pH and temperature conditions. The therapeutic efficacy of the phage was evaluated using MDR Klebsiella-infected G. mellonella larvae as an in vivo model. Phage titers and larva survival were compared in phage-treated and control groups. Genomic sequencing (Nanopore and Illumina) was used to classify the bacteriophage and identify any resistance genes or virulence factors present in its genome. Functional characterization demonstrated effective lytic activity, favorable burst size (161 PFU/cell), and an optimal MOI of 0.1. The phage demonstrated stability across a wide range of temperatures (8°C-40°C) and pH levels (4-8). Experiments using the G. mellonella model showed improved larval survival with phage treatment. The novel bacteriophage was identified as a new species within the genus Drulisvirus with no lysogeny-associated, antimicrobial resistance, or virulence genes detected. The new Drulisvirus phage identified is a promising candidate for treatment of infections caused by MDR K. pneumoniae.IMPORTANCEThe study describes a bacteriophage with potential for use in phage therapy against Klebsiella pneumoniae, one of the most clinically significant bacterial pathogens today. Microbiological and genomic characterization of the phage revealed advantageous properties for therapeutic applications, while also identifying a novel species within the Drulisvirus genus. These findings significantly contribute to our understanding of bacteriophage diversity and their utility in combating antibiotic-resistant infections. Moreover, the authors developed an in vivo preclinical model of MDR infection using Galleria mellonella larvae and successfully applied it to study the bacteriophage's therapeutic efficacy. This model offers a robust and efficient platform for preclinical testing.

基于mellonella模型的噬菌体治疗肺炎克雷伯菌的体内评价和一种新型Drulisvirus噬菌体的分子特性。
耐多药(MDR)肺炎克雷伯氏菌很难用常规抗生素治疗,对医疗系统构成威胁。噬菌体疗法是一种很有前景的替代治疗策略,但需要对其疗效和安全性进行鉴定。在此,我们利用大蜡蛾(Galleria mellonella)模型系统描述了一种新型噬菌体的微生物学和分子特性,该噬菌体对 MDR 肺炎双球菌具有活性。从医院废水中分离出一种噬菌体。在不同的 pH 值和温度条件下对病毒动力学和噬菌体稳定性进行了评估。以感染克雷伯氏菌的噬菌体幼虫为体内模型,评估了噬菌体的治疗效果。比较了噬菌体处理组和对照组的噬菌体滴度和幼虫存活率。基因组测序(Nanopore 和 Illumina)被用来对噬菌体进行分类,并确定其基因组中存在的抗性基因或毒力因子。功能特性分析表明,该噬菌体具有有效的溶菌活性、良好的爆发大小(161 PFU/细胞)和 0.1 的最佳 MOI。该噬菌体在很宽的温度范围(8°C-40°C)和 pH 值范围(4-8)内都表现出稳定性。使用 G. mellonella 模型进行的实验表明,噬菌体处理可提高幼虫存活率。经鉴定,这种新型噬菌体是Drulisvirus属中的一个新物种,没有检测到溶解相关基因、抗菌抗性基因或毒力基因。该研究描述了一种噬菌体,它有可能被用于针对肺炎克雷伯菌的噬菌体疗法,肺炎克雷伯菌是当今临床上最重要的细菌病原体之一。该噬菌体的微生物学和基因组特征揭示了其在治疗应用中的优势特性,同时还发现了 Drulisvirus 属中的一个新物种。这些发现极大地促进了我们对噬菌体多样性及其在抗生素耐药性感染中的作用的了解。此外,作者们还利用星鸦幼虫开发了一种体内 MDR 感染临床前模型,并成功地将其用于研究噬菌体的疗效。该模型为临床前测试提供了一个强大而高效的平台。
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来源期刊
Microbiology spectrum
Microbiology spectrum Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
3.20
自引率
5.40%
发文量
1800
期刊介绍: Microbiology Spectrum publishes commissioned review articles on topics in microbiology representing ten content areas: Archaea; Food Microbiology; Bacterial Genetics, Cell Biology, and Physiology; Clinical Microbiology; Environmental Microbiology and Ecology; Eukaryotic Microbes; Genomics, Computational, and Synthetic Microbiology; Immunology; Pathogenesis; and Virology. Reviews are interrelated, with each review linking to other related content. A large board of Microbiology Spectrum editors aids in the development of topics for potential reviews and in the identification of an editor, or editors, who shepherd each collection.
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