A blueprint for broadly effective bacteriophage-antibiotic cocktails against bacterial infections

噬菌体疗法 噬菌体 微生物学 抗生素耐药性 生物 抗生素 溶解循环 铜绿假单胞菌 细菌病毒 金黄色葡萄球菌 多重耐药 病毒学 细菌 病毒 大肠杆菌 遗传学 基因
作者
Minyoung Kevin Kim,Qingquan Chen,Arne Echterhof,Nina Pennetzdorfer,Robert C. McBride,Niaz Banaei,Elizabeth B. Burgener,Carlos Milla,Paul L. Bollyky
出处
期刊:Nature Communications [Nature Portfolio]
卷期号:15 (1) 被引量:8
标识
DOI:10.1038/s41467-024-53994-9
摘要

Bacteriophage (phage) therapy is a promising therapeutic modality for multidrug-resistant bacterial infections, but its application is mainly limited to personalized therapy due to the narrow host range of individual phages. While phage cocktails targeting all possible bacterial receptors could theoretically confer broad coverage, the extensive diversity of bacteria and the complexity of phage-phage interactions render this approach challenging. Here, using screening protocols for identifying "complementarity groups" of phages using non-redundant receptors, we generate effective, broad-range phage cocktails that prevent the emergence of bacterial resistance. We also discover characteristic interactions between phage complementarity groups and particular antibiotic classes, facilitating the prediction of phage-antibiotic as well as phage-phage interactions. Using this strategy, we create three phage-antibiotic cocktails, each demonstrating efficacy against ≥96% of 153 Pseudomonas aeruginosa clinical isolates, including biofilm cultures, and demonstrate comparable efficacy in an in vivo wound infection model. We similarly develop effective Staphylococcus aureus phage-antibiotic cocktails and demonstrate their utility of combined cocktails against polymicrobial (mixed P. aeruginosa/S. aureus) cultures, highlighting the broad applicability of this approach. These studies establish a blueprint for the development of effective, broad-spectrum phage-antibiotic cocktails, paving the way for off-the-shelf phage-based therapeutics to combat multidrug-resistant bacterial infections. The application of phage therapy for multidrug-resistant infections is mainly limited to personalized therapy due to the narrow host range of individual phages. Here, Kim et al. identify groups of phages that use non-redundant receptors, and present a blueprint for the development of effective, broad-spectrum phage-antibiotic combinations.
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