Phage-driven coevolution reveals trade-off between antibiotic and phage resistance in Salmonella anatum.

IF 5.1 Q1 ECOLOGY
ISME communications Pub Date : 2024-03-22 eCollection Date: 2024-01-01 DOI:10.1093/ismeco/ycae039
Yuanyang Zhao, Mei Shu, Ling Zhang, Chan Zhong, Ningbo Liao, Guoping Wu
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Abstract

Phage therapy faces challenges against multidrug-resistant (MDR) Salmonella due to rapid phage-resistant mutant emergence. Understanding the intricate interplay between antibiotics and phages is essential for shaping Salmonella evolution and advancing phage therapy. In this study, MDR Salmonella anatum (S. anatum) 2089b coevolved with phage JNwz02 for 30 passages (60 days), then the effect of coevolution on the trade-off between phage and antibiotic resistance in bacteria was investigated. Our results demonstrated antagonistic coevolution between bacteria and phages, transitioning from arms race dynamics (ARD) to fluctuating selection dynamics (FSD). The fitness cost of phage resistance, manifested as reduced competitiveness, was observed. Bacteria evolved phage resistance while simultaneously regaining sensitivity to amoxicillin, ampicillin, and gentamicin, influenced by phage selection pressure and bacterial competitiveness. Moreover, the impact of phage selection pressure on the trade-off between antibiotic and phage resistance was more pronounced in the ARD stage than in the FSD stage. Whole genome analysis revealed mutations in the btuB gene in evolved S. anatum strains, with a notably higher mutation frequency in the ARD stage compared to the FSD stage. Subsequent knockout experiments confirmed BtuB as a receptor for phage JNwz02, and the deletion of btuB resulted in reduced bacterial competitiveness. Additionally, the mutations identified in the phage-resistant strains were linked to multiple single nucleotide polymorphisms (SNPs) associated with membrane components. This correlation implies a potential role of these SNPs in reinstating antibiotic susceptibility. These findings significantly advance our understanding of phage-host interactions and the impact of bacterial adaptations on antibiotic resistance.

噬菌体驱动的共同进化揭示了锐毒沙门氏菌抗生素和噬菌体抗药性之间的权衡。
由于噬菌体耐药突变体的快速出现,噬菌体疗法在抗耐多药(MDR)沙门氏菌方面面临挑战。了解抗生素与噬菌体之间错综复杂的相互作用对于塑造沙门氏菌进化和推进噬菌体疗法至关重要。在这项研究中,MDR锐毒沙门氏菌(S. anatum)2089b与噬菌体JNwz02共同进化了30次(60天),然后研究了共同进化对细菌中噬菌体和抗生素耐药性之间权衡的影响。我们的研究结果表明,细菌与噬菌体之间存在拮抗性共同进化,从军备竞赛动态(ARD)过渡到波动选择动态(FSD)。我们观察到噬菌体抗性的健身成本,表现为竞争力的降低。受噬菌体选择压力和细菌竞争力的影响,细菌在进化出噬菌体抗性的同时,也恢复了对阿莫西林、氨苄西林和庆大霉素的敏感性。此外,噬菌体选择压力对抗生素和噬菌体耐药性之间权衡的影响在 ARD 阶段比在 FSD 阶段更为明显。全基因组分析发现,在进化的锐氨梭菌菌株中,btuB基因发生了突变,与FSD阶段相比,ARD阶段的突变频率明显更高。随后的基因敲除实验证实,BtuB 是噬菌体 JNwz02 的受体,删除 btuB 会降低细菌的竞争力。此外,在噬菌体抗性菌株中发现的突变与多个与膜成分相关的单核苷酸多态性(SNPs)有关。这种相关性意味着这些 SNPs 在恢复抗生素敏感性方面的潜在作用。这些发现极大地推动了我们对噬菌体-宿主相互作用以及细菌适应性对抗生素耐药性影响的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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