Evolutionary Dynamics between Phages and Bacteria as a Possible Approach for Designing Effective Phage Therapies against Antibiotic-Resistant Bacteria

Эволюционная динамика взаимодействия фагов и бактерий как возможный подход к разработке эффективной фаговой терапии инфекций, вызываемых антибиотикорезистентными бактериями
Mahadi Hasan, Juhee Ahn
2022-07-07

CRISPR-Cas systemantibiotic-resistant bacteriaantiphage defense mechanismsphage therapyphage-antibiotic trade-offs
With the increasing global threat of antibiotic resistance, there is an urgent need to develop new effective therapies to tackle antibiotic-resistant bacterial infections. Bacteriophage therapy is considered as a possible alternative over antibiotics to treat antibiotic-resistant bacteria. However, bacteria can evolve resistance towards bacteriophages through antiphage defense mechanisms, which is a major limitation of phage therapy. The antiphage mechanisms target the phage life cycle, including adsorption, the injection of DNA, synthesis, the assembly of phage particles, and the release of progeny virions. The non-specific bacterial defense mechanisms include adsorption inhibition, superinfection exclusion, restriction-modification, and abortive infection systems. The antiphage defense mechanism includes a clustered regularly interspaced short palindromic repeats (CRISPR)-CRISPR-associated (Cas) system. At the same time, phages can execute a counterstrategy against antiphage defense mechanisms. However, the antibiotic susceptibility and antibiotic resistance in bacteriophage-resistant bacteria still remain unclear in terms of evolutionary trade-offs and trade-ups between phages and bacteria. Since phage resistance has been a major barrier in phage therapy, the trade-offs can be a possible approach to design effective bacteriophage-mediated intervention strategies. Specifically, the trade-offs between phage resistance and antibiotic resistance can be used as therapeutic models for promoting antibiotic susceptibility and reducing virulence traits, known as bacteriophage steering or evolutionary medicine. Therefore, this review highlights the synergistic application of bacteriophages and antibiotics in association with the pleiotropic trade-offs of bacteriophage resistance.
1
Bacterial antiphage defenses can disrupt multiple stages of the phage life cycle, including adsorption, DNA injection, replication, assembly, and virion release.
2
Combining bacteriophages with antibiotics may provide a synergistic intervention strategy against antibiotic-resistant bacteria by leveraging pleiotropic consequences of phage resistance.
3
Phages counter bacterial defenses through evolutionary strategies, producing an ongoing antagonistic dynamic that complicates durable phage therapy.
4
The effects of evolving phage resistance on bacterial antibiotic susceptibility and resistance remain unclear, particularly regarding evolutionary trade-offs and trade-ups.
5
Trade-offs between phage resistance, antibiotic resistance, and virulence could be exploited through bacteriophage steering or evolutionary medicine to resensitize bacteria to antibiotics and reduce virulence.

Bacteriophage-resistant antibiotic-resistant bacteria and their evolutionary interactions with bacteriophages

Evolutionary trade-offs and trade-ups between phage resistance, antibiotic susceptibility/resistance, and bacterial virulence, and their use in designing synergistic phage–antibiotic therapies

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2022-07-07
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Mahadi Hasan
Juhee Ahn
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