Temperate phage-antibiotic synergy across antibiotic classes reveals new mechanism for preventing lysogeny

Amany M Al-Anany1, Rabia Fatima1, Gayatri Nair2

  • 1Department of Biochemistry and Biomedical Sciences, McMaster University, Hamilton, Ontario, Canada.

Mbio
|May 17, 2024
PubMed

Insights

This study shows that some antibiotics can synergize with temperate phages (viruses that can lie dormant in bacteria) to kill bacteria. Certain antibiotics block phages from entering dormancy, offering new therapeutic strategies.

Area of Science:

  • Microbiology
  • Bacteriology
  • Virology

Background:

  • Temperate phages, bacterial viruses capable of dormancy (lysogeny), are crucial in microbial ecosystems.
  • The lysis-lysogeny decision governs phage-host interaction, impacting bacterial population dynamics.
  • Previous work suggested synergy between temperate phages and antibiotics, specifically ciprofloxacin, targeting this decision.

Purpose of the Study:

  • To investigate temperate phage-antibiotic synergy across diverse antibiotic classes.
  • To determine if antibiotics affect the phage lysis-lysogeny decision.
  • To explore novel therapeutic strategies by manipulating phage dormancy.

Main Methods:

  • Challenged Escherichia coli with temperate phage HK97 and 13 antibiotics from seven classes.
  • Assessed synergy by measuring bacterial killing and lysogen formation.
  • Investigated the role of the SOS response and RecA in observed synergy.

Main Results:

  • SOS-inducing antibiotics (sulfa drugs, quinolones, mitomycin C) showed expected synergy.
  • Protein synthesis inhibitors (gentamicin, kanamycin, tetracycline, azithromycin) exhibited potent, novel synergy.
  • These antibiotics reduced gentamicin's minimum inhibitory concentration eightfold and blocked entry into lysogeny.

Conclusions:

  • Antibiotics broadly induce temperate phage-antibiotic synergy, particularly those activating the SOS response.
  • Novel synergy observed with protein synthesis inhibitors, specifically blocking phage lysogeny.
  • This represents the first chemical method to block phage entry into dormancy, enabling new therapeutic approaches.

Related Concept Videos

Lysogenic Cycle of Bacteriophages00:43

Lysogenic Cycle of Bacteriophages

In contrast to the lytic cycle, phages infecting bacteria via the lysogenic cycle do not immediately kill their host cell. Instead, they combine their genome with the host genome, allowing the bacteria to replicate the phage DNA along with the bacterial genome. The incorporated copy of the phage genome is called the prophage. Some prophages can re-activate and enter the lytic cycle. This often occurs in response to a perturbation, such as DNA damage, but can also transpire in the absence of...
62.1K
Lytic Cycle of Bacteriophages01:30

Lytic Cycle of Bacteriophages

Bacteriophages, also known as phages, are specialized viruses that infect bacteria. A key characteristic of phages is their distinctive “head-tail” morphology. A phage begins the infection process (i.e., lytic cycle) by attaching to the outside of a bacterial cell. Attachment is accomplished via proteins in the phage tail that bind to specific receptor proteins on the outer surface of the bacterium. The tail injects the phage’s DNA genome into the bacterial cytoplasm. In the...
70.6K
Defense Against Bacterial Pathogens01:31

Defense Against Bacterial Pathogens

The human immune system is a complex network of cells, tissues, and organs that work together to defend the body against bacterial infections. It consists of various immune cells, each playing a specific role in the defense mechanism.
Phagocytes
Phagocytes are the frontline soldiers of the immune system. They include neutrophils and macrophages. Neutrophils are the most abundant type of white blood cell and are quickly mobilized to the site of infection. Macrophages are larger cells that patrol...
1.4K
CRISPR and crRNAs02:53

CRISPR and crRNAs

Bacteria and archaea are susceptible to viral infections just like eukaryotes; therefore, they have developed a unique adaptive immune system to protect themselves. Clustered regularly interspaced short palindromic repeats and CRISPR-associated proteins (CRISPR-Cas) are present in more than 45% of known bacteria and 90% of known archaea.
The CRISPR-Cas system stores a copy of foreign DNA in the host genome and uses it to identify the foreign DNA upon reinfection. CRISPR-Cas has three different...
17.0K
Antibiotic Selection00:57

Antibiotic Selection

Overview
53.2K