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Updated: Aug 22, 2025

Phage Phenomics: Physiological Approaches to Characterize Novel Viral Proteins
Published on: June 11, 2015
Phage resistance profiling identifies new genes required for biogenesis and modification of the corynebacterial cell
Amelia C McKitterick1,2, Thomas G Bernhardt1,2
1Department of Microbiology, Harvard Medical School, Boston, United States.
Abstract:
Bacteria of the order Corynebacteriales including pathogens such as Mycobacterium tuberculosis and Corynebacterium diphtheriae are characterized by their complex, multi-layered envelope. In addition to a peptidoglycan layer, these organisms possess an additional polysaccharide layer made of arabinogalactan and an outer membrane layer composed predominantly of long-chain fatty acids called mycolic acids. This so-called mycolata envelope structure is both a potent barrier against antibiotic entry into cells and a target of several antibacterial therapeutics. A better understanding of the mechanisms underlying mycolata envelope assembly therefore promises to reveal new ways of disrupting this unique structure for the development of antibiotics and antibiotic potentiators. Because they engage with receptors on the cell surface during infection, bacteriophages have long been used as tools to uncover important aspects of host envelope assembly. However, surprisingly little is known about the interactions between Corynebacteriales phages and their hosts. We therefore made use of the phages Cog and CL31 that infect Corynebacterium glutamicum (Cglu), a model member of the Corynebacteriales, to discover host factors important for phage infection. A high-density transposon library of Cglu was challenged with these phages followed by transposon sequencing to identify resistance loci. The analysis identified an important role for mycomembrane proteins in phage infection as well as components of the arabinogalactan and mycolic acid synthesis pathways. Importantly, the approach also implicated a new gene (cgp_0396) in the process of arabinogalactan modification and identified a conserved new factor (AhfA, Cpg_0475) required for mycolic acid synthesis in Cglu.
Insights
Bacteriophages targeting Corynebacteriales revealed key host factors for their unique mycolata envelope assembly. This discovery offers new strategies for developing antibiotics against pathogens like Mycobacterium tuberculosis.
Area of Science:
- Microbiology
- Bacteriology
- Molecular Biology
Background:
- Corynebacteriales bacteria possess a complex, multi-layered mycolata envelope crucial for pathogen survival.
- This envelope acts as a barrier to antibiotics, making its assembly a target for novel therapeutics.
- Bacteriophages are valuable tools for understanding host cell envelope assembly.
Purpose of the Study:
- To identify host factors involved in the assembly of the mycolata envelope in Corynebacteriales.
- To explore the interactions between bacteriophages and their Corynebacteriales hosts.
- To uncover new targets for antibiotic development by understanding phage-host interactions.
Main Methods:
- Utilized bacteriophages Cog and CL31 infecting Corynebacterium glutamicum (Cglu).
- Generated a high-density transposon library of Cglu.
- Performed transposon sequencing to identify phage resistance loci.
Main Results:
- Identified roles for mycomembrane proteins, arabinogalactan, and mycolic acid synthesis pathways in phage infection.
- Discovered a new gene (cgp_0396) involved in arabinogalactan modification.
- Identified a conserved factor (AhfA) essential for mycolic acid synthesis.
Conclusions:
- Bacteriophage infection screens are effective for discovering host factors in Corynebacteriales envelope assembly.
- The study elucidated novel genes and factors critical for mycolata envelope biogenesis.
- Findings provide new targets for developing antibiotics and potentiators against Corynebacteriales pathogens.
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