Decoding the molecular properties of mycobacteriophage D29 Holin provides insights into Holin engineering

Varun Rakeshbhai Bavda1, Aditi Yadav1, Vikas Jain2

  • 1Microbiology and Molecular Biology Laboratory, Department of Biological Sciences, Indian Institute of Science Education and Research (IISER), Bhopal, India.

Journal of Virology
|February 25, 2021
PubMed

Insights

Holins, bacteriophage proteins that trigger cell lysis, have a C-terminal region critical for their function. Engineering this region enhances bacterial killing, offering potential for new antimicrobial therapies.

Area of Science:

  • Molecular Biology
  • Bacteriophage Biology
  • Antimicrobial Research

Background:

  • Holins are bacteriophage proteins that induce host cell lysis by forming membrane pores.
  • The C-terminal region of Holins, though conserved, is not fully understood.
  • Understanding Holin function is key to developing phage-based antimicrobials.

Purpose of the Study:

  • To characterize the molecular properties of the mycobacteriophage D29 Holin C-terminal region.
  • To investigate the role of charged residues and the coiled-coil domain in Holin activity.
  • To engineer a more toxic Holin variant for potential therapeutic applications.

Main Methods:

  • Site-directed mutagenesis to alter charged residues and the coiled-coil domain.
  • Bacterial viability assays in *Escherichia coli* and *Mycobacterium smegmatis*.
  • Oligomerization studies of wild-type and engineered Holin proteins.

Main Results:

  • The coiled-coil domain is essential for efficient bacterial cell lysis.
  • Positively charged residues in the C-terminal region are crucial for Holin toxicity.
  • An engineered Holin (HolHC) with a duplicated C-terminal region exhibited enhanced toxicity and faster bacterial killing.

Conclusions:

  • The C-terminal region of D29 Holin regulates the timing of oligomerization and pore formation, not the extent.
  • Knowledge-based engineering of Holins can create potent antibacterial agents.
  • Engineered Holins show promise for combating pathogenic bacteria, including *M. tuberculosis*.

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