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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.
Abstract:
Holins are bacteriophage-encoded small transmembrane proteins that determine the phage infection cycle duration by forming non-specific holes in the host cell membrane at a specific time post-infection. Thus, Holins are also termed as "Protein clocks". Holins have one or more transmembrane domains, and a charged C-terminal region, which, although conserved among Holins, has not yet been examined in detail. Here, we characterize the molecular properties of mycobacteriophage D29 Holin C-terminal region, and investigate the significance of the charged residues and coiled coil (CC) domain present therein. We show that the CC domain is indispensable for Holin-mediated efficient bacterial cell lysis. We further demonstrate that out of the positively- and negatively-charged residues present in the C-terminal region, substituting the former, and not the latter, with serine, renders Holin non-toxic. Moreover, the basic residues present between the 59th and the 79th amino acids are the most crucial for Holin-mediated toxicity. We also constructed an engineered Holin, HolHC, by duplicating the C-terminal region. The HolHC protein shows higher toxicity in both Escherichia coli and Mycobacterium smegmatis, and causes rapid killing of both bacteria upon expression, as compared to the wild-type. A similar oligomerization property of HolHC as the wild-type Holin allows us to propose that the C-terminal region of D29 Holin determines the timing, and not the extent, of oligomerization and, thereby, hole formation. Such knowledge-based engineering of mycobacteriophage Holin will help in developing novel phage-based therapeutics to kill pathogenic mycobacteria, including M. tuberculosis ImportanceHolins are bacteriophage-encoded small membrane perforators that play an important role in determining the timing of host cell lysis towards the end of the phage infection cycle. Holin's ability to precisely time the hole formation in the cell membrane ensuing cell lysis is both interesting and intriguing. Here, we examined the molecular properties of the mycobacteriophage D29 Holin C-terminal region that harbours several polar charged residues and a coiled-coil domain. Our data allowed us to engineer Holin with an ability to rapidly kill bacteria and show higher toxicity than the wild-type protein. Due to their ability to kill host bacteria by membrane disruption, it becomes important to explore the molecular properties of Holins that allow them to function in a timely and efficient manner. Understanding these details can help us modulate Holin activity and engineer bacteriophages with superior lytic properties to kill pathogenic bacteria, curtail infections, and combat antimicrobial resistance.
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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