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Published on: October 14, 2011
Construing the function of N-terminal domain of D29 mycobacteriophage LysA endolysin in phage lytic efficiency and
Rutuja Gangakhedkar1, Vikas Jain1
1Microbiology and Molecular Biology Laboratory, Department of Biological Sciences, Indian Institute of Science Education and Research (IISER), Bhopal, India.
Abstract:
Endolysins produced by bacteriophages hydrolyze host cell wall peptidoglycan to release newly assembled virions. D29 mycobacteriophage specifically infects mycobacteria including the pathogenic Mycobacterium tuberculosis. D29 encodes LysA endolysin, which hydrolyzes mycobacterial cell wall peptidoglycan. We previously showed that LysA harbors two catalytic domains (N-terminal domain [NTD] and lysozyme-like domain [LD]) and a C-terminal cell wall binding domain (CTD). While the importance of LD and CTD in mycobacteriophage biology has been examined in great detail, NTD has largely remained unexplored. Here, to address NTD's significance in D29 physiology, we generated NTD-deficient D29 (D29∆NTD) by deleting the NTD-coding region from D29 genome using CRISPY-BRED. We show that D29∆NTD is viable, but has a longer latent period, and a remarkably reduced burst size and plaque size. A large number of phages were found to be trapped in the host during the D29∆NTD-mediated cell lysis event. Such poor release of progeny phages during host cell lysis strongly suggests that NTD-deficient LysA produced by D29∆NTD, despite having catalytically-active LD, is unable to efficiently lyse host bacteria. We thus conclude that LysA NTD is essential for optimal release of progeny virions, thereby playing an extremely vital role in phage physiology and phage propagation in the environment.
Insights
The N-terminal domain (NTD) of LysA endolysin is crucial for efficient bacteriophage D29 release. Deleting NTD significantly reduces progeny phage yield and lysis efficiency in Mycobacterium tuberculosis.
Area of Science:
- Bacteriophage biology
- Microbial genetics
- Enzymology
Background:
- Bacteriophage endolysins degrade peptidoglycan for virion release.
- D29 mycobacteriophage targets Mycobacterium tuberculosis.
- LysA endolysin has N-terminal (NTD), lysozyme-like (LD), and C-terminal (CTD) domains, with NTD being understudied.
Purpose of the Study:
- To investigate the role of the LysA NTD in D29 mycobacteriophage physiology.
- To determine the impact of NTD deficiency on phage replication and lysis.
Main Methods:
- Generated an NTD-deficient D29 mutant (D29∆NTD) using CRISPR-BRED.
- Assessed D29∆NTD viability, latent period, burst size, and plaque size.
- Observed phage release and host cell lysis efficiency.
Main Results:
- D29∆NTD is viable but exhibits a prolonged latent period.
- Burst size and plaque size were significantly reduced in the D29∆NTD mutant.
- A substantial number of progeny phages were retained within host cells, indicating impaired lysis.
Conclusions:
- LysA NTD is essential for optimal progeny virion release from infected mycobacteria.
- NTD plays a vital role in D29 phage physiology and environmental propagation.
- Efficient host cell lysis by D29 requires the functional LysA NTD.
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