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Cluster K mycobacteriophages: insights into the evolutionary origins of mycobacteriophage TM4
Welkin H Pope1, Christina M Ferreira, Deborah Jacobs-Sera
1Pittsburgh Bacteriophage Institute and Department of Biological Sciences, University of Pittsburgh, Pittsburgh, Pennsylvania, United States of America.
Abstract:
Five newly isolated mycobacteriophages--Angelica, CrimD, Adephagia, Anaya, and Pixie--have similar genomic architectures to mycobacteriophage TM4, a previously characterized phage that is widely used in mycobacterial genetics. The nucleotide sequence similarities warrant grouping these into Cluster K, with subdivision into three subclusters: K1, K2, and K3. Although the overall genome architectures of these phages are similar, TM4 appears to have lost at least two segments of its genome, a central region containing the integration apparatus, and a segment at the right end. This suggests that TM4 is a recent derivative of a temperate parent, resolving a long-standing conundrum about its biology, in that it was reportedly recovered from a lysogenic strain of Mycobacterium avium, but it is not capable of forming lysogens in any mycobacterial host. Like TM4, all of the Cluster K phages infect both fast- and slow-growing mycobacteria, and all of them--with the exception of TM4--form stable lysogens in both Mycobacterium smegmatis and Mycobacterium tuberculosis; immunity assays show that all five of these phages share the same immune specificity. TM4 infects these lysogens suggesting that it was either derived from a heteroimmune temperate parent or that it has acquired a virulent phenotype. We have also characterized a widely-used conditionally replicating derivative of TM4 and identified mutations conferring the temperature-sensitive phenotype. All of the Cluster K phages contain a series of well conserved 13 bp repeats associated with the translation initiation sites of a subset of the genes; approximately one half of these contain an additional sequence feature composed of imperfectly conserved 17 bp inverted repeats separated by a variable spacer. The K1 phages integrate into the host tmRNA and the Cluster K phages represent potential new tools for the genetics of M. tuberculosis and related species.
Insights
Five new mycobacteriophages, Cluster K, share genomic similarities with TM4. Unlike TM4, these phages can form lysogens, offering new tools for mycobacterial genetics research.
Area of Science:
- Microbiology
- Virology
- Genetics
Background:
- Mycobacteriophages are viruses that infect mycobacteria.
- Mycobacteriophage TM4 is a well-characterized phage utilized in mycobacterial genetics.
- Understanding phage biology is crucial for developing novel genetic tools.
Purpose of the Study:
- To characterize five newly isolated mycobacteriophages: Angelica, CrimD, Adephagia, Anaya, and Pixie.
- To compare their genomic architecture and biological properties with mycobacteriophage TM4.
- To evaluate their potential as tools for *Mycobacterium tuberculosis* genetics.
Main Methods:
- Genomic sequencing and comparative analysis.
- Phage infectivity assays on fast- and slow-growing mycobacteria.
- Lysogenization experiments in *Mycobacterium smegmatis* and *Mycobacterium tuberculosis*.
- Immunity assays to determine phage cross-immunity.
Main Results:
- The five new phages were grouped into Cluster K (subclusters K1, K2, K3) based on genomic similarity to TM4.
- TM4 appears to be a derivative of a temperate phage, having lost key genomic segments.
- Cluster K phages, unlike TM4, form stable lysogens and exhibit shared immune specificity.
- All Cluster K phages infect both fast- and slow-growing mycobacteria.
- Specific repeat sequences were identified in Cluster K phages, with K1 phages integrating into host tmRNA.
Conclusions:
- The newly isolated Cluster K mycobacteriophages represent a distinct group with biological properties differing from TM4.
- TM4's biology is clarified as a likely derivative of a temperate phage.
- Cluster K phages demonstrate potential as valuable tools for genetic manipulation of *Mycobacterium tuberculosis* and related species.
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