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Phage Host Range Expansion Through Directed Evolution on Highly Phage-Resistant Strains of Klebsiella pneumoniae
Kevin A Burke1, Tracey L Peters2, Olga A Kirillina1
1Wound Infections Department, Bacterial Diseases Branch, Center for Infectious Diseases Research, Walter Reed Army Institute of Research, Silver Spring, MD 20910, USA.
Abstract:
Multidrug-resistant (MDR) strains of Klebsiella pneumoniae present an acute threat as they continue to disseminate globally. Phage therapy has shown promise as a powerful approach to combat MDR infections, but narrow phage host ranges make development of broad acting therapeutics more challenging. The goal of this effort was to use in vitro directed evolution (the "Appelmans protocol") to isolate K. pneumoniae phages with broader host ranges for improved therapeutic cocktails. Five myophages in the genus Jiaodavirus (family Straboviridae) with complementary activity were mixed and passaged against a panel of 11 bacterial strains including a permissive host and phage-resistant clinical isolates. Following multiple rounds of training, we collected phage variants displaying altered specificity or expanded host ranges compared with parental phages when tested against a 100 strain diversity panel of K. pneumoniae. Some phage variants gained the ability to lyse previously phage-resistant strains but lost activity towards previously phage-susceptible strains, while several variants had expanded activity. Whole-genome sequencing identified mutations and recombination events impacting genes associated with host tropism including tail fiber genes that most likely underlie the observed changes in host ranges. Evolved phages with broader activity are promising candidates for improved K. pneumoniae therapeutic phage cocktails.
Insights
Directed evolution enhanced bacteriophage (phage) cocktails against multidrug-resistant Klebsiella pneumoniae. This approach yielded phage variants with broader host ranges, showing promise for combating resistant bacterial infections.
Area of Science:
- Microbiology
- Molecular Biology
- Evolutionary Biology
Background:
- Multidrug-resistant (MDR) Klebsiella pneumoniae poses a significant global health threat.
- Phage therapy is a promising alternative for treating MDR infections, but limited phage host ranges present a challenge.
Purpose of the Study:
- To enhance the host range of Klebsiella pneumoniae phages using in vitro directed evolution.
- To develop improved phage therapeutic cocktails for combating MDR K. pneumoniae.
Main Methods:
- Utilized the Appelmans protocol for in vitro directed evolution of five myophages (Jiaodavirus genus).
- Passaged mixed phages against a panel of K. pneumoniae strains, including resistant clinical isolates.
- Tested evolved phage variants against a 100-strain diversity panel to assess host range changes.
Main Results:
- Isolated phage variants with altered specificity and expanded host ranges.
- Some variants gained activity against previously resistant strains, while others showed broader efficacy.
- Whole-genome sequencing revealed mutations in tail fiber genes correlating with host range modifications.
Conclusions:
- Directed evolution successfully generated K. pneumoniae phages with broader host ranges.
- Evolved phages are promising candidates for next-generation therapeutic cocktails against MDR K. pneumoniae.
- Understanding genetic changes provides insights into phage-host interactions and therapeutic development.
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