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Published on: May 19, 2020
Development of Klebsiella pneumoniae Capsule Polysaccharide-Conjugated Vaccine Candidates Using Phage Depolymerases
Tzu-Lung Lin1, Feng-Ling Yang2, Chien-Tai Ren3
1Department of Microbiology, National Taiwan University College of Medicine, Taipei, Taiwan.
Abstract:
Klebsiella pneumoniae is an important pathogen associated with nosocomial infection and has developed increasing resistance to antibiotics such as extended-spectrum β-lactams and carbapenem. In recent years, K. pneumoniae isolates have emerged as a major cause of global community-acquired infections such as pneumonia and pyogenic liver abscess. Although serotypes K1 and K2 have been identified as the predominant capsular types associated with invasive infections, no K. pneumoniae vaccine is commercially available, probably due to immunogenicity loss in the traditional depolymerization method to obtain capsule polysaccharide (CPS) for the preparation of conjugated vaccine. In this study, we successfully retained immunogenicity by using K1 (K1-ORF34) and K2 (K2-ORF16) CPS depolymerases that were identified from phages to cleave K1 and K2 CPSs into intact structural units of oligosaccharides with intact modifications. The obtained K1 and K2 oligosaccharides were separately conjugated with CRM197 carrier protein to generate CPS-conjugated vaccines. Immunization experiments of mice showed both K1 and K2 CPS-conjugated vaccines induced anti-CPS antibodies with 128-fold and 64-fold increases of bactericidal activities, respectively, compare to mice without vaccinations. Challenge tests indicated that K1 or K2 CPS-conjugated vaccine and divalent vaccine (a mixture of K1 and K2 CPS-conjugated vaccines) protected mice from subsequent infection of K. pneumoniae by the respective capsular type. Thus, we demonstrated K1 and K2 CPS-conjugated vaccines prepared by CPS depolymerases is a promising candidate for developing vaccines against human K. pneumoniae infections.
Insights
Developing a new Klebsiella pneumoniae vaccine using phage-derived depolymerases to create intact capsular oligosaccharides. This approach successfully induced protective immunity in mice against K1 and K2 serotypes, offering a promising vaccine candidate.
Area of Science:
- Microbiology
- Vaccinology
- Bacteriology
Background:
- Klebsiella pneumoniae is a significant nosocomial pathogen with rising antibiotic resistance.
- Invasive infections like pneumonia and liver abscess are increasingly caused by K. pneumoniae.
- Existing K. pneumoniae vaccines are lacking, partly due to issues with capsule polysaccharide (CPS) immunogenicity.
Purpose of the Study:
- To develop a novel Klebsiella pneumoniae vaccine by preserving the immunogenicity of K1 and K2 capsular polysaccharides.
- To overcome limitations of traditional depolymerization methods for vaccine preparation.
Main Methods:
- Identified and utilized K1 and K2 CPS depolymerases from phages to cleave CPS into intact oligosaccharides.
- Conjugated the K1 and K2 oligosaccharides with CRM197 carrier protein to create CPS-conjugated vaccines.
- Evaluated vaccine immunogenicity and protective efficacy in mouse models.
Main Results:
- K1 and K2 CPS-conjugated vaccines induced significant increases in anti-CPS antibodies and bactericidal activity in mice.
- Vaccinated mice showed protection against K. pneumoniae infection with K1 or K2 serotypes.
- A divalent vaccine also demonstrated protective efficacy.
Conclusions:
- CPS-conjugated vaccines prepared using phage-derived depolymerases are a promising strategy for Klebsiella pneumoniae vaccine development.
- This method successfully retains immunogenicity, addressing a key challenge in K. pneumoniae vaccine design.
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