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Separating Bacteria by Capsule Amount Using a Discontinuous Density Gradient
Published on: January 7, 2019
Identification of distinct capsule types associated with Serratia marcescens infection isolates
Mark T Anderson1, Stephanie D Himpsl1, Lindsay A Mitchell1
1University of Michigan, Michigan Medicine, Department of Microbiology and Immunology, Ann Arbor, Michigan United States of America.
Abstract:
Serratia marcescens is a versatile opportunistic pathogen that can cause a variety of infections, including bacteremia. Our previous work established that the capsule polysaccharide (CPS) biosynthesis and translocation locus contributes to the survival of S. marcescens in a murine model of bacteremia and in human serum. In this study, we determined the degree of capsule genetic diversity among S. marcescens isolates. Capsule loci (KL) were extracted from >300 S. marcescens genome sequences and compared. A phylogenetic comparison of KL sequences demonstrated a substantial level of KL diversity within S. marcescens as a species and a strong delineation between KL sequences originating from infection isolates versus environmental isolates. Strains from five of the identified KL types were selected for further study and electrophoretic analysis of purified CPS indicated the production of distinct glycans. Polysaccharide composition analysis confirmed this observation and identified the constituent monosaccharides for each strain. Two predominant infection-associated clades, designated KL1 and KL2, emerged from the capsule phylogeny. Bacteremia strains from KL1 and KL2 were determined to produce ketodeoxynonulonic acid and N-acetylneuraminic acid, two sialic acids that were not found in strains from other clades. Further investigation of KL1 and KL2 sequences identified two genes, designated neuA and neuB, that were hypothesized to encode sialic acid biosynthesis functions. Disruption of neuB in a KL1 isolate resulted in the loss of sialic acid and CPS production. The absence of sialic acid and CPS production also led to increased susceptibility to internalization by a human monocytic cell line, demonstrating that S. marcescens phagocytosis resistance requires CPS. Together, these results establish the capsule genetic repertoire of S. marcescens and identify infection-associated clades with sialic acid CPS components.
Insights
Serratia marcescens capsule diversity was analyzed, revealing distinct genetic types. Infection-associated strains produce sialic acid capsule polysaccharides, crucial for resisting host cell invasion.
Area of Science:
- Microbiology
- Genetics
- Immunology
Background:
- Serratia marcescens is an opportunistic pathogen causing various infections.
- Capsule polysaccharide (CPS) is vital for S. marcescens survival in host environments.
- Previous studies highlighted the role of the CPS locus in S. marcescens virulence.
Purpose of the Study:
- To investigate the genetic diversity of capsule loci (KL) in S. marcescens.
- To identify specific KL types associated with clinical infections.
- To characterize the CPS composition of different S. marcescens strains.
Main Methods:
- Comparative phylogenetic analysis of over 300 S. marcescens genome sequences.
- Electrophoretic and compositional analysis of purified CPS.
- Genetic analysis of putative sialic acid biosynthesis genes (neuA, neuB).
Main Results:
- Significant KL diversity was observed, with distinct clades differentiating infection and environmental isolates.
- Two major infection-associated clades (KL1, KL2) produce sialic acid-containing CPS.
- Disruption of the neuB gene abolished sialic acid and CPS production, increasing bacterial susceptibility to phagocytosis.
Conclusions:
- The study establishes the capsule genetic repertoire of S. marcescens.
- Sialic acid CPS components in KL1 and KL2 strains are linked to infection.
- CPS is essential for S. marcescens resistance to host cell internalization.
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