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Published on: October 16, 2018
Identification of a Kingella kingae factor H binding protein that is the major determinant of serum resistance
Kevin A Hernandez1,2, Eric A Porsch2, Vanessa L Muñoz2
1University of Pennsylvania Perelman School of Medicine, Philadelphia, Pennsylvania, United States of America.
Insights
Kingella kingae uses a protein called KK02920 to bind human factor H, which helps it survive in the blood and cause invasive disease in children. This protein is key to the bacterium's resistance to the immune system.
Area of Science:
- Microbiology
- Immunology
- Bacterial Pathogenesis
Background:
- Kingella kingae is a growing cause of invasive infections in young children.
- The bacterium colonizes the throat, enters the bloodstream, and causes diseases like osteomyelitis and septic arthritis.
- While capsules help K. kingae evade immune responses, other factors are involved in its survival.
Purpose of the Study:
- To investigate additional mechanisms of serum resistance in Kingella kingae.
- To identify factors contributing to K. kingae's virulence and survival in the bloodstream.
- To understand how K. kingae evades complement-mediated killing.
Main Methods:
- Experiments using human factor H (FH) and rat serum to test K. kingae survival.
- In vivo studies using a juvenile rat infection model.
- Far-western blot analysis to identify FH-binding proteins.
Main Results:
- Kingella kingae binds human factor H (FH) to resist complement-mediated killing.
- A 37-kDa outer membrane protein, KK02920, was identified as the FH-binding protein.
- KK02920 is essential for serum resistance and virulence in vivo, with its absence abrogating survival.
- KK02920 is present in invasive and carrier isolates, enabling FH utilization for complement resistance.
Conclusions:
- Factor H binding via KK02920 is a critical mechanism for Kingella kingae serum resistance.
- KK02920 is the primary determinant of serum resistance in this encapsulated bacterium.
- This study highlights the role of complement-regulator binding proteins in bacterial pathogenesis.
Abstract:
Kingella kingae is a Gram-negative bacterium that has emerged as a leading cause of invasive disease in children between 6 months and 4 years of age. K. kingae initiates infection by colonizing the oropharynx, then breaches the oropharyngeal epithelium, enters the bloodstream, and disseminates to distant sites to cause disease, including osteomyelitis, septic arthritis, and endocarditis. To survive in the bloodstream and disseminate to sites of invasive disease, K. kingae produces a polysaccharide capsule and an exopolysaccharide that inhibit opsonin deposition and mediate resistance to complement-mediated serum killing. However, elimination of these extracellular polysaccharides only partially reduces K. kingae survival in human serum, suggesting that additional factors contribute to serum resistance. In this study, we found that K. kingae binds human factor H (FH), a negative regulator of the alternative complement pathway. In experiments using rat serum as a source of complement, we observed that K. kingae was able to utilize human FH to resist killing. Introduction of exogenous human FH into the juvenile rat infection model of K. kingae disease enhanced virulence in vivo, demonstrating the importance of FH binding in the pathogenesis of disease. Far-western blot analysis identified a 37-kDa outer membrane protein designated KK02920 that was responsible for FH binding and enhanced virulence in vivo in the presence of human FH. Loss of KK02920 virtually abrogated serum resistance, indicating that KK02920 is the major determinant of K. kingae serum resistance. Additional analysis revealed the presence of KK02920 across a collection of serum-resistant invasive and carrier K. kingae isolates, all of which can utilize human FH to resist complement-mediated killing. This work demonstrates the importance of a complement-regulator binding protein as a major mechanism of serum resistance in an encapsulated organism.
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