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Evaluation of Host-Pathogen Responses and Vaccine Efficacy in Mice
Published on: February 22, 2019
PRELP Enhances Host Innate Immunity against the Respiratory Tract Pathogen Moraxella catarrhalis
Guanghui Liu1, David Ermert1, Martin E Johansson2
1Division of Medical Protein Chemistry, Department of Translational Medicine, Lund University, SE-205 02 Malmö, Sweden.
Abstract:
Respiratory tract infections are one of the leading causes of mortality worldwide urging better understanding of interactions between pathogens causing these infections and the host. Here we report that an extracellular matrix component proline/arginine-rich end leucine-rich repeat protein (PRELP) is a novel antibacterial component of innate immunity. We detected the presence of PRELP in human bronchoalveolar lavage fluid and showed that PRELP can be found in alveolar fluid, resident macrophages/monocytes, myofibroblasts, and the adventitia of blood vessels in lung tissue. PRELP specifically binds respiratory tract pathogens Moraxella catarrhalis, Haemophilus influenzae, and Streptococcus pneumoniae, but not other bacterial pathogens tested. We focused our study on M. catarrhalis and found that PRELP binds the majority of clinical isolates of M. catarrhalis (n = 49) through interaction with the ubiquitous surface protein A2/A2H. M. catarrhalis usually resists complement-mediated serum killing by recruiting to its surface a complement inhibitor C4b-binding protein, which is also a ligand for PRELP. We found that PRELP competitively inhibits binding of C4b-binding protein to bacteria, which enhances membrane attack complex formation on M. catarrhalis and thus leads to increased serum sensitivity. Furthermore, PRELP enhances phagocytic killing of serum-opsonized M. catarrhalis by human neutrophils in vitro. Moreover, PRELP reduces Moraxella adherence to and invasion of human lung epithelial A549 cells. Taken together, PRELP enhances host innate immunity against M. catarrhalis through increasing complement-mediated attack, improving phagocytic killing activity of neutrophils, and preventing bacterial adherence to lung epithelial cells.
Insights
Proline/arginine-rich end leucine-rich repeat protein (PRELP) is a novel innate immunity component found in lung fluid. PRELP enhances host defense against Moraxella catarrhalis by increasing bacterial susceptibility to complement and phagocytosis.
Area of Science:
- Immunology
- Microbiology
- Pulmonology
Background:
- Respiratory tract infections are a major global cause of mortality.
- Understanding host-pathogen interactions is crucial for developing effective treatments.
- The innate immune system plays a vital role in combating respiratory pathogens.
Purpose of the Study:
- To identify novel antibacterial components of innate immunity in the respiratory tract.
- To investigate the role of proline/arginine-rich end leucine-rich repeat protein (PRELP) in innate immunity against respiratory pathogens.
- To elucidate the mechanisms by which PRELP confers protection against *Moraxella catarrhalis*.
Main Methods:
- Detection of PRELP in human bronchoalveolar lavage fluid and lung tissue.
- Assessment of PRELP binding to respiratory tract pathogens (*Moraxella catarrhalis*, *Haemophilus influenzae*, *Streptococcus pneumoniae*).
- Investigation of PRELP's effect on complement-mediated serum killing, neutrophil phagocytosis, and bacterial adherence to lung epithelial cells *in vitro*.
Main Results:
- PRELP is present in human lung fluid and tissues, acting as an antibacterial component.
- PRELP specifically binds to *Moraxella catarrhalis*, *Haemophilus influenzae*, and *Streptococcus pneumoniae*.
- PRELP enhances serum-mediated killing of *M. catarrhalis* by inhibiting complement inhibitor binding and promotes neutrophil phagocytosis.
- PRELP reduces *M. catarrhalis* adherence to and invasion of human lung epithelial cells.
Conclusions:
- PRELP is a novel component of the innate immune system in the respiratory tract.
- PRELP enhances host defense against *Moraxella catarrhalis* through multiple mechanisms.
- PRELP represents a potential therapeutic target for respiratory tract infections.
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