<i>Staphylococcus aureus</i> SaeR/S-regulated factors overcome human complement–mediated inhibition of aggregation to evade neutrophil killing
Abstract
Staphylococcus aureus ( S. aureus ) is a frequent culprit in implant-associated infections and employs many virulence factors to escape killing by the host immune system. The specific immune evasion strategies used by small aggregates of S. aureus on a surface, precursors to mature biofilm, are still relatively unknown. Time-lapse confocal microscopy was leveraged to quantify interactions between S. aureus aggregates and human neutrophils in vitro and identify specific mechanisms of resistance to neutrophil killing. Surface-associated wild-type S. aureus rapidly formed small biofilm aggregates when grown in human serum. Conversely, aggregation was inhibited when the SaeR/S two-component gene regulatory system was deleted. Wild-type aggregates began to show individual and population-level resistance to neutrophil killing upon reaching sizes of approximately 50 to 75 µm 2 , whereas Δ sae clusters failed to reach these sizes and were readily cleared. Aggregation of Δ sae strains was impaired by serum complement, and this inhibition required complement proteins C3 and factor B, but not C4 or C5, suggesting that this activity primarily occurs at the level of the alternative pathway. Several complement-inhibiting genes regulated by SaeR/S were identified that collectively facilitate biofilm aggregate formation in human, but not murine serum. Finally, aggregation of two related opportunistic pathogens, Staphylococcus epidermidis and Enterococcus faecalis , was inhibited by serum. These data demonstrate a function of serum complement, the ability to inhibit bacterial aggregation, that is potently blocked by S. aureus through the production of multiple complement-interfering proteins that are regulated by the SaeR/S system.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (16)
Brian A. Pettygrove
Center for Biofilm Engineering, Montana State University
Tyler K. Nygaard
Department of Microbiology & Cell Biology, Montana State University
Timothy R. Borgogna
Center for Biofilm Engineering, Montana State University
Natalia Malachowa
Laboratory of Bacteriology, Rocky Mountain Laboratories, Division of Intramural Research, National Institute of Allergy and Infectious Diseases, National Institutes of Health
Gauri Gaur
Center for Biofilm Engineering, Montana State University
Shannon E. Salo
Pathogen Molecular Genetics Section, Laboratory of Bacteriology, Division of Intramural Research, National Institute of Allergy and Infection Diseases, National Institutes of Health
Kyler B. Pallister
Department of Microbiology & Cell Biology, Montana State University
Owen Burroughs
Department of Microbiology & Cell Biology, Montana State University
Cassandra Robinson
Department of Microbiology & Cell Biology, Montana State University
Annika Gao
Department of Microbiology & Cell Biology, Montana State University
Daniel E. Sturdevant
Research Technologies Branch, Rocky Mountain Laboratories, Division of Intramural Research, National Institute of Allergy and Infectious Diseases, National Institutes of Health
Stacy Ricklefs
Research Technologies Branch, Rocky Mountain Laboratories, Division of Intramural Research, National Institute of Allergy and Infectious Diseases, National Institutes of Health
Frank R. DeLeo
Laboratory of Bacteriology, Rocky Mountain Laboratories, Division of Intramural Research, National Institute of Allergy and Infectious Diseases, National Institutes of Health
Michael Otto
Pathogen Molecular Genetics Section, Laboratory of Bacteriology, Division of Intramural Research, National Institute of Allergy and Infection Diseases, National Institutes of Health
Philip S. Stewart
Center for Biofilm Engineering, Montana State University
Jovanka M. Voyich
Department of Microbiology & Cell Biology, Montana State University