An Enterococcus faecium Secreted Antigen, SagA, Exhibits Broad-Spectrum Binding to Extracellular Matrix Proteins and Appears Essential for E. faecium Growth
Open Access
- 1 September 2003
- journal article
- research article
- Published by American Society for Microbiology in Infection and Immunity
- Vol. 71 (9) , 5033-5041
- https://doi.org/10.1128/iai.71.9.5033-5041.2003
Abstract
A gene encoding a major secreted antigen, SagA, was identified in Enterococcus faecium by screening an E. faecium genomic expression library with sera from patients with E. faecium-associated endocarditis. Recombinant SagA protein showed broad-spectrum binding to extracellular matrix (ECM) proteins, including fibrinogen, collagen type I, collagen type IV, fibronectin, and laminin. A fibrinogen-binding protein, purified from culture supernatants of an E. faecium clinical isolate, was found to match the N-terminal sequence of the predicted SagA protein and to react with the anti-SagA antibody, confirming that it was the SagA protein; this protein appeared as an 80- to 90-kDa smear on a Western blot that was sensitive to proteinase K and resistant to periodate treatment and glycoprotein staining. When overexpressed in E. faecium and Escherichia coli, the native and recombinant SagA proteins formed stable oligomers, apparently via their C-terminal domains. The SagA protein is composed of three domains: (i) a putative coiled-coil N-terminal domain that shows homology to the N-terminal domain of Streptococcus mutans SagA protein (42% similarity), previously shown to be involved in cell wall integrity and cell shape maintenance, and to the P45 protein of Listeria monocytogenes (41% similarity); (ii) a central domain containing direct repeats; and (iii) a C-terminal domain that is similar to that found in various proteins, including P45 (50% similarity) and P60 (52% similarity) of L. monocytogenes. The P45 and P60 proteins both have cell wall hydrolase activity, and the latter has also been shown to be involved in virulence, whereas cell wall hydrolase activity was not detected for SagA protein. The E. faecium sagA gene, like the S. mutans homologue, is located in a cluster of genes encoding proteins that appear to be involved in cell wall metabolism and could not be disrupted unless it was first transcomplemented, suggesting that the sagA gene is essential for E. faecium growth and may be involved in cell wall metabolism. In conclusion, the extracelluar E. faecium SagA protein is apparently essential for growth, shows broad-spectrum binding to ECM proteins, forms oligomers, and is antigenic during infection.Keywords
This publication has 64 references indexed in Scilit:
- Evidence that the Enterococcal Polysaccharide Antigen Gene ( epa ) Cluster Is Widespread in Enterococcus faecalis and Influences Resistance to Phagocytic Killing of E. faecalisInfection and Immunity, 2002
- Analogs of Eap Protein Are Conserved and Prevalent in Clinical Staphylococcus aureus IsolatesClinical and Diagnostic Laboratory Immunology, 2001
- Extracellular Fibrinogen-binding Protein, Efb, fromStaphylococcus aureus Blocks Platelet Aggregation Due to Its Binding to the α-ChainJournal of Biological Chemistry, 2001
- Enterococcus faecalis Adhesin, Ace, Mediates Attachment to Extracellular Matrix Proteins Collagen Type IV and Laminin as well as Collagen Type IInfection and Immunity, 2000
- Analysis of a Gene Cluster ofEnterococcus faecalisInvolved in Polysaccharide BiosynthesisInfection and Immunity, 2000
- Conditional adherence ofEnterococcus faecalisto extracellular matrix proteinsFEMS Immunology & Medical Microbiology, 1998
- Interactions of bacterial adhesins with extracellular matrix and plasma proteins: pathogenic implications and therapeutic possibilitiesFEMS Immunology & Medical Microbiology, 1996
- Protein p60 Participates in Intestinal Host Invasion by Listeria monocytogenesZentralblatt für Bakteriologie, 1996
- Binding of collagen to group A, B, C, D and G streptococciFEMS Microbiology Letters, 1987
- Binding of fibronectin to the surface of group A, C, and G streptococci isolated from human infectionsEuropean Journal of Clinical Microbiology & Infectious Diseases, 1982