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Biomedical subjects

L L Higgins

Publications and source records attributed to L L Higgins.

3 recordsLinked to original sources

A human endothelial cell membrane protein that binds Staphylococcus aureus in vitro.

We have investigated S. aureus adherence to human endothelial cells utilizing an in vitro model. Staphylococcus binding to confluent endothelial cell monolayers was saturable in both dose and time response studies suggesting that the binding interaction was specific. We have developed a technique, based on the pH dependent affinity of iminobiotin for streptavidin, for the isolation of an endothelial cell membrane component that binds S. aureus, in vitro. A 50-kD membrane component was isolated and purified using this approach. This component was trypsin sensitive, periodate insensitive, and did not label with [3H]glucosamine. [35S]Methionine and [125I]iodine labeling confirmed that the protein was synthesized by and expressed on the endothelial cell surface. Functional binding studies demonstrated that staphylococci, but not endothelial cells, bound to the protein when immobilized on microtiter wells. Preincubation of staphylococci with the purified protein significantly (P less than 0.001) reduced staphylococcal binding to cultured endothelial cells. The capacity of S. aureus to colonize and invade endovascular surfaces may in part be a consequence of staphylococcal interaction with this endothelial cell membrane protein.

Bacterial Adhesion

Staphylococcus aureus--human endothelial cell interactions.

Staphylococcus aureus is an invasive pathogen capable of causing life-threatening disease. A major component of this pathogen's virulence is its ability to invade normal endovascular tissue. We examined the interaction of S. aureus with cultured human endothelial cells and with human and rabbit endovascular tissue. Our ultrastructural study demonstrated a sequence of steps which occurred with staphylococcal invasion of human endothelial cells; adhesion, endocytosis, and intracellular replication. Ultimately, this resulted in cell disruption and death. Cytochemical staining of lysosomes demonstrated lysosomal fusion with both viable and killed intracellular bacteria without evidence of staphylococcal degradation. Quantitative studies using an in vitro infection assay demonstrated comparable rates of adhesion by viable and ultraviolet-killed bacteria, phagocytosis at a slower rate, and intracellular replication. The present study demonstrates an active role for the endothelial cell in the development and spread of endovascular staphylococcal infections. It also supports the use of this in vitro tissue culture system as a model for the study of bacterial invasion of the endothelium.

Animals