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Staphylococcal delta toxin stimulates endogenous phospholipase A2 activity and prostaglandin synthesis in fibroblasts
Abstract:
Delta toxin, one of at least four toxins produced by pathogenic strains of the skin bacterium Staphylococcus aureus, is an amphipathic polypeptide possessing hemolytic and cytolytic activity. Delta toxin stimulates high levels of phospholipase A2 activity in 3T3 mouse fibroblasts with concomitant synthesis and release of prostaglandins. Alpha toxin, another hemolytic toxin produced by strains of S. aureus, did not stimulate phospholipase A2 or prostaglandin release in these cells. Analysis of the release of lactate dehydrogenase and beta-galactosidase (cytoplasmic and lysosomal marker enzymes, respectively) from delta-toxin-treated cells indicated that cytolytic concentrations of the toxin damage the cell-surface membrane more extensively than lysosomal membranes. During a 30 min exposure, delta toxin stimulated 3T3 cells to hydrolyze up to 32% of the lipids biosynthetically labeled by incorporation of [3H]arachidonic acid. A relatively high percentage of the free arachidonic acid formed in delta-toxin-treated 3T3 cells was converted to prostaglandins (up to 41.3% and 8.3% converted to chromatographically identifiable prostaglandins E2 and F2 alpha, respectively, in 30 min), with optimal conversion occurring at sublytic toxin concentrations. The degree of activation of phospholipase A2 in 3T3 cells by a range of concentrations of delta toxin correlates with cytotoxicity assessed by failure to exclude trypan blue dye. Analysis of the calcium dependency of the toxin-activated phospholipase A2 was consistent with a cell-surface, Ca2+-dependent enzyme. The phospholipase A2 exhibits a degree of specificity for substrate lipids containing polyunsaturated fatty acid residues which can serve as precursors for prostaglandin formation. Enzymatic activity was not inhibited by diisopropylfluorophosphate (5 mM), N-ethylmaleimide (5 mM) or p-bromophenacylbromide (0.1 mM). Delta toxin did not activate detectable phospholipase A2 in subcellular preparations containing plasma membrane.
Insights
Staphylococcus aureus delta toxin activates phospholipase A2 in mouse cells, increasing prostaglandin production. This toxin damages cell membranes, with activity correlating to cell death.
Area of Science:
- Biochemistry
- Cell Biology
- Microbiology
Background:
- Pathogenic strains of Staphylococcus aureus produce multiple toxins.
- Delta toxin is a hemolytic and cytolytic polypeptide.
- Alpha toxin, another S. aureus toxin, lacks these effects.
Purpose of the Study:
- To investigate the mechanism of delta toxin-induced cell damage.
- To determine delta toxin's effect on phospholipase A2 activity and prostaglandin synthesis.
- To characterize the nature of the delta toxin-activated enzyme.
Main Methods:
- Treatment of 3T3 mouse fibroblasts with delta toxin.
- Measurement of phospholipase A2 activity and prostaglandin production.
- Analysis of cell membrane integrity and enzyme kinetics.
Main Results:
- Delta toxin significantly increased phospholipase A2 activity and prostaglandin synthesis in 3T3 cells.
- Cytolytic concentrations of delta toxin caused extensive cell-surface membrane damage.
- The activated phospholipase A2 is cell-surface bound, calcium-dependent, and specific for polyunsaturated fatty acids.
Conclusions:
- Delta toxin's cytolytic effects are linked to its ability to activate cell-surface phospholipase A2.
- This activation leads to increased prostaglandin production, particularly at sublytic concentrations.
- The enzyme's characteristics suggest a role in delta toxin-mediated cellular damage.