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Acceleration of atherogenesis by COX-1-dependent prostanoid formation in low density lipoprotein receptor knockout
D Praticò1, C Tillmann, Z B Zhang
1Center for Experimental Therapeutics and Department of Pharmacology, University of Pennsylvania, Philadelphia, PA 19104-6160, USA. domenico@spirit.gcrc.upenn.edu
Abstract:
The cyclooxygenase (COX) product, prostacyclin (PGI(2)), inhibits platelet activation and vascular smooth-muscle cell migration and proliferation. Biochemically selective inhibition of COX-2 reduces PGI(2) biosynthesis substantially in humans. Because deletion of the PGI(2) receptor accelerates atherogenesis in the fat-fed low density lipoprotein receptor knockout mouse, we wished to determine whether selective inhibition of COX-2 would accelerate atherogenesis in this model. To address this hypothesis, we used dosing with nimesulide, which inhibited COX-2 ex vivo, depressed urinary 2,3 dinor 6-keto PGF(1alpha) by approximately 60% but had no effect on thromboxane formation by platelets, which only express COX-1. By contrast, the isoform nonspecific inhibitor, indomethacin, suppressed platelet function and thromboxane formation ex vivo and in vivo, coincident with effects on PGI(2) biosynthesis indistinguishable from nimesulide. Indomethacin reduced the extent of atherosclerosis by 55 +/- 4%, whereas nimesulide failed to increase the rate of atherogenesis. Despite their divergent effects on atherogenesis, both drugs depressed two indices of systemic inflammation, soluble intracellular adhesion molecule-1, and monocyte chemoattractant protein-1 to a similar but incomplete degree. Neither drug altered serum lipids and the marked increase in vascular expression of COX-2 during atherogenesis. Accelerated progression of atherosclerosis is unlikely during chronic intake of specific COX-2 inhibitors. Furthermore, evidence that COX-1-derived prostanoids contribute to atherogenesis suggests that controlled evaluation of the effects of nonsteroidal anti-inflammatory drugs and/or aspirin on plaque progression in humans is timely.
Insights
Selective COX-2 inhibition does not accelerate atherosclerosis. COX-1 inhibition, however, reduced atherosclerosis, suggesting a role for COX-1 in plaque progression. Further research on NSAIDs and aspirin is warranted.
Area of Science:
- Cardiovascular Biology
- Pharmacology
- Inflammation Research
Background:
- Prostacyclin (PGI(2)), a cyclooxygenase (COX) product, inhibits platelet activation and vascular cell proliferation.
- Selective COX-2 inhibition reduces PGI(2) biosynthesis.
- PGI(2) receptor deletion accelerates atherosclerosis in mice.
Purpose of the Study:
- To determine if selective COX-2 inhibition accelerates atherosclerosis in low-density lipoprotein receptor knockout mice.
- To investigate the role of COX-1 and COX-2 in atherogenesis.
Main Methods:
- Mice were treated with nimesulide (COX-2 selective inhibitor) or indomethacin (non-specific COX inhibitor).
- Effects on PGI(2) and thromboxane biosynthesis were measured.
- Atherosclerosis extent, systemic inflammation markers (sICAM-1, MCP-1), and serum lipids were assessed.
Main Results:
- Indomethacin significantly reduced atherosclerosis by 55%, while nimesulide had no effect.
- Both drugs reduced inflammation markers incompletely.
- Neither drug altered serum lipids or vascular COX-2 expression.
Conclusions:
- Accelerated atherosclerosis is unlikely with chronic selective COX-2 inhibitor use.
- COX-1-derived prostanoids may contribute to atherogenesis.
- Clinical evaluation of NSAIDs and aspirin on plaque progression is timely.