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Intravascular glucocorticoid metabolism during inflammation and injury in mice
Anna R Dover1, Patrick W F Hadoke, Linsay J Macdonald
1Clinical Lecturer, Endocrinology Unit, Centre for Cardiovascular Science, The Queen's Medical Research Institute, Edinburgh EH16 4TJ, Scotland, UK. Anna.Dover@ed.ac.uk
Abstract:
11beta-hydroxysteroid dehydrogenases (11betaHSDs) catalyze interconversion of 11-hydroxy-glucocorticoids with inactive 11-keto metabolites. In blood vessel walls, loss of 11betaHSD1 is thought to reduce local glucocorticoid concentrations, reducing the progression of atheroma and enhancing angiogenesis. Conversely, on the basis that 11betaHSD1 is up-regulated approximately 5-fold by inflammatory cytokines in cultured human vascular smooth muscle cells, it has been proposed that increased 11betaHSD1 during vascular inflammation provides negative feedback suppression of inflammation. We aimed to determine whether inflammation and injury selectively up-regulate 11betaHSD1 reductase activity in vitro and in vivo in intact vascular tissue in mice. In isolated mouse aortae and femoral arteries, reductase activity (converting 11-dehydrocorticosterone to corticosterone) was approximately 10-fold higher than dehydrogenase activity and was entirely accounted for by 11betaHSD1 because it was abolished in vessels from 11betaHSD1(-/-) mice. Although 11betaHSD1 activity was up-regulated by proinflammatory cytokines in cultured murine aortic smooth muscle cells, no such effect was evident in intact aortic rings in vitro. Moreover, after systemic inflammation induced by ip lipopolysaccharide injection, there was only a modest (18%) increase in 11beta-reductase activity in the aorta and no increase in the perfused hindlimb. Furthermore, in femoral arteries in which neointimal proliferation was induced by intraluminal injury, there was no change in basal 11betaHSD1 activity or the sensitivity of 11betaHSD1 to cytokine up-regulation. We conclude that increased generation of glucocorticoids by 11betaHSD1 in the murine vessel wall is unlikely to contribute to feedback regulation of inflammation.
Insights
Increased 11beta-hydroxysteroid dehydrogenase 1 (11betaHSD1) activity in blood vessels is unlikely to regulate inflammation. Studies show inflammation and injury do not significantly alter 11betaHSD1 activity in mouse arteries.
Area of Science:
- Biochemistry
- Endocrinology
- Vascular Biology
Background:
- 11beta-hydroxysteroid dehydrogenases (11betaHSDs) interconvert active and inactive glucocorticoids.
- 11betaHSD1 is implicated in vascular disease, with proposed roles in atheroma progression and inflammation.
- Contradictory evidence exists regarding 11betaHSD1's response to inflammation in vascular cells.
Purpose of the Study:
- To investigate if inflammation and injury up-regulate 11betaHSD1 reductase activity in mouse vascular tissue.
- To determine the role of 11betaHSD1 in feedback suppression of vascular inflammation.
Main Methods:
- Assessed 11betaHSD1 reductase activity in isolated mouse aortae and femoral arteries.
- Utilized 11betaHSD1 knockout mice to confirm enzyme specificity.
- Examined 11betaHSD1 activity in cultured vascular smooth muscle cells and intact aortic rings.
- Induced systemic inflammation with lipopolysaccharide and mechanical injury in mouse models.
Main Results:
- Basal 11betaHSD1 reductase activity was significantly higher than dehydrogenase activity in mouse arteries.
- Proinflammatory cytokines did not increase 11betaHSD1 activity in intact aortic rings, unlike in cultured cells.
- Systemic inflammation caused only a modest increase in aortic 11betaHSD1 activity.
- Vascular injury did not alter basal 11betaHSD1 activity or its response to cytokines.
Conclusions:
- 11beta-hydroxysteroid dehydrogenase 1 activity in the murine vessel wall is not significantly increased by inflammation or injury.
- The proposed mechanism of 11betaHSD1-mediated feedback suppression of vascular inflammation is unlikely to be physiologically relevant in mice.
