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Dexamethasone alters rapidly actin polymerization dynamics in human endometrial cells: evidence for nongenomic
S B Koukouritaki1, P A Theodoropoulos, A N Margioris
1Department of Biochemistry, School of Medicine, University of Crete, Heraklion, Greece.
Abstract:
Glucocorticoids, in addition to their well characterized effects on the genome, may affect cell function in a manner not involving genomic pathways. The mechanisms by which the latter is achieved are not yet clear. A possible means for this action may involve the actin cytoskeleton, since the dynamic equilibrium of actin polymerization changes rapidly following exposure to several stimuli, including hormones. The aim of the present work was to find out if glucocorticoids exert rapid, nongenomic effects on actin polymerization in Ishikawa human endometrial cells, which represent a well characterized in vitro cell model expressing functional glucocorticoid receptors. Short term exposure of the cells to the synthetic glucocorticoid dexamethasone resulted in an overall decrease of the G/total-actin ratio in a time- and dose-dependent manner. Specifically, in untreated Ishikawa cells the G/total-actin ratio was 0.48 +/- 0.01 (n = 26). It became 0.35 +/- 0.01 (n = 13, P < 0.01) following exposure to 10(-7) M dexamethasone for 15 min. This was induced by a significant decrease of the cellular G-actin level, without affecting the total actin content, indicating a rapid actin polymerization. This conclusion was fully confirmed by direct fluorimetry measurements, that showed a significant increase of the F-actin content by 44% (n = 6, P < 0.001) in cells treated with dexamethasone (10(-7)M, 15 min). The rapid dexamethasone-induced alterations of the state of actin polymerization were further supported by fluorescence microscopy. The latter studies showed that the microfilaments of cells pretreated with 10(-7)M dexamethasone for 15 min were more resistant to various concentrations of the antimicrofilament drug cytochalasin B, compared to untreated cells, implying microfilament stabilization. The action of dexamethasone on actin polymerization seems to be mediated via specific glucocorticoid binding sites, since the addition of the glucocorticoid antagonist RU486 completely abolished its effect. Moreover, it appears to act via non-transcriptional pathways, since actinomycin D did not block the dexamethasone-induced actin polymerization. In addition, cell treatment with 10(-7)M dexamethasone for 15 min fully reversed the forskolin-, but not the 8-bromo-cAMP-induced actin depolymerization. In line with these findings, the cAMP content of Ishikawa cells was decreased by 29.2% after a 15 min treatment with 10(-7)M dexamethasone (n = 4, P < 0.01). In conclusion, our results showed that dexamethasone induces rapid, time-, and dose-dependent changes in actin polymerization dynamics in Ishikawa cells. This action seems to be mediated via cAMP, involving probably nongenomic pathways. The above findings offer new perspectives for the understanding of the early cellular responses to glucocorticoids.
Insights
Glucocorticoids like dexamethasone rapidly alter actin polymerization in endometrial cells via non-genomic pathways, likely involving cyclic AMP (cAMP). This suggests a new mechanism for early cellular responses to these hormones.
Area of Science:
- Cell Biology
- Endocrinology
- Molecular Pharmacology
Background:
- Glucocorticoids exert genomic and potentially rapid, non-genomic effects on cell function.
- The actin cytoskeleton's dynamic equilibrium is sensitive to hormonal stimuli.
- Ishikawa cells are a suitable model for studying glucocorticoid receptor-mediated effects.
Purpose of the Study:
- To investigate rapid, non-genomic effects of glucocorticoids on actin polymerization.
- To determine if dexamethasone influences actin dynamics in Ishikawa human endometrial cells.
Main Methods:
- Short-term exposure of Ishikawa cells to dexamethasone.
- Measurement of G/total-actin ratio, G-actin levels, and total actin content.
- Direct fluorimetry for F-actin content, fluorescence microscopy for microfilament stability, and assessment of effects with RU486, actinomycin D, forskolin, and cAMP levels.
Main Results:
- Dexamethasone decreased the G/total-actin ratio and G-actin levels, indicating rapid actin polymerization.
- F-actin content increased significantly, and microfilaments showed enhanced stability against cytochalasin B.
- Effects were blocked by RU486 but not actinomycin D, suggesting specific, non-transcriptional pathways involving cAMP reduction.
Conclusions:
- Dexamethasone induces rapid, dose- and time-dependent changes in actin polymerization dynamics in Ishikawa cells.
- This action appears mediated by cyclic AMP (cAMP) through non-genomic pathways.
- Findings provide new insights into early cellular responses to glucocorticoids.