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Aldosterone regulation of T-type calcium channels
Michel F Rossier1, Olivier Lesouhaitier, Emeline Perrier
1Division of Endocrinology & Diabetology, University Hospital of Geneva, 24 rue Micheli-du-Crest, CH-1211 Geneva 14, Switzerland . michel.rossier@medecine.unige.ch
Abstract:
Voltage-operated calcium channels play a crucial role in signal transduction in many excitable and non-excitable cell types. While a rapid modulation of their activity by hormone-activated kinases and/or G proteins has been recognized for a long time, a sustained control of their expression level has been only recently demonstrated. In adrenal H295R cells, for example, aldosterone treatment selectively increased low threshold T-type calcium current density without affecting L-type currents. Antagonizing the mineralocorticoid receptor (MR) with spironolactone prevented aldosterone action on T-type currents. By RT-PCR, we detected in these cells the presence of two different isoforms of L-type channels, alpha(1)C and alpha(1)D, and one isoform of T channel, alpha(1)H. A second T channel isoform (alpha(1)G) was also observed under particular culture conditions. Quantification of the specific messenger RNA by real time RT-PCR allowed us to show a 40% increase of the alpha1H messenger levels upon aldosterone treatment (alpha(1)G was insensitive), a response that was also completely prevented by spironolactone. Because T-type, but not L-type channel activity is linked to steroidogenesis, this modulation represents a positive, intracrine feed back mechanism exerted by aldosterone on its own production. Aldosterone has been also implicated in the pathogenesis and progression of ventricular hypertrophy and heart failure independently of its action on arterial blood pressure. We have observed that, in rat neonatal cardiomyocytes, aldosterone increases (by two-fold) L-type calcium current amplitude in ventricular but not in atrial cells. No significant effect of aldosterone could be detected on T-type currents, that were much smaller than L-type currents in these cells. However, aldosterone exerted opposite effects on T channel isoform expression, increasing alpha(1)H and decreasing alpha(1)G. Although the functional role of T channels is still poorly defined in ventricular cardiomyocytes, an overexpression of alpha(1)H could be partially responsible for the arrhythmias linked to hyperaldosteronism.Finally, T channels also appear to be involved in the neuroendocrine differentiation of prostate epithelial cells, a poor prognosis in prostate cancer. We have shown that the only calcium channel expressed in the prostatic LNCaP cells is the alpha(1)H isoform and that induction of cell differentiation with cAMP leads to a concomitant increase in both T-type current and alpha(1)H mRNA. In spite of the presence of MR in these cells, aldosterone only modestly increased alpha(1)H mRNA levels. A functional role for these channels was suggested by the observation that low nickel concentrations prevent neuritic process outgrowth. In conclusion, it appears that T-type calcium channel expression vary in different patho-physiological conditions and that aldosterone, in several cell types, is able to modulate this expression.
Insights
Aldosterone selectively modulates T-type calcium channel expression in adrenal cells, impacting aldosterone production. It also affects calcium channel isoforms in cardiomyocytes and prostate cells, suggesting roles in cardiovascular disease and cancer.
Area of Science:
- Cellular physiology
- Molecular endocrinology
- Ion channel biology
Background:
- Voltage-operated calcium channels are vital for cellular signaling.
- Hormonal regulation of calcium channel activity is well-established, but sustained control of expression is a newer finding.
- Aldosterone's role extends beyond blood pressure to conditions like cardiac hypertrophy and prostate cancer.
Purpose of the Study:
- To investigate the sustained effects of aldosterone on calcium channel expression in different cell types.
- To determine the specific calcium channel isoforms modulated by aldosterone.
- To explore the functional implications of these modulations in steroidogenesis, cardiac function, and prostate cancer.
Main Methods:
- Reverse transcription polymerase chain reaction (RT-PCR) and real-time RT-PCR to quantify messenger RNA (mRNA) levels of specific calcium channel isoforms.
- Electrophysiological recordings to measure calcium channel current density and amplitude.
- Use of mineralocorticoid receptor (MR) antagonist spironolactone to block aldosterone effects.
- Cell culture of H295R adrenal cells, neonatal rat cardiomyocytes, and LNCaP prostate epithelial cells.
Main Results:
- Aldosterone increased T-type calcium channel alpha(1)H mRNA and current density in H295R cells, a response blocked by spironolactone, suggesting an intracrine feedback loop.
- In cardiomyocytes, aldosterone increased L-type calcium current amplitude but had opposing effects on T-type channel isoforms, increasing alpha(1)H and decreasing alpha(1)G mRNA.
- In prostate cells, T-type channel alpha(1)H expression correlated with differentiation, with aldosterone showing a modest effect on its mRNA levels.
Conclusions:
- Aldosterone differentially modulates T-type and L-type calcium channel expression across various cell types.
- These modulations suggest a role for aldosterone in regulating steroidogenesis, potentially contributing to cardiac arrhythmias, and influencing neuroendocrine differentiation in prostate cancer.
- T-type calcium channel expression is dynamic and influenced by aldosterone in diverse pathophysiological contexts.