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NFAT4 movement in native smooth muscle. A role for differential Ca(2+) signaling
A S Stevenson1, M F Gomez, D C Hill-Eubanks
1Department of Pharmacology, University of Vermont, Burlington, Vermont 05405, USA.
Abstract:
The transcription factor NFAT (nuclear factor of activated T-cells) plays a central role in mediating Ca(2+)-dependent gene transcription in a variety of cell types. Sustained increases in intracellular calcium concentration ([Ca(2+)]i) are presumed to be required for NFAT dephosphorylation by the Ca(2+)/calmodulin-dependent protein calcineurin and its subsequent nuclear translocation. Here, we provide the first identification and characterization of NFAT in native smooth muscle, showing that NFAT4 is the predominant isoform detected by reverse transcriptase-polymerase chain reaction and Western blot analysis. PDGF induces NFAT4 translocation in smooth muscle, leading to an increase in NFAT transcriptional activity. NFAT4 activation by PDGF depends on Ca(2+) entry through voltage-dependent Ca(2+) channels, because its nuclear accumulation is prevented by the Ca(2+) channel blocker nisoldipine and the K(+) channel opener pinacidil. Interestingly, elevation of [Ca(2+)]i by membrane depolarization or ionomycin treatment are not effective stimuli for NFAT4 nuclear accumulation, indicating that Ca(2+) influx is necessary but not sufficient for NFAT4 activation. In contrast, membrane depolarization readily activates the Ca(2+)-dependent transcription factor CREB (cAMP-responsive element-binding protein). The calcineurin blockers CsA and FK506 also prevented the PDGF-induced NFAT4 nuclear localization. These results indicate that both the nature of the calcium signal and PDGF-induced modulation of nuclear import-export of NFAT are critical for NFAT4 activation in this tissue.
Insights
Platelet-derived growth factor (PDGF) activates the nuclear factor of activated T-cells 4 (NFAT4) in smooth muscle cells. This activation requires calcium influx but is modulated by PDGF signaling pathways.
Area of Science:
- Molecular Biology
- Cell Signaling
- Smooth Muscle Physiology
Background:
- Nuclear factor of activated T-cells (NFAT) regulates Ca(2+)-dependent gene transcription.
- NFAT activation typically requires sustained intracellular calcium increases for calcineurin-mediated dephosphorylation and nuclear translocation.
Purpose of the Study:
- To identify and characterize NFAT isoforms in native smooth muscle.
- To investigate the mechanisms of NFAT activation by platelet-derived growth factor (PDGF) in smooth muscle.
Main Methods:
- Reverse transcriptase-polymerase chain reaction (RT-PCR) and Western blot analysis to detect NFAT isoforms.
- Assessment of NFAT4 nuclear translocation and transcriptional activity in response to PDGF.
- Use of calcium channel blockers (nisoldipine), K(+) channel openers (pinacidil), and calcineurin inhibitors (CsA, FK506) to probe signaling pathways.
Main Results:
- NFAT4 is the predominant NFAT isoform in smooth muscle.
- PDGF induces NFAT4 nuclear translocation and transcriptional activity, dependent on Ca(2+) influx via voltage-dependent Ca(2+) channels.
- Elevated intracellular calcium alone (depolarization, ionomycin) is insufficient for NFAT4 activation, unlike CREB activation.
Conclusions:
- PDGF-induced NFAT4 activation in smooth muscle is a complex process requiring specific calcium influx pathways.
- Both the characteristics of the calcium signal and PDGF-mediated regulation of NFAT nuclear transport are crucial for activation.