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Published on: May 19, 2017
Differential regulation of Ca2+ release-activated Ca2+ influx by heterotrimeric G proteins
1Department of Physiology, University of Texas Southwestern Medical Center, Dallas 75235, USA.
Abstract:
The least understood aspect of the agonist-induced Ca2+ signal is the activation and regulation of the Ca2+ release-activated Ca2+ influx (CRAC) across the plasma membrane. To explore the possible role of heterotrimeric G proteins in the various regulatory mechanisms of CRAC, continuous renal epithelial cell lines stably expressing alpha 13 and the constitutively active alpha qQ209L were isolated and used to measure CRAC activity by the Mn2+ quench technique. Release of intracellular Ca2+ by agonist stimulation or thapsigargin was required for activation of CRAC in all cells. Although the size of the internal stores was similar in all cells, CRAC was 2-3-fold higher in alpha 13- and alpha qQ209L-expressing cells. However, the channel was differentially regulated in the two cell types. Incubation at low [Ca2+]i, inhibition of the NOS pathway, or inhibition of tyrosine kinase inhibited CRAC activity in alpha 13 but not alpha qQ209L cells. Treatment with okadaic acid prevented inhibition of the channel by low [Ca2+]i and the protein kinase inhibitors in alpha 13 cells. These results suggest that expression of alpha qQ209L dominantly activates CRAC by stabilizing a phosphorylated state, whereas expression of alpha 13 makes CRAC activation completely dependent on phosphorylation by several kinases. G proteins may also modulate CRAC activity independently of the phosphorylation/dephosphorylation state of the pathway to increase maximal CRAC activity. Furthermore, our results suggest a general mechanism for regulation of CRAC that depends on coupling of receptors to specific G proteins.
Insights
Heterotrimeric G proteins modulate calcium release-activated calcium (CRAC) channel activity. Alpha qQ209L stabilizes CRAC phosphorylation, while alpha 13 requires kinase-dependent activation.
Area of Science:
- Cellular signaling and ion transport.
- Molecular mechanisms of calcium homeostasis.
Background:
- Calcium signaling is crucial for cellular functions.
- Regulation of calcium release-activated calcium (CRAC) channels remains poorly understood.
- The role of heterotrimeric G proteins in CRAC regulation is unclear.
Purpose of the Study:
- To investigate the role of heterotrimeric G proteins (alpha 13 and alpha qQ209L) in regulating CRAC channel activity.
- To elucidate the differential mechanisms of CRAC regulation by specific G protein alpha subunits.
Main Methods:
- Utilized continuous renal epithelial cell lines stably expressing alpha 13 or constitutively active alpha qQ209L.
- Measured CRAC activity using the Mn2+ quench technique.
- Manipulated intracellular calcium levels and inhibited signaling pathways (NOS, tyrosine kinase).
Main Results:
- CRAC activity was 2-3 fold higher in cells expressing alpha 13 and alpha qQ209L.
- CRAC regulation differed: alpha 13-dependent CRAC was sensitive to low [Ca2+]i, NOS, and tyrosine kinase inhibition, unlike alpha qQ209L-dependent CRAC.
- Okadaic acid treatment reversed inhibition in alpha 13 cells, suggesting a role for phosphorylation.
- G proteins can modulate CRAC activity independently of phosphorylation state.
Conclusions:
- Alpha qQ209L expression leads to dominant CRAC activation via stabilized phosphorylation.
- Alpha 13 expression renders CRAC activation dependent on kinase-mediated phosphorylation.
- G protein coupling to receptors provides a general mechanism for CRAC regulation.
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