Canonical transient receptor potential TRPC7 can function as both a receptor- and store-operated channel in HEK-293
Jean-Philippe Lièvremont1, Gary St J Bird, James W Putney
1National Institute of Environmental Health Sciences, PO Box 12233, Research Triangle Park, NC 27709, USA.
Abstract:
Previous studies on the activation mechanism of canonical transient receptor potential (TRPC) channels have often produced conflicting conclusions. All seven have been shown to be activated by phospholipase C (PLC)-coupled receptors, but TRPC1, TRPC2, TRPC3, TRPC4, TRPC5, and TRPC7 have also been proposed to function as store-operated channels.(1)1Although PLC activation inevitably leads to activation of store-operated channels, in this report when we refer to PLC-activated channels, we mean those channels that are specifically activated by PLC independently of store depletion. In the case of TRPC3, the expression environment and the expression level appear to determine the mode of regulation. Evidence of a close structural relative of TRPC3, TRPC7, has been presented that this channel is activated by receptor activation or by store depletion. On the basis of previous findings for TRPC3, we reasoned that subtle differences in structure or expression conditions might account for the apparent distinct gating mechanisms of TRPC7. To reexamine the mode of activation of TRPC7, we stably and transiently transfected human embryonic kidney (HEK)-293 cells with cDNA encoding for human TRPC7. We examined the ability of a PLC-activating agonist and an intracellular Ca(2+) store-depleting agent to activate these channels. Our findings demonstrate that when transiently expressed in HEK-293 cells, TRPC7 forms channels that are activated by PLC-stimulating agonists, but not by Ca(2+) store depletion. However, when stably expressed in HEK-293 cells, TRPC7 can be activated by either Ca(2+) store depletion or PLC activation. To our knowledge, this is the first demonstration of a channel protein that can be activated by both receptor- and store-operated modes in the same cell. In addition, the results reconcile the apparently conflicting findings of other laboratories regarding TRPC7 regulation.
Insights
TRPC7 channel activation depends on expression. Transient expression shows PLC activation only, while stable expression allows activation by both PLC and store depletion, resolving conflicting research.
Area of Science:
- Molecular Biology
- Cell Physiology
- Ion Channel Function
Background:
- Canonical transient receptor potential (TRPC) channels are crucial in cellular signaling.
- Previous studies on TRPC channel activation mechanisms, particularly TRPC7, yielded conflicting results regarding their gating.
- TRPC7 has been implicated in both phospholipase C (PLC)-coupled receptor activation and store-operated calcium entry.
Purpose of the Study:
- To investigate the distinct activation mechanisms of the TRPC7 channel.
- To reconcile conflicting data on TRPC7 channel regulation by examining its response to PLC activation and store depletion.
- To determine if expression conditions influence TRPC7 channel gating.
Main Methods:
- Stable and transient transfection of human embryonic kidney (HEK)-293 cells with human TRPC7 cDNA.
- Application of a PLC-activating agonist to stimulate PLC-coupled receptors.
- Utilizing an intracellular Ca(2+) store-depleting agent to induce store depletion.
Main Results:
- Transiently expressed TRPC7 channels were activated by PLC agonists but not by store depletion.
- Stably expressed TRPC7 channels exhibited activation by both PLC agonists and Ca(2+) store depletion.
- This study presents the first evidence of a single channel protein functioning in both receptor- and store-operated modes within the same cellular environment.
Conclusions:
- TRPC7 channel activation mode is dependent on its expression context in HEK-293 cells.
- Stable expression allows TRPC7 to integrate signals from both PLC-coupled receptors and intracellular Ca(2+) stores.
- These findings resolve discrepancies in the literature regarding TRPC7 channel regulation and highlight its versatile gating properties.
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