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Updated: Nov 1, 2025

Single-Cell Calcium Imaging for Studying the Activation of Calcium Ion Channels
Published on: December 13, 2024
Role of STIM2 and Orai proteins in regulating TRPC1 channel activity upon calcium store depletion
A Shalygin1, D Kolesnikov1, L Glushankova1
1Institute of Cytology, Russian Academy of Sciences, 4 Tikhoretsky Avenue, St. Petersburg 194064, Russia.
Abstract:
Store-operated calcium channels are the major player in calcium signaling in non-excitable cells. Store-operated calcium entry is associated with the Orai, stromal interaction molecule (STIM), and transient receptor potential canonical (TRPC) protein families. Researchers have provided conflicting data about TRPC1 channel regulation by Orai and STIM. To determine how Orai and STIM influence endogenous TRPC1 pore properties and regulation, we used single channel patch-clamp recordings. Here we showed that knockout or knockdown of Orai1 or Orai3 or overexpression of the dominant-negative mutant Orai1 E106Q did not change the conductance or selectivity of single TRPC1 channels. In addition, these TRPC1 channel properties did not depend on the amount of STIM1 and STIM2 proteins. To study STIM2-mediated regulation of TRPC1 channels, we utilized partial calcium store depletion induced by application of 10 nM thapsigargin (Tg). TRPC1 activation by endogenous STIM2 was greatly decreased in acute extracellular calcium-free experiments. STIM2 overexpression increased both the basal activity and number of silent TRPC1 channels in the plasma membrane. After calcium store depletion, overexpressed STIM2 directly activated TRPC1 in the plasma membrane even without calcium entry in acute experiments. However, this effect was abrogated by co-expression with the non-permeable Orai1 E106Q mutant protein. Taken together, our single-channel patch clamp experiments clearly demonstrated that endogenous TRPC1 forms a channel pore without involving Orai proteins. Calcium entry through Orai triggered TRPC1 channel activation in the plasma membrane, while subsequent STIM2-mediated TRPC1 activity regulation was not dependent on calcium entry.
Insights
Store-operated calcium entry involves Orai and STIM proteins. This study shows TRPC1 channels form pores independently of Orai, but Orai-mediated calcium entry activates TRPC1, with STIM2 regulating activity.
Area of Science:
- Cellular Biology
- Molecular Physiology
- Ion Channel Function
Background:
- Store-operated calcium channels (SOCCs) are crucial for calcium signaling in non-excitable cells.
- SOCCs are primarily mediated by Orai, stromal interaction molecule (STIM), and transient receptor potential canonical (TRPC) proteins.
- Conflicting data exists regarding the regulation of TRPC1 channels by Orai and STIM proteins.
Purpose of the Study:
- To investigate how Orai and STIM proteins influence the pore properties and regulation of endogenous TRPC1 channels.
- To elucidate the specific roles of Orai and STIM in TRPC1 channel function using single-channel recordings.
Main Methods:
- Single-channel patch-clamp recordings were employed to analyze TRPC1 channel properties.
- Orai1/3 knockout or knockdown, dominant-negative Orai1 E106Q mutant expression, and STIM1/2 protein levels were manipulated.
- Partial calcium store depletion was induced using thapsigargin (Tg) to study STIM2-mediated regulation.
Main Results:
- TRPC1 channel conductance and selectivity were unaffected by Orai1/3 manipulation or STIM1/2 protein levels.
- STIM2 overexpression increased basal TRPC1 channel activity and the number of silent TRPC1 channels.
- Overexpressed STIM2 directly activated plasma membrane TRPC1 after store depletion, even without calcium entry, but this was blocked by Orai1 E106Q.
Conclusions:
- Endogenous TRPC1 channels form functional pores independently of Orai proteins.
- Orai-mediated calcium entry triggers TRPC1 activation.
- STIM2 subsequently regulates TRPC1 activity in a manner independent of calcium entry.
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