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Updated: May 13, 2026

Voltage and Calcium Dual Channel Optical Mapping of Cultured HL-1 Atrial Myocyte Monolayer
Published on: March 23, 2015
STIM1 participates in the contractile rhythmicity of HL-1 cells by moderating T-type Ca(2+) channel activity
Nathalie Nguyen1, Michael Biet, Elie Simard
1Department of Pharmacology, Université de Sherbrooke, Sherbrooke, QC, Canada.
Insights
Stromal interaction molecule 1 (STIM1) regulates cardiac contractility by controlling calcium levels. Loss of STIM1 disrupts cardiomyocyte function and heart rhythm by affecting calcium channels.
Area of Science:
- Cardiology
- Molecular Biology
- Cell Physiology
Background:
- Stromal interaction molecule 1 (STIM1) is vital for calcium (Ca2+) homeostasis.
- Maintaining sarcoplasmic reticulum Ca2+ levels is critical for cardiomyocyte contraction.
- STIM1's role in cardiac contractility requires further elucidation.
Purpose of the Study:
- To investigate the function of STIM1 in regulating cardiac contractility.
- To determine the molecular mechanisms by which STIM1 influences cardiomyocyte function.
Main Methods:
- Utilized HL-1 cells, a cardiomyocyte cell line.
- Employed atomic force microscopy to assess cell contractility.
- Performed Ca2+ imaging and action potential recordings.
- Conducted biotinylation and co-immunoprecipitation assays.
Main Results:
- STIM1 knockdown impaired HL-1 cell contractility and induced irregular Ca2+ oscillations.
- Loss of STIM1 resulted in early and delayed afterdepolarizations.
- STIM1 knockdown enhanced T-type voltage-dependent Ca2+ channel (T-VDCC) activity and surface expression.
- STIM1 directly interacts with and negatively regulates T-VDCCs.
Conclusions:
- STIM1 acts as a negative regulator of T-VDCCs in cardiomyocytes.
- STIM1 is essential for maintaining cardiac rhythm by preventing Ca2+ overload.
- Disruption of STIM1 function can lead to arrhythmogenic events.
Abstract:
STIM1 plays a crucial role in Ca(2+) homeostasis, particularly in replenishing the intracellular Ca(2+) store following its depletion. In cardiomyocytes, the Ca(2+) content of the sarcoplasmic reticulum must be tightly controlled to sustain contractile activity. The presence of STIM1 in cardiomyocytes suggests that it may play a role in regulating the contraction of cardiomyocytes. The aim of the present study was to determine how STIM1 participates in the regulation of cardiac contractility. Atomic force microscopy revealed that knocking down STIM1 disrupts the contractility of cardiomyocyte-derived HL-1 cells. Ca(2+) imaging also revealed that knocking down STIM1 causes irregular spontaneous Ca(2+) oscillations in HL-1 cells. Action potential recordings further showed that knocking down STIM1 induces early and delayed afterdepolarizations. Knocking down STIM1 increased the peak amplitude and current density of T-type voltage-dependent Ca(2+) channels (T-VDCC) and shifted the activation curve toward more negative membrane potentials in HL-1 cells. Biotinylation assays revealed that knocking down STIM1 increased T-VDCC surface expression and co-immunoprecipitation assays suggested that STIM1 directly regulates T-VDCC activity. Thus, STIM1 is a negative regulator of T-VDCC activity and maintains a constant cardiac rhythm by preventing a Ca(2+) overload that elicits arrhythmogenic events.
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