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STIM1 elevation in the heart results in aberrant Ca²⁺ handling and cardiomyopathy
Robert N Correll1, Sanjeewa A Goonasekera1, Jop H van Berlo2
1Department of Pediatrics, University of Cincinnati, Cincinnati Children's Hospital Medical Center, Howard Hughes Medical Institute, Cincinnati, OH, USA.
Insights
Stromal interaction molecule 1 (STIM1) overexpression in the heart causes sudden cardiac death and heart failure by disrupting calcium (Ca2+) regulation. This leads to altered STIM1-RyR2 interactions and increased Ca2+ flux, impacting cardiac function.
Area of Science:
- Cardiovascular Biology
- Cellular Physiology
- Molecular Cardiology
Background:
- Stromal interaction molecule 1 (STIM1) is a calcium (Ca2+) sensor crucial for store-operated Ca2+ entry (SOCE) in non-excitable cells.
- The role of STIM1 and SOCE in cardiac function is not well understood, despite STIM1's presence and upregulation in diseased hearts.
Purpose of the Study:
- To investigate the functional consequences of STIM1 overexpression in the heart, modeling disease-associated increases.
- To elucidate the mechanisms by which STIM1 affects cardiac myocyte Ca2+ handling and overall cardiac function.
Main Methods:
- Generation and analysis of cardiac-specific STIM1-overexpressing transgenic mice.
- Electrophysiological recordings, Ca2+ imaging, and assessment of cardiac structure and function.
- Evaluation of signaling pathways including NFAT and CaMKII activity.
Main Results:
- STIM1 transgenic mice exhibited premature sudden cardiac death and developed heart failure with hypertrophy and altered gene expression.
- Overexpression led to enhanced Ca2+ entry, altered STIM1-RyR2 co-localization, increased spontaneous Ca2+ transients, and elevated Ca2+ spark frequency.
- Increased diastolic Ca2+ and transient amplitude were observed without changes in SR Ca2+ load, alongside elevated NFAT and CaMKII activity.
Conclusions:
- STIM1 plays a critical, previously unrecognized role in cardiac physiology.
- Cardiac STIM1 overexpression disrupts sarcolemma-SR communication, leading to aberrant Ca2+ flux and SR Ca2+ leak.
- These disruptions result in severe cardiac pathology, including heart failure and sudden death.
Abstract:
Stromal interaction molecule 1 (STIM1) is a Ca(2+) sensor that partners with Orai1 to elicit Ca(2+) entry in response to endoplasmic reticulum (ER) Ca(2+) store depletion. While store-operated Ca(2+) entry (SOCE) is important for maintaining ER Ca(2+) homeostasis in non-excitable cells, it is unclear what role it plays in the heart, although STIM1 is expressed in the heart and upregulated during disease. Here we analyzed transgenic mice with STIM1 overexpression in the heart to model the known increase of this protein in response to disease. As expected, STIM1 transgenic myocytes showed enhanced Ca(2+) entry following store depletion and partial co-localization with the type 2 ryanodine receptor (RyR2) within the sarcoplasmic reticulum (SR), as well as enrichment around the sarcolemma. STIM1 transgenic mice exhibited sudden cardiac death as early as 6weeks of age, while mice surviving past 12weeks of age developed heart failure with hypertrophy, induction of the fetal gene program, histopathology and mitochondrial structural alterations, loss of ventricular functional performance and pulmonary edema. Younger, pre-symptomatic STIM1 transgenic mice exhibited enhanced pathology following pressure overload stimulation or neurohumoral agonist infusion, compared to controls. Mechanistically, cardiac myocytes isolated from STIM1 transgenic mice displayed spontaneous Ca(2+) transients that were prevented by the SOCE blocker SKF-96365, increased L-type Ca(2+) channel (LTCC) current, and enhanced Ca(2+) spark frequency. Moreover, adult cardiac myocytes from STIM1 transgenic mice showed both increased diastolic Ca(2+) and maximal transient amplitude but no increase in total SR Ca(2+) load. Associated with this enhanced Ca(2+) profile was an increase in cardiac nuclear factor of activated T-cells (NFAT) and Ca(2+)/calmodulin-dependent kinase II (CaMKII) activity. We conclude that STIM1 has an unexpected function in the heart where it alters communication between the sarcolemma and SR resulting in greater Ca(2+) flux and a leaky SR compartment.
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