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Updated: Jul 11, 2026

Analysis of Cardiac Contractile Dysfunction and Ca2+ Transients in Rodent Myocytes
Published on: May 25, 2022
Triadin is a critical determinant of cellular Ca cycling and contractility in the heart
Uwe Kirchhefer1, Jan Klimas, Hideo A Baba
1Institut für Pharmakologie und Toxikologie, Universitätsklinikum Münster, Münster, Germany. kirchhef@uni-muenster.de
Abstract:
Triadin is involved in the regulation of cardiac excitation-contraction coupling. However, the extent of its contribution to the regulation of sarcoplasmic reticulum (SR) Ca release remains unclear, because overexpression of triadin in single-transgenic mice was associated with the downregulation of its homologous protein, junctin. In the present study, this problem was circumvented by cross-breeding of mice with heart-directed overexpression of triadin and junctin (JxT). This resulted in a stable approximately threefold expression of total triadin but unchanged junctin protein. Transgenic mice exhibited cardiac hypertrophy and structural abnormalities of myofibrils. Measurement of cardiac function by echocardiography and edge detection in myocytes revealed an impaired relaxation in JxT mice. The stimulation of beta-adrenergic receptors resulted in a depressed contractility and an impaired relaxation in catheterized hearts and myocytes of JxT mice. The use of a maximum stimulation frequency (5 Hz) was associated with both a lower shortening and relengthening in isolated myocytes of JxT mice. The contractile effects in JxT myocytes were paralleled by similar changes of the intracellular Ca concentration ([Ca](i)) peak amplitude and Ca transient decay kinetics at basal conditions, under administration of isoproterenol, and with high-frequency stimulation. Finally, we found a higher caffeine-induced [Ca](i) peak amplitude in JxT myocytes. Our data show that the stable expression of triadin, independent of junctin expression, resulted in cardiac hypertrophy, prolonged basal relaxation, a depressed response to beta-adrenergic agonists, and altered Ca transients. Thus the maintenance of triadin expression is essential for normal SR Ca cycling and contractile function.
Insights
Stable triadin expression in mice, independent of junctin, caused cardiac hypertrophy and impaired relaxation. This highlights triadin's essential role in regulating sarcoplasmic reticulum calcium cycling and heart function.
Area of Science:
- Cardiology
- Molecular Biology
- Physiology
Background:
- Triadin regulates cardiac excitation-contraction coupling, but its precise role in sarcoplasmic reticulum (SR) calcium release is unclear.
- Previous studies faced challenges due to junctin downregulation during triadin overexpression.
Purpose of the Study:
- To investigate the role of triadin in cardiac function independent of junctin.
- To elucidate the effects of stable triadin overexpression on SR calcium handling and contractility.
Main Methods:
- Generated double-transgenic mice (JxT) with heart-directed overexpression of both triadin and junctin.
- Assessed cardiac function using echocardiography and isolated myocyte edge detection.
- Measured intracellular calcium ([Ca](i)) transients under various stimulation conditions and caffeine challenge.
Main Results:
- JxT mice showed stable triadin overexpression without changes in junctin levels.
- Cardiac hypertrophy and myofibril abnormalities were observed in JxT mice.
- Impaired relaxation, depressed beta-adrenergic response, and altered Ca transients were evident in JxT hearts and myocytes.
Conclusions:
- Stable triadin expression, independent of junctin, leads to cardiac hypertrophy and impaired relaxation.
- Triadin is crucial for normal SR calcium cycling and cardiac contractile function.
- Altered calcium transients and reduced response to beta-adrenergic stimulation underscore triadin's regulatory importance.
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