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Published on: May 7, 2020
Frequency-dependent contractile strength in mice over- and underexpressing the sarco(endo)plasmic reticulum
Nitisha Hiranandani1, Sripriya Raman, Anuradha Kalyanasundaram
1Department of Physiology and Cell Biology, Ohio State University, 1645 Neil Avenue, Columbus, OH 43210-1218, USA.
Insights
Altering sarcoplasmic reticulum calcium-ATPase (SERCA) levels impacts heart muscle contraction differently based on stimulation frequency. Increased SERCA enhances force at low frequencies, while decreased SERCA impairs it at high frequencies, showing a complex relationship.
Area of Science:
- Cardiology
- Molecular Biology
- Physiology
Background:
- Decreased sarcoplasmic reticulum calcium-ATPase (SERCA) function is a hallmark of end-stage heart failure.
- Reduced SERCA pump activity is hypothesized to significantly impair cardiac function.
Purpose of the Study:
- To investigate the direct functional relationship between SERCA activity levels and cardiac contractility.
- To assess how altered SERCA levels affect myocardial contractile function in the absence of other molecular changes.
Main Methods:
- Studied contractile function in isolated mouse heart trabeculae.
- Utilized transgenic mice overexpressing SERCA (TG) and heterozygous knockout mice underexpressing SERCA2a (Het) compared to wild-type (WT) littermates.
- Assessed baseline contractility, frequency-dependent activation, and beta-adrenergic response.
Main Results:
- Overexpression of SERCA (SERCA1a mice) increased developed force at subphysiological frequencies (4-8 Hz) but not at higher physiological frequencies.
- Underexpression of SERCA (Het mice) showed slightly depressed force development only at higher stimulation frequencies (≥14 Hz).
- Beta-adrenergic response (isoproterenol) was similar between groups at 4 Hz, indicating SERCA's primary role is not in acute beta-agonist response.
Conclusions:
- The correlation between SERCA activity and cardiac contractility is complex and highly dependent on stimulation frequency.
- Generalizations about SERCA's role in heart failure require careful consideration of frequency-dependent effects.
- SERCA activity primarily influences force development at lower, subphysiological heart rates.
Abstract:
One of the prominent markers of end-stage heart failure at the molecular level is a decrease in function and/or expression of the sarcoplasmic reticulum ATPase protein [sarco(endo)plasmic reticulum calcium-ATPase, SERCA]. It has been often postulated that a decrease in SERCA pump activity can contribute in a major way to decreased cardiac function. To establish a functional relationship, we assessed how alterations in SERCA activity level affect basic contractile function in healthy myocardium devoid of other significant molecular changes. We investigated baseline contractile function, frequency-dependent activation, and beta-adrenergic response in ultrathin trabeculae isolated from hearts of mice overexpressing SERCA (transgenic, TG), underexpressing SERCA2a (heterozygous knockout, Het), and their respective wild-type (WT) littermates. At physiological temperature and frequency, compared with their respective WT littermates, SERCA1a mice displayed increased developed force at frequencies of 4-8 Hz ( approximately 90% increase at 4 Hz) and force equal to WT mice at 10-14 Hz. Force development at 4 Hz in presence of 1 muM isoproterenol was similar in TG and WT mice. In Het mice, developed force was nearly identical at the lower end of the frequency range (4-8 Hz) but slightly depressed at higher frequency (P < 0.05 at 14 Hz). In presence of 1 muM isoproterenol, developed force at 4 Hz was equal to that in WT mice. Compared with normal levels, increased SERCA activity enhanced force development only at subphysiological frequencies. A reduction in SERCA activity only showed a depression of force at the higher frequency range. Thus generalizations regarding the correlation between SERCA activity and contractility can be highly ambiguous, because this relationship is critically dependent on other factors including stimulation frequency.
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