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Updated: Aug 13, 2026

Assessment of Sarcoplasmic Reticulum Calcium Reserve and Intracellular Diastolic Calcium Removal in Isolated Ventricular Cardiomyocytes
Published on: September 18, 2017
Abnormal Ca2+ release, but normal ryanodine receptors, in canine and human heart failure
Ming Tao Jiang1, Andrew J Lokuta, Emily F Farrell
1Department of Physiology, University of Wisconsin Medical School, Madison, Wis 53706, USA.
Abstract:
Sarcoplasmic reticulum (SR) Ca2+ transport proteins, especially ryanodine receptors (RyR) and their accessory protein FKBP12.6, have been implicated as major players in the pathogenesis of heart failure (HF), but their role remain controversial. We used the tachycardia-induced canine model of HF and human failing hearts to investigate the density and major functional properties of RyRs, SERCA2a, and phospholamban (PLB), the main proteins regulating SR Ca2+ transport. Intracellular Ca2+ is likely to play a role in the contractile dysfunction of HF because the amplitude and kinetics of the [Ca2+]i transient were reduced in HF. Ca2+ uptake assays showed 44+/-8% reduction of Vmax in canine HF, and Western blots demonstrated that this reduction was due to decreased SERCA2a and PLB levels. Human HF showed a 30+/-5% reduction in SERCA2a, but PLB was unchanged. RyRs from canine and human HF displayed no major structural or functional differences compared with control. The P(o) of RyRs was the same for control and HF over the range of pCa 7 to 4. Subconductance states, which predominate in FKBP12.6-stripped RyRs, were equally frequent in control and HF channels. An antibody that recognizes phosphorylated RyRs yields equal intensity for control and HF channels. Further, phosphorylation of RyRs by PKA did not appear to change the RyR/FKBP12.6 association, suggesting minor beta-adrenergic stimulation of Ca2+ release through this mechanism. These results support a role for SR in the pathogenesis of HF, with abnormal Ca2+ uptake, more than Ca2+ release, contributing to the depressed and slow Ca2+ transient characteristic of HF.
Insights
Heart failure involves impaired sarcoplasmic reticulum (SR) calcium handling. Reduced SR calcium uptake, not release, contributes to contractile dysfunction in heart failure.
Area of Science:
- Cardiology
- Molecular Biology
- Biochemistry
Background:
- Sarcoplasmic reticulum (SR) Ca2+ transport proteins, including ryanodine receptors (RyR) and FKBP12.6, are implicated in heart failure (HF) pathogenesis.
- Their precise role in HF remains controversial, necessitating further investigation into SR protein function.
Purpose of the Study:
- To investigate the density and functional properties of key SR Ca2+ transport proteins (RyR, SERCA2a, PLB) in canine and human HF models.
- To elucidate the contribution of altered Ca2+ release versus uptake to cardiac dysfunction in HF.
Main Methods:
- Utilized a tachycardia-induced canine model of HF and human failing hearts.
- Employed Ca2+ uptake assays and Western blotting to quantify protein levels.
- Assessed RyR function through single-channel recordings and phosphorylation studies.
Main Results:
- Canine HF showed a 44% reduction in Vmax for Ca2+ uptake, linked to decreased SERCA2a and PLB levels.
- Human HF exhibited a 30% reduction in SERCA2a, with unchanged PLB.
- RyRs in HF hearts displayed no significant structural or functional differences compared to controls, including phosphorylation and FKBP12.6 association.
Conclusions:
- Abnormal Ca2+ uptake, primarily due to reduced SERCA2a and PLB, contributes significantly to the depressed Ca2+ transient in HF.
- Altered Ca2+ release through RyRs appears less critical in the pathogenesis of HF-related contractile dysfunction.
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