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Updated: Mar 24, 2026

In vitro Assessment of Myocardial Protection following Hypothermia-Preconditioning in a Human Cardiac Myocytes Model
Published on: October 27, 2020
Hypothermia/rewarming disrupts excitation-contraction coupling in cardiomyocytes
Niccole Schaible1, Young Soo Han1, Thuy Hoang1
1Department of Physiology and Biomedical Engineering, Mayo Clinic, Rochester, Minnesota; and.
Insights
Hypothermia/rewarming impairs heart cell function by disrupting calcium handling and reducing muscle sensitivity. This cardiac dysfunction is linked to increased phosphorylation of cardiac troponin I.
Area of Science:
- Cardiology
- Cellular Physiology
- Biochemistry
Background:
- Hypothermia/rewarming (H/R) poses significant risks to myocardial function.
- The intracellular mechanisms driving H/R-induced cardiac dysfunction are not fully understood.
Purpose of the Study:
- To investigate how H/R affects excitation-contraction coupling in cardiomyocytes.
- To determine if increased cardiac troponin I (cTnI) phosphorylation mediates H/R-induced reductions in myofilament Ca(2+) sensitivity.
Main Methods:
- Isolated rat cardiomyocytes were subjected to H/R (15°C for 2 h, then 35°C) or normothermic control conditions.
- Simultaneous measurements of cytosolic Ca(2+) ([Ca(2+)]cyto) transients and contractile responses (sarcomere shortening) were performed.
- Western blot analysis was used to assess cTnI phosphorylation levels.
Main Results:
- H/R led to contractile dysfunction, characterized by reduced velocity and extent of sarcomere shortening.
- During hypothermia, basal [Ca(2+)]cyto increased, and Ca(2+) transient duration was prolonged.
- H/R significantly increased cTnI phosphorylation and decreased myofilament Ca(2+) sensitivity.
Conclusions:
- H/R disrupts cardiomyocyte excitation-contraction coupling.
- Increased cTnI phosphorylation is a key mechanism underlying H/R-induced reduction in Ca(2+) sensitivity and cardiac dysfunction.
Abstract:
Hypothermia/rewarming (H/R) is poorly tolerated by the myocardium; however, the underlying intracellular basis of H/R-induced cardiac dysfunction remains elusive. We hypothesized that in cardiomyocytes, H/R disrupts excitation-contraction coupling by reducing myofilament Ca(2+) sensitivity due to an increase in cardiac troponin I (cTnI) phosphorylation. To test this hypothesis, isolated rat cardiomyocytes (13-15 cells from 6 rats per group) were electrically stimulated to evoke both cytosolic Ca(2+) ([Ca(2+)]cyto) and contractile (sarcomere shortening) responses that were simultaneously measured using an IonOptix system. Cardiomyocytes were divided into two groups: 1) those exposed to hypothermia (15°C for 2 h) followed by rewarming (35°C; H/R); or 2) time-matched normothermic (35°C) controls (CTL). Contractile dysfunction after H/R was indicated by reduced velocity and extent of sarcomere length (SL) shortening compared with time-matched controls. Throughout hypothermia, basal [Ca(2+)]cyto increased and the duration of evoked [Ca(2+)]cyto transients was prolonged. Phase-loop plots of [Ca(2+)]cyto vs. contraction were shifted rightward in cardiomyocytes during hypothermia compared with CTL, indicating a decrease in Ca(2+) sensitivity. Using Western blot, we found that H/R increases cTnI phosphorylation. These results support our overall hypothesis and suggest that H/R disrupts excitation-contraction coupling of cardiomyocytes due to increased cTnI phosphorylation and reduced Ca(2+) sensitivity.
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