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Updated: May 16, 2026

Cardiac Response to β-Adrenergic Stimulation Determined by Pressure-Volume Loop Analysis
Published on: May 19, 2021
In vivo and in vitro cardiac responses to beta-adrenergic stimulation in volume-overload heart failure
Anuradha Guggilam1, Kirk R Hutchinson, T Aaron West
1Center for Cardiovascular and Pulmonary Research, The Research Institute at Nationwide Children's Hospital, Columbus, OH, USA.
Insights
Volume overload heart failure in rats impairs cardiac function and reduces beta-adrenergic response. This disconnect between in vivo and in vitro suggests altered myofilament calcium sensitivity and connexin-43 changes.
Area of Science:
- Cardiology
- Physiology
- Molecular Biology
Background:
- Volume overload (VO) leads to ventricular hypertrophy and heart failure (HF) unresponsive to beta-adrenergic agonists.
- Understanding the mechanisms of this unresponsiveness is crucial for developing effective HF treatments.
Purpose of the Study:
- To compare left ventricular (LV) and cardiomyocyte contractility and beta-adrenergic responsiveness in rats with end-stage VO heart failure (HF).
- To investigate the molecular changes underlying the observed functional deficits.
Main Methods:
- Adult male Sprague-Dawley rats underwent aortocaval fistula (ACF) or sham surgery.
- Echocardiography and hemodynamic measurements assessed cardiac function.
- Isolated LV myocytes were analyzed for contractility and beta-adrenergic response.
- Western blotting examined protein expression related to calcium handling and contractility.
Main Results:
- End-stage ACF rats exhibited decreased fractional shortening, increased LV chamber diameter, and systolic dysfunction.
- Isolated ACF myocytes showed reduced peak sarcomere shortening and altered calcium transient kinetics.
- Beta-adrenergic stimulation showed attenuated inotropic responses in vivo but not in isolated myocytes.
- Molecular changes included increased ryanodine receptor and phospholamban phosphorylation, decreased SERCA2, and altered connexin-43 expression.
Conclusions:
- A disconnect exists between in vivo and in vitro beta-adrenergic responsiveness in VO-induced HF.
- Altered myofilament calcium sensitivity and connexin-43 degradation may contribute to this disconnect.
- These findings highlight potential therapeutic targets for heart failure management.
Abstract:
Hearts in volume overload (VO) undergo progressive ventricular hypertrophy resulting in chronic heart failure that is unresponsive to β-adrenergic agonists. This study compared left ventricular (LV) and isolated cardiomyocyte contractility and β-adrenergic responsiveness in rats with end-stage VO heart failure (HF). Adult male Sprague-Dawley rats were studied 21 weeks after aortocaval fistula (ACF) or sham surgery. Echocardiography revealed decreased fractional shortening accompanied by increased LV chamber diameter and decreased eccentric dilatation index at end-stage ACF compared to sham. Hemodynamic measurements showed a decrease in the slope of end-systolic pressure-volume relationship, indicating systolic dysfunction. Isolated LV myocytes from ACF exhibited decreased peak sarcomere shortening and kinetics. Both Ca2+ transient amplitude and kinetics were increased in ACF myocytes, with no change under the integrated Ca2+ curves relating to contraction and relaxation phases. Increases in ryanodine receptor and phospholamban phosphorylation, along with a decrease in SERCA2 levels, were observed in ACF. These changes were associated with decreased expression of β-myosin heavy chain, cardiac troponin I and cardiac myosin binding protein-C. In vivo inotropic responses to β-adrenergic stimulation were attenuated in ACF. Interestingly, ACF myocytes exhibited a similar peak shortening to those of sham in response to a β-adrenergic agonist. The protein expression of the gap junction protein connexin-43 was decreased, although its phosphorylation at Ser-368 increased. These changes were associated with alterations in Src and ZO-1. In summary, these data suggest that the disconnect in β-adrenergic responsiveness between in vivo and in vitro conditions may be associated with altered myofilament Ca2+ sensitivity and connexin-43 degradation.
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