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Hindlimb unloading results in increased predisposition to cardiac arrhythmias and alters left ventricular connexin 43
Julia A Moffitt1, Matthew K Henry, Kathryn C Welliver
1Department of Physiology and Pharmacology, Des Moines University, 3200 Grand Ave., Des Moines, IA 50312, USA. moffitt.julie@gmail.com
Insights
Hindlimb unloading (HU) causes cardiovascular deconditioning, increasing arrhythmia risk. This study found HU elevates cardiac arrhythmias and increases phosphorylated connexin 43 (Cx43) expression in the left ventricle.
Area of Science:
- Cardiovascular Physiology
- Molecular Cardiology
Background:
- Hindlimb unloading (HU) is a model for cardiovascular deconditioning.
- Cardiac sympathovagal imbalance, linked to HU, elevates arrhythmia risk.
- Connexin 43 (Cx43) is crucial for cardiac electrical coupling, predominantly in the left ventricle (LV).
Purpose of the Study:
- To investigate if HU increases cardiac arrhythmia predisposition.
- To determine if HU alters LV Cx43 expression and phosphorylation.
- To test the hypothesis linking HU-induced deconditioning to Cx43 changes and arrhythmias.
Main Methods:
- Implantable telemetry for electrocardiography in HU and control rats.
- Sympathetic stress testing with isoproterenol and restraint.
- Western blot analysis of LV Cx43 expression (total and unphosphorylated).
Main Results:
- HU rats exhibited a significantly higher total arrhythmic burden during sympathetic stress.
- Ventricular arrhythmias were significantly more frequent in HU rats.
- Increased total LV Cx43 expression was observed, specifically in the phosphorylated form, with no change in unphosphorylated Cx43.
Conclusions:
- Cardiovascular deconditioning via HU increases susceptibility to cardiac arrhythmias.
- HU leads to increased expression of phosphorylated LV Cx43.
- These findings link deconditioning, Cx43 alterations, and arrhythmia risk.
Abstract:
Hindlimb unloading (HU) is a well-established animal model of cardiovascular deconditioning. Previous data indicate that HU results in cardiac sympathovagal imbalance. It is well established that cardiac sympathovagal imbalance increases the risk for developing cardiac arrhythmias. The cardiac gap junction protein connexin 43 (Cx43) is predominately expressed in the left ventricle (LV) and ensures efficient cell-to-cell electrical coupling. In the current study we wanted to test the hypothesis that HU would result in increased predisposition to cardiac arrhythmias and alter the expression and/or phosphorylation of LV-Cx43. Electrocardiographic data using implantable telemetry were obtained over a 10- to 14-day HU or casted control (CC) condition and in response to a sympathetic stressor using isoproterenol administration and brief restraint. The arrhythmic burden was calculated using a modified scoring system to quantify spontaneous and provoked arrhythmias. In addition, Western blot analysis was used to measure LV-Cx43 expression in lysates probed with antibodies directed against the total and an unphosphorylated form of Cx43 in CC and HU rats. HU resulted in a significantly greater total arrhythmic burden during the sympathetic stressor with significantly more ventricular arrhythmias occurring. In addition, there was increased expression of total LV-Cx43 observed with no difference in the expression of unphosphorylated LV-Cx43. Specifically, the increased expression of LV-Cx43 was consistent with the phosphorylated form. These data taken together indicate that cardiovascular deconditioning produced through HU results in increased predisposition to cardiac arrhythmias and increased expression of phosphorylated LV-Cx43.
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