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Gene Transfer for Ischemic Heart Failure in a Preclinical Model
Published on: May 15, 2011
Parvalbumin gene transfer corrects diastolic dysfunction in diseased cardiac myocytes
P A Wahr1, D E Michele, J M Metzger
1Department of Physiology, University of Michigan, Ann Arbor, MI 48109, USA. pwahr@umich.edu
Insights
Gene transfer of parvalbumin enhances calcium sequestration and relaxation in heart cells. This approach shows promise for treating diastolic dysfunction in heart failure.
Area of Science:
- Cardiology
- Molecular Biology
- Biochemistry
Background:
- Diastolic dysfunction in heart failure is linked to prolonged relaxation.
- This prolonged relaxation stems from reduced intracellular calcium (Ca2+) sequestration rates.
- Currently, no effective treatments exist for this specific issue.
Purpose of the Study:
- To investigate if expressing parvalbumin in cardiac myocytes can improve Ca2+ sequestration and relaxation.
- To test parvalbumin as a potential therapeutic agent for diastolic dysfunction.
Main Methods:
- Utilized gene transfer to introduce parvalbumin into isolated adult cardiac myocytes.
- Assessed Ca2+ sequestration rates and mechanical relaxation in modified myocytes.
Main Results:
- Parvalbumin expression significantly accelerated Ca2+ sequestration and relaxation in normal cardiac myocytes.
- In diseased cardiac myocytes modeling human diastolic dysfunction, parvalbumin fully restored relaxation rates.
Conclusions:
- Parvalbumin gene transfer effectively enhances cardiac myocyte relaxation by improving Ca2+ handling.
- This strategy presents a novel therapeutic potential for treating diastolic dysfunction in heart failure.
Abstract:
Heart failure frequently involves diastolic dysfunction that is characterized by a prolonged relaxation. This prolonged relaxation is typically the result of a decreased rate of intracellular Ca(2+) sequestration. No effective treatment for this decreased Ca(2+) sequestration rate currently exists. As an approach to possibly correct diastolic dysfunction, we hypothesized that expression of the Ca(2+) binding protein parvalbumin in cardiac myocytes would lead to increased rates of Ca(2+) sequestration and mechanical relaxation. Parvalbumin, which is normally absent in cardiac tissue, is known to act as a soluble relaxing factor in fast skeletal muscle fibers by acting as a delayed Ca(2+) sink. As a test of the hypothesis, gene transfer was used to express parvalbumin in isolated adult cardiac myocytes. We report here that expression of parvalbumin dramatically increases the rate of Ca(2+) sequestration and the relaxation rate in normal cardiac myocytes. Importantly, parvalbumin fully restored the relaxation rate in diseased cardiac myocytes isolated from an animal model of human diastolic dysfunction. These findings indicate that parvalbumin gene transfer offers unique potential as a possible direct treatment for diastolic dysfunction in failing hearts.
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