Subthreshold High-Frequency Electrical Field Stimulation Induces VEGF Expression in Cardiomyocytes

Author:

Rackauskas Gediminas12,Saygili Erol3,Rana Obaida R.3,Saygili Esra4,Gemein Christopher1,Laucevicius Aleksandras2,Aidietis Audrius2,Marinskis Germanas2,Serpytis Pranas2,Plisiene Jurgita5,Pauza Dainius H.6,Schauerte Patrick7

Affiliation:

1. Department of Cardiology, University Hospital, Aachen, Germany

2. Department of Cardiovascular Medicine, Vilnius University Hospital, Santariskiu Klinikos, Vilnius University, Vilnius, Lithuania

3. Division of Cardiology, Pulmonology, and Vascular Medicine, Medical Faculty, University Hospital, Dusseldorf, Germany

4. Clinic for Gastroenterology, Hepatology and Infectious Diseases, Medical Faculty, University Hospital, Dusseldorf, Germany

5. Hospital of Lithuanian University of Health Sciences Kauno Klinikos, Department of Cardiology, Kaunas, Lithuania

6. Institute of Anatomy, Lithuanian Health Science University, Kaunas, Lithuania

7. Cardiology Center Berlin, Germany

Abstract

Subthreshold electrical stimulation (SES) has been shown to induce an improvement of angiogenesis in ischemic and nonischemic skeletal muscles, mediated by increased VEGF expression. VEGF plays a key role in physiological and pathological angiogenesis. Cardiomyocytes possess the ability to synthesize and secrete VEGF. Thus, we thought to investigate the effect of SES on VEGF regulation in cultured neonatal rat ventricular myocytes (NRVMs), in the aim to reveal new techniques for therapeutic angiogenesis in ischemic heart disease. Cell cultures of NRVMs were electrically stimulated with field strengths below the myocyte depolarization threshold (0.5 V/cm with 1 ms bipolar impulse duration). Frequencies ranging from 5 Hz up to 25, 50, and 99 Hz were applied over a period of 48 h. The expression of VEGF and its receptor KDR was determined with Western blot and ELISA. To reveal the biological activity of the secreted VEGF amount, cultured human coronary artery endothelial cells (HCAECs) were treated with the cell culture supernatant of NRVMs exposed to SES. A dominant effect of SES was observed at 25 Hz. Within this particular frequency the VEGF protein amount in the cytoplasm as well as in the cell culture supernatant increased significantly. In parallel, the protein expression of the KDR receptor decreased in a significant manner. Moreover, cell culture supernatant of NRVMs exposed to SES augmented the growth of HCAECs. Cardiomyocytes respond to SES with an increase in biologically active VEGF expression that promotes cell proliferation of HCAECs. This mechanism may provide new approaches to develop therapeutic angiogenesis in the ischemic heart.

Publisher

SAGE Publications

Subject

Transplantation,Cell Biology,Biomedical Engineering

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