Development and characterization of novel electrically conductive PANI-PGS composites for cardiac tissue engineering applications

Qazi TH, Rai R, Dippold D, Roether J, Schubert DW, Rosellini E, Barbani N, Boccaccini AR (2014)


Publication Status: Published

Publication Type: Journal article, Original article

Publication year: 2014

Journal

Publisher: Elsevier

Book Volume: 10

Pages Range: 2434-2445

Journal Issue: 6

DOI: 10.1016/j.actbio.2014.02.023

Abstract

Cardiovascular diseases, especially myocardial infarction, are the leading cause of morbidity and mortality in the world, also resulting in huge economic burdens on national economies. A cardiac patch strategy aims at regenerating an infarcted heart by providing healthy functional cells to the injured region via a carrier substrate, and providing mechanical support, thereby preventing deleterious ventricular remodeling. In the present work, polyaniline (PANI) was doped with camphorsulfonic acid and blended with poly(glycerol-sebacate) at ratios of 10, 20 and 30 vol.% PANI content to produce electrically conductive composite cardiac patches via the solvent casting method. The composites were characterized in terms of their electrical, mechanical and physicochemical properties. The in vitro biodegradability of the composites was also evaluated. Electrical conductivity increased from 0 S cm for pure PGS to 0.018 S cm for 30 vol.% PANI-PGS samples. Moreover, the conductivities were preserved for at least 100 h post fabrication. Tensile tests revealed an improvement in the elastic modulus, tensile strength and elasticity with increasing PANI content. The degradation products caused a local drop in pH, which was higher in all composite samples compared with pure PGS, hinting at a buffering effect due to the presence of PANI. Finally, the cytocompatibility of the composites was confirmed when C2C12 cells attached and proliferated on samples with varying PANI content. Furthermore, leaching of acid dopants from the developed composites did not have any deleterious effect on the viability of C2C12 cells. Taken together, these results confirm the potential of PANI-PGS composites for use as substrates to modulate cellular behavior via electrical stimulation, and as biocompatible scaffolds for cardiac tissue engineering applications. © 2014 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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How to cite

APA:

Qazi, T.H., Rai, R., Dippold, D., Roether, J., Schubert, D.W., Rosellini, E.,... Boccaccini, A.R. (2014). Development and characterization of novel electrically conductive PANI-PGS composites for cardiac tissue engineering applications. Acta Biomaterialia, 10(6), 2434-2445. https://dx.doi.org/10.1016/j.actbio.2014.02.023

MLA:

Qazi, Taimoor H., et al. "Development and characterization of novel electrically conductive PANI-PGS composites for cardiac tissue engineering applications." Acta Biomaterialia 10.6 (2014): 2434-2445.

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