Surface Features of Recombinant Spider Silk Protein eADF4(κ16)‐Made Materials are Well‐Suited for Cardiac Tissue Engineering
Autor: | Jana Petzold, Katharina Zimmermann, Thomas Scheibel, Filip Touska, Tamara B. Aigner, Felix B. Engel |
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Rok vydání: | 2017 |
Předmět: |
0301 basic medicine
Materials science Fibroin Nanotechnology 02 engineering and technology law.invention Biomaterials 03 medical and health sciences Tissue engineering law Antheraea mylitta Electrochemistry Spider silk biology Araneus diadematus 021001 nanoscience & nanotechnology Condensed Matter Physics biology.organism_classification Electronic Optical and Magnetic Materials Cell biology Fibronectin 030104 developmental biology biology.protein Recombinant DNA 0210 nano-technology Function (biology) |
Zdroj: | Advanced Functional Materials. 27:1701427 |
ISSN: | 1616-3028 1616-301X |
DOI: | 10.1002/adfm.201701427 |
Popis: | Cardiovascular diseases causing high morbidity and mortality represent a major socioeconomic burden. The primary cause of impaired heart function is often the loss of cardiomyocytes. Thus, novel therapies aim at restoring the lost myocardial tissue. One promising approach is cardiac tissue engineering. Previously, it is shown that Antheraea mylitta silk protein fibroin is a suitable material for cardiac tissue engineering, however, its quality is difficult to control. To overcome this limitation, the interaction of primary rat heart cells with engineered Araneus diadematus fibroin 4 (κ16) (eADF4(κ16)) is investigated here, which is engineered based on the sequence of ADF4 by replacing the glutamic acid residue in the repetitive unit of its core domain with lysine. The data demonstrate that cardiomyocytes, fibroblasts, endothelial cells, and smooth muscle cells attach well to eADF4(κ16) films on glass coverslips which provide an engineered surface with a polycationic character. Moreover, eADF4(κ16) films have, in contrast to fibronectin films, no hypertrophic effect but allow the induction of cardiomyocyte hypertrophy. Finally, cardiomyocytes grown on eADF4(κ16) films respond to pro-proliferative factors and exhibit proper cell-to-cell communication and electric coupling. Collectively, these data demonstrate that designed recombinant eADF4(κ16)-based materials are promising materials for cardiac tissue engineering. |
Databáze: | OpenAIRE |
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