Fabrication and In Vitro Characterization of Polycaprolactone/Graphene Oxide/Collagen Nanofibers for Myocardial Repair
Creators
- 1. Univ Libre Bruxelles ULB, Ecole Polytech Bruxelles, BioMatter Unit, Ave FD Roosevelt 50,CP 165-61, B-1050 Brussels, Belgium
- 2. Xinyang Normal Univ XYNU, Coll Life Sci, Xinyang 464000, Peoples R China
- 3. Marmara Univ, Genet & Metab Dis Res & Invest Ctr, TR-34854 Istanbul, Turkiye
- 4. Marmara Univ, Fac Sci, Dept Phys, TR-34722 Istanbul, Turkiye
Description
This study is focused on fabricating tissue-engineered electrospun nanofibers that contain polycaprolactone (PCL), graphene oxide (GO), and collagen (COL) to get an alternative treatment for cardiac injuries. GO (1.5 wt%) is used to support the contraction-elongation of cardiomyocytes by improving electrical stimulation. The COL (1, 3, and 5 wt%) is the main component of the myocardial extracellular matrix have led to their frequent use in cardiac tissue engineering (CTE). The scanning electron microscope (SEM) images show the homogeneous and bead-free morphologies of the nanofibers. Adding a high amount (3% and 5%) of COL decreases the tensile strength value of 17% PCL/1.5% GO nanofiber. 3-(4,5-Dimethylthiazol-2-yl)-2,5-Diphenyltetrazolium Bromide (MTT) assay demonstrates that the COL addition increases cell viability compared to that in 17% PCL/1.5% GO nanofibers on the third day. The response of the nanofibers to alternating current (AC) signal is studied between the frequencies 40 and 105 Hz. The direct current (DC) conductivity values of the films are determined to be between 1.10-10 and 6.10-10 S m-1 at 25 degrees C. The AC conductivity values show frequency-dependent behavior. Among the PCL/GO-based electrospun nanofibers, 17% PCL/1.5% GO/5% COL nanofiber shows greater DC and AC conductivity than 17% PCL/1.5% GO nanofiber.
The present work describes producing a nanofiber with the use of polycaprolactone, graphene oxide, and collagen for cardiac tissue engineering (CTE). The effects of collagen amount on morphological, chemical, thermal, electrical, and biological properties are investigated. Overall, the obtained results indicate that the fabricated nanofibers have high biocompatibility and homogeneous morphology, and a potential to be used in CTE.image
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