Electrically Triggered Quercetin Release from Polycaprolactone/Bismuth Ferrite Microfibrous Scaffold for Skeletal Muscle Tissue

Author:

Ayran Musa12ORCID,Karabulut Hatice12ORCID,Deniz Kudret12ORCID,Akcanli Gamze1ORCID,Ulag Songul12,Croitoru Alexa-Maria345ORCID,Tihăuan Bianca-Maria367ORCID,Sahin Ali8ORCID,Ficai Denisa459,Gunduz Oguzhan12ORCID,Ficai Anton34510ORCID

Affiliation:

1. Center for Nanotechnology & Biomaterials Application and Research (NBUAM), Marmara University, Istanbul 34722, Turkey

2. Institute of Pure and Applied Sciences, Department of Metallurgical and Materials Engineering, Faculty of Technology, Marmara University, Istanbul 34722, Turkey

3. Department of Science and Engineering of Oxide Materials and Nanomaterials, Faculty of Applied Chemistry and Materials Science, University Politehnica of Bucharest, 060042 Bucharest, Romania

4. National Centre for Micro- and Nanomaterials, University Politehnica of Bucharest, 060042 Bucharest, Romania

5. National Centre for Food Safety, University Politehnica of Bucharest, 060042 Bucharest, Romania

6. Research Institute of the University of Bucharest—ICUB, 050567 Bucharest, Romania

7. Research & Development for Advanced Biotechnologies and Medical Devices, SC Sanimed International Impex SRL, 087040 Calugareni, Romania

8. Department of Biochemistry, Faculty of Medicine, Marmara University, Istanbul 34722, Turkey

9. Department of Inorganic Chemistry, Physical Chemistry and Electrochemistry, Faculty of Applied Chemistry and Materials Science, University Politehnica of Bucharest, 060042 Bucharest, Romania

10. Academy of Romanian Scientists, Ilfov St. 3, 050044 Bucharest, Romania

Abstract

Skeletal muscle tissue engineering presents a promising avenue to address the limitations pertaining to the regenerative potential of stem cells in case of injury or damage. The objective of this research was to evaluate the effects of utilizing novel microfibrous scaffolds, containing the compound quercetin (Q), on skeletal muscle regeneration. Morphological test results showed us that the combination of bismuth ferrite (BFO), polycaprolactone (PCL), and Q were bonded and well-ordered with each other, and a uniform microfibrous structure was obtained. Antimicrobial susceptibility testing of PCL/BFO/Q was conducted, and microbial reduction was found to be over 90% in the highest concentration of Q-loaded microfibrous scaffolds with the most inhibitory effect on S. aureus strains. Further, biocompatibility was investigated by performing MTT testing, fluorescence testing, and SEM imaging on mesenchymal stem cells (MSCs) to determine whether they could act as suitable microfibrous scaffolds for skeletal muscle tissue engineering. Incremental changes in the concentration of Q led to increased strength and strain, allowing muscles to withstand stretching during the healing process. In addition, electrically conductive microfibrous scaffolds enhanced the drug release capability by revealing that Q can be released significantly more quickly by applying the appropriate electric field, compared with conventional drug-release techniques. These findings suggest a possible use for PCL/BFO/Q microfibrous scaffolds in skeletal muscle regeneration by demonstrating that the combined action of both guidance biomaterials was more successful than Q itself acting alone.

Publisher

MDPI AG

Subject

Pharmaceutical Science

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