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Biomimetic Vegf-Loaded Bilayer Scaffold Fabricated by 3D Printing and Electrospinning Techniques for Skin Regeneration Publisher



Pajooh AMD1 ; Tavakoli M2, 3 ; Almusawi MH4 ; Karimi A5 ; Salehi E6 ; Nasiriharchegani S7 ; Sharifianjazi F8 ; Tavamaishvili K9 ; Mehrjoo M10, 11 ; Najafinezhad A7 ; Varshosaz J12 ; Mirhaj M2, 3
Authors
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Authors Affiliations
  1. 1. Department of Life Science Engineering, Faculty of New Sciences and Technologies, University of Tehran, Tehran, Iran
  2. 2. Pharmacy Student's Research Committee, School of Pharmacy, Isfahan University of Medical Sciences, Isfahan, Iran
  3. 3. Department of Materials Engineering, Isfahan University of Technology, Isfahan, 84156-83111, Iran
  4. 4. Department of Clinical Laboratory Science, College of Pharmacy, Mustansiriyah University, Baghdad, Iraq
  5. 5. School of Mechanical Engineering, Shiraz University, Shiraz, Iran
  6. 6. Faculty of Engineering, Shahrekord University, Shahrekord, Iran
  7. 7. Advanced Materials Research Center, Department of Materials Engineering, Najafabad Branch, Islamic Azad University, Najafabad, Iran
  8. 8. Department of Natural Sciences, School of Science and Technology, University of Georgia, Tbilisi, 0171, Georgia
  9. 9. Georgian American University, School of Medicine, 10 Merab Aleksidze Str., Tbilisi, 0160, Georgia
  10. 10. Department of Biomedical Engineering, Amirkabir University of Technology, Tehran, Iran
  11. 11. Iran National Cell Bank, Pasteur Institute of Iran, Tehran, Iran
  12. 12. Novel Drug Delivery Systems Research Centre, Department of Pharmaceutics, School of Pharmacy, Isfahan University of Medical Sciences, Isfahan, Iran

Source: Materials and Design Published:2024


Abstract

Among the fabrication methods, 3D printing due to excellent accuracy, reproducibility and customizability as well as electrospinning due to the ability to mimic the extracellular matrix structure have received many attentions. Herein, we used the combination of both mentioned techniques to produce a biomimetic bilayer scaffold for skin tissue regeneration. The upper layer of the scaffold was made of 3D printed dextran-vascular endothelial growth factor (Dex-VEGF) to stimulate angiogenesis and cell migration, and the bottom layer was made of electrospun gelatin-keratin (Gel-Kr) nanofibers to induce cell attachment. The tensile strength and elastic modulus of the scaffolds were measured in the range of 0.26 – 0.33 MPa and 5.8 – 7.2 MPa, respectively. The investigations revealed that the release of VEGF lasted up to 7 days. The bilayer VEGF-loaded scaffold demonstrated the best cellular behaviour. Chicken chorioallantoic membrane (CAM) assay confirmed the highest angiogenic potential in the presence of the bilayer VEGF-loaded scaffold. Also, based on in vivo animal studies and histopathological and immunohistochemical examinations, the highest wound healing rate was related to the bilayer VEGF-loaded scaffold within 14 days. The obtained promising results introduce the prepared bilayer scaffold as a perfect construct to accelerate wound healing. © 2024 The Author(s)
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