Fabrication of a Compliant Vascular Graft Using Extrusion Printing and Electrospinning Technique

Author:

Fazal Faraz12ORCID,Melchels Ferry P.W.34,McCormack Andrew4,Silva Andreia F.5,Handley Ella‐Louise6,Mazlan Nurul Ain1,Callanan Anthony6,Koutsos Vasileios1,Radacsi Norbert1ORCID

Affiliation:

1. School of Engineering Institute for Materials and Processes The University of Edinburgh Robert Stevenson Road Edinburgh EH9 3FB UK

2. Department of Mechanical Engineering University of Engineering and Technology, (New Campus) Lahore 54890 Pakistan

3. Future Industries Institute University of South Australia Mawson Lakes, SA Adelaide 5095 Australia

4. School of Engineering and Physical Sciences Institute of Biological Chemistry Biophysics and Bioengineering Heriot‐Watt University Edinburgh EH14 4AS UK

5. Edinburgh Complex Fluids Partnership (ECFP) SUPA and School of Physics & Astronomy The University of Edinburgh Peter Guthrie Tait Road Edinburgh EH9 3FD UK

6. School of Engineering Institute for Bioengineering The University of Edinburgh The King's Buildings Edinburgh EH9 3JL UK

Abstract

AbstractSmall‐diameter vascular grafts having biomechanical properties similar to those of native arteries for the treatment of cardiovascular diseases are still elusive. Here, a hybrid extrusion printing and electrospinning technique is presented in which a layer of electrospun nanofibers is deposited over the printed gelatin‐methacryloyl (gelMA) constructs to improve the mechanical performance of gelMA grafts. Various blends of polycaprolactone (PCL) and poly(L‐lactide‐co‐ε‐caprolactone) (PLCL) polymer solutions are used to produce electrospun nanofibers. The variation of gelMA concentration is found to have a negligible role in the overall strength of the graft. It is shown that the burst pressure and tensile strength of the fiber‐reinforced gelMA constructs are comparable to those of native human arteries. Moreover, the compliance of grafts reinforced by 100% PCL and 75/25% PCL/PLCL nanofibers are found to be similar to human muscular arteries and elastic arteries, respectively. The cytocompatibility assessment shows that gelMA presents a bioactive surface for the endothelial cells to survive and grow. Also, PCL/PLCL electrospun nanofibers offer cellular metabolic activity in the same order of magnitude as observed in the control. Therefore, this hybrid technique opens up new possibilities for the fabrication of tubular constructs in tissue engineering.

Publisher

Wiley

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