Bioactive Cellulose Acetate Electrospun Mats as Scaffolds for Bone Tissue Regeneration

Author:

Laboy-López Simara12ORCID,Méndez Fernández Pedro O.23,Padilla-Zayas Jorge G.23,Nicolau Eduardo12ORCID

Affiliation:

1. Department of Chemistry, University of Puerto Rico, Rio Piedras Campus, 17 University Ave. 1701, San Juan 00925, USA

2. Molecular Science Research Center, University of Puerto Rico, 1390 Ponce De Leon Ave, Suite 2, San Juan 00931-3346, USA

3. Department of Biology, University of Puerto Rico, Rio Piedras Campus, PO Box 23346, San Juan 00931-3346, USA

Abstract

In the last decades, cell-based approaches for bone tissue engineering (BTE) have relied on using models that cannot replicate the complexity of the bone microenvironment. There is an ongoing amount of research on scaffold development responding to the need for feasible materials that can mimic the bone extracellular matrix (ECM) and aid bone tissue regeneration (BTR). In this work, a porous cellulose acetate (CA) fiber mat was developed using the electrospinning technique and the mats were chemically modified to bioactivate their surface and promote osteoconduction and osteoinduction. The mats were characterized using FTIR and SEM/EDS to validate the chemical modifications and assess their structural integrity. By coupling adhesive peptides KRSR, RGD, and growth factor BMP-2, the fiber mats were bioactivated, and their induced biological responses were evaluated by employing immunocytochemical (ICC) techniques to study the adhesion, proliferation, and differentiation of premature osteoblast cells (hFOB 1.19). The biological assessment revealed that at short culturing periods of 48 hours and 7 days, the presence of the peptides was significant for proliferation and adhesion, whereas at longer culture times of 14 days, it had no significant effect on differentiation and maturation of the osteogenic progenitor cells. Based on the obtained results, it is thus concluded that the CA porous fiber mats provide a promising surface morphology that is both biocompatible and can be rendered bioactive upon the addition of osteogenic peptides to favor osteoconduction leading to new tissue formation.

Publisher

Hindawi Limited

Subject

Biomedical Engineering,Biomaterials

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