
Surface Entrapment of Fibronectin on Electrospun PLGA Scaffolds for Periodontal Tissue Engineering
Author(s) -
Doris M. Campos,
Kerstin Gritsch,
Vincent Salles,
Ghania Attik,
Brigitte Grosgogeat
Publication year - 2014
Publication title -
bioresearch open access
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.457
H-Index - 26
eISSN - 2164-7860
pISSN - 2164-7844
DOI - 10.1089/biores.2014.0015
Subject(s) - plga , surface modification , tissue engineering , scaffold , polyester , adhesion , electrospinning , contact angle , chemistry , biomedical engineering , materials science , regeneration (biology) , chemical engineering , polymer , nanotechnology , composite material , medicine , engineering , microbiology and biotechnology , biology , nanoparticle
Nowadays, the challenge in the tissue engineering field consists in the development of biomaterials designed to regenerate ad integrum damaged tissues. Despite the current use of bioresorbable polyesters such as poly(l-lactide) (PLA), poly(d,l-lactide-co-glycolide) (PLGA), and poly-ɛ-caprolactone in soft tissue regeneration researches, their hydrophobic properties negatively influence the cell adhesion. Here, to overcome it, we have developed a fibronectin (FN)-functionalized electrospun PLGA scaffold for periodontal ligament regeneration. Functionalization of electrospun PLGA scaffolds was performed by alkaline hydrolysis (0.1 or 0.01 M NaOH). Then, hydrolyzed scaffolds were coated by simple deposition of an FN layer (10 μg/mL). FN coating was evidenced by X-ray photoelectron analysis. A decrease of contact angle and greater cell adhesion to hydrolyzed, FN-coated PLGA scaffolds were noticed. Suitable degradation behavior without pH variations was observed for all samples up to 28 days. All treated materials presented strong shrinkage, fiber orientation loss, and collapsed fibers. However, functionalization process using 0.01 M NaOH concentration resulted in unchanged scaffold porosity, preserved chemical composition, and similar mechanical properties compared with untreated scaffolds. The proposed simplified method to functionalize electrospun PLGA fibers is an efficient route to make polyester scaffolds more biocompatible and shows potential for tissue engineering.