Published December 1, 2013 | Version v1
Journal article

Optimization strategies on the structural modeling of gelatin/chitosan scaffolds to mimic human meniscus tissue

  • 1. Helmholtz Virtual Institute: Multifunctional Biomaterials for Medicine, Freiburg (Germany)
  • 2. Institute for Macromolecular Chemistry, University of Freiburg, Hermann Staudinger Haus, Freiburg D-79104 (Germany)
  • 3. Sports Engineering Group, Faculty of Biomedical Engineering (Center of Excellence), Amirkabir University of Technology, P.O. Box 15875-4413, Tehran (Iran, Islamic Republic of)
  • 4. Biomaterials Group, Faculty of Biomedical Engineering (Center of Excellence), Amirkabir University of Technology, P.O. Box 15875-4413, Tehran (Iran, Islamic Republic of)
  • 5. Helmerich Advanced Technology Research Center, School of Material Science and Engineering, Oklahoma State University, OK 74106 (United States)

Description

Meniscus lesions are frequently occurring injuries with poor ability to heal. Typical treatment procedure includes removal of damaged regions, which can lead to sub-optimal knee biomechanics and early onset of osteoarthritis. Some of the drawbacks of current treatment approach present an opportunity for a tissue engineering solution. In this study, gelatin (G)/chitosan (Cs) scaffolds were synthesized via gel casting method and cross-linked with naturally derived cross-linker, genipin, through scaffold cross-linking method. Based on the characteristics of native meniscus tissue microstructure and function, three different layers were chosen to design the macroporous multilayered scaffolds. The multi-layered scaffolds were investigated for their ability to support human-derived meniscus cells by evaluating their morphology and proliferation using MTT assay at various time points. Based on structural, mechanical and cell compatibility considerations, laminated scaffolds composed of G60/Cs40, G80/Cs20 and G40/Cs60 samples, for the first, second and third layers, respectively, could be an appropriate combination for meniscus tissue engineering applications. - Graphical abstract: The wedge shaped multilayer/multiporous G/Cs meniscus scaffolds were mimicked by MR images of anatomical knee meniscus. The layers were chosen as G60/Cs40, G80/Cs20 and G40/Cs60, according to their characteristics similar to meniscus natural tissue, as the first, second and third layers, respectively. - Highlights: • Different gelatin/chitosan systems were chosen to engineer a multilayered scaffold. • The compressive modulus increased gradually by increasing the gelatin concentration. • Further addition of gelatin showed a meaningful decrease in the water uptake degree. • The layers supported cell growth and mimicked the meniscus fibrocartilage structure

Availability note (English)

Available from http://dx.doi.org/10.1016/j.msec.2013.07.036

Additional details

Identifiers

DOI
10.1016/j.msec.2013.07.036;
PII
S0928-4931(13)00452-9;

Publishing Information

Journal Title
Materials Science and Engineering. C, Biomimetic Materials, Sensors and Systems
Journal Volume
33
Journal Issue
8
Journal Page Range
p. 4777-4785
ISSN
0928-4931

INIS

Country of Publication
Netherlands
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
46050911
Subject category
S36: MATERIALS SCIENCE;
Descriptors DEI
AMINO ACIDS; CASTINGS; CROSS-LINKING; GELATIN; MICROSTRUCTURE; OLIGOSACCHARIDES; POROUS MATERIALS; SOLUTIONS
Descriptors DEC
CARBOHYDRATES; CARBOXYLIC ACIDS; CHEMICAL REACTIONS; COLLOIDS; DISPERSIONS; HOMOGENEOUS MIXTURES; MATERIALS; MIXTURES; ORGANIC ACIDS; ORGANIC COMPOUNDS; POLYMERIZATION; PROTEINS; SACCHARIDES

Optional Information

Copyright
Copyright (c) 2013 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.