Literature DB >> 15046905

Design of porous scaffolds for cartilage tissue engineering using a three-dimensional fiber-deposition technique.

T B F Woodfield1, J Malda, J de Wijn, F Péters, J Riesle, C A van Blitterswijk.   

Abstract

In this study, we present and characterize a fiber deposition technique for producing three-dimensional poly(ethylene glycol)-terephthalate-poly(butylene terephthalate) (PEGT/PBT) block co-polymer scaffolds with a 100% interconnecting pore network for engineering of articular cartilage. The technique allowed us to "design-in" desired scaffold characteristics layer by layer by accurately controlling the deposition of molten co-polymer fibers from a pressure-driven syringe onto a computer controlled x-y-z table. By varying PEGT/PBT composition, porosity and pore geometry, 3D-deposited scaffolds were produced with a range of mechanical properties. The equilibrium modulus and dynamic stiffness ranged between 0.05-2.5 and 0.16-4.33 MPa, respectively, and were similar to native articular cartilage explants (0.27 and 4.10 MPa, respectively). 3D-deposited scaffolds seeded with bovine articular chondrocytes supported a homogeneous cell distribution and subsequent cartilage-like tissue formation following in vitro culture as well as subcutaneous implantation in nude mice. This was demonstrated by the presence of articular cartilage extra cellular matrix constituents (glycosaminoglycan and type II collagen) throughout the interconnected pore volume. Similar results were achieved with respect to the attachment of expanded human articular chondrocytes, resulting in a homogeneous distribution of viable cells after 5 days dynamic seeding. The processing methods and model scaffolds developed in this study provide a useful method to further investigate the effects of scaffold composition and pore architecture on articular cartilage tissue formation.

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Year:  2004        PMID: 15046905     DOI: 10.1016/j.biomaterials.2003.10.056

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  65 in total

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Authors:  J A Szivek; C L Bliss; C P Geffre; D S Margolis; D W DeYoung; J T Ruth; A B Schnepp; B C Tellis; R K Vaidyanathan
Journal:  J Biomed Mater Res B Appl Biomater       Date:  2006-11       Impact factor: 3.368

2.  In situ tissue engineering using magnetically guided three-dimensional cell patterning.

Authors:  Shawn P Grogan; Chantal Pauli; Peter Chen; Jiang Du; Christine B Chung; Seong Deok Kong; Clifford W Colwell; Martin K Lotz; Sungho Jin; Darryl D D'Lima
Journal:  Tissue Eng Part C Methods       Date:  2012-02-10       Impact factor: 3.056

3.  Modeling tissue growth within nonwoven scaffolds pores.

Authors:  Sharon L Edwards; Jeffrey S Church; David L J Alexander; Stephen J Russell; Eileen Ingham; John A M Ramshaw; Jerome A Werkmeister
Journal:  Tissue Eng Part C Methods       Date:  2010-10-01       Impact factor: 3.056

4.  Maintaining cell depth viability: on the efficacy of a trimodal scaffold pore architecture and dynamic rotational culturing.

Authors:  Conor Timothy Buckley; Kevin Unai O'Kelly
Journal:  J Mater Sci Mater Med       Date:  2010-02-17       Impact factor: 3.896

5.  A novel bioreactor for the dynamic stimulation and mechanical evaluation of multiple tissue-engineered constructs.

Authors:  Trevor J Lujan; Kyle M Wirtz; Chelsea S Bahney; Steven M Madey; Brian Johnstone; Michael Bottlang
Journal:  Tissue Eng Part C Methods       Date:  2010-12-06       Impact factor: 3.056

6.  Biomimetics of the Extracellular Matrix: An Integrated Three-Dimensional Fiber-Hydrogel Composite for Cartilage Tissue Engineering.

Authors:  Jeannine Coburn; Matt Gibson; Pierre Alain Bandalini; Christopher Laird; Hai-Quan Mao; Lorenzo Moroni; Dror Seliktar; Jennifer Elisseeff
Journal:  Smart Struct Syst       Date:  2011-01-01       Impact factor: 3.342

Review 7.  Advancing musculoskeletal research with nanoscience.

Authors:  Cameron P Brown
Journal:  Nat Rev Rheumatol       Date:  2013-07-23       Impact factor: 20.543

8.  3D polycaprolactone scaffolds with controlled pore structure using a rapid prototyping system.

Authors:  SuA Park; Geunhyung Kim; Yong Chul Jeon; Youngho Koh; Wandoo Kim
Journal:  J Mater Sci Mater Med       Date:  2008-08-30       Impact factor: 3.896

9.  Open-source three-dimensional printing of biodegradable polymer scaffolds for tissue engineering.

Authors:  Jordan E Trachtenberg; Paschalia M Mountziaris; Jordan S Miller; Matthew Wettergreen; Fred K Kasper; Antonios G Mikos
Journal:  J Biomed Mater Res A       Date:  2014-12       Impact factor: 4.396

10.  Three-dimensional Printing of Multilayered Tissue Engineering Scaffolds.

Authors:  Sean M Bittner; Jason L Guo; Anthony Melchiorri; Antonios G Mikos
Journal:  Mater Today (Kidlington)       Date:  2018-03-20       Impact factor: 31.041

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