Literature DB >> 11288078

Injection molding of chondrocyte/alginate constructs in the shape of facial implants.

S C Chang1, J A Rowley, G Tobias, N G Genes, A K Roy, D J Mooney, C A Vacanti, L J Bonassar.   

Abstract

Over one million patients per year undergo some type of procedure involving cartilage reconstruction. Polymer hydrogels, such as alginate, have been shown to be effective carriers for chondrocytes in subcutaneous cartilage formation. The goal of our current study was to develop a method to create complex structures (nose bridge, chin, etc.) with good dimensional tolerance to form cartilage in specific shapes. Molds of facial implants were prepared using Silastic ERTV. Suspensions of chondrocytes in 2% alginate were gelled by mixing with CaSO(4) (0.2 g/mL) and injected into the molds. Constructs of various cell concentrations (10, 25, and 50 million/mL) were implanted in the dorsal aspect of nude mice and harvested at times up to 30 weeks. Analysis of implanted constructs indicated progressive cartilage formation with time. Proteoglycan and collagen constructs increased with time to approximately 60% that of native tissue. Equilibrium modulus likewise increased with time to 15% that of normal tissue, whereas hydraulic permeability decreased to 20 times that of native tissue. Implants seeded with greater concentrations of cells increased proteoglycan content and collagen content and equilibrium and decreased permeability. Production of shaped cartilage implants by this technique presents several advantages, including good dimensional tolerance, high sample-to-sample reproducibility, and high cell viability. This system may be useful in the large-scale production of precisely shaped cartilage implants. Copyright 2001 John Wiley & Sons, Inc. J Biomed Mater Res 55: 503-511, 2001

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Year:  2001        PMID: 11288078     DOI: 10.1002/1097-4636(20010615)55:4<503::aid-jbm1043>3.0.co;2-s

Source DB:  PubMed          Journal:  J Biomed Mater Res        ISSN: 0021-9304


  53 in total

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5.  An optical method for evaluation of geometric fidelity for anatomically shaped tissue-engineered constructs.

Authors:  Jeffrey J Ballyns; Daniel L Cohen; Evan Malone; Suzanne A Maher; Hollis G Potter; Timothy Wright; Hod Lipson; Lawrence J Bonassar
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Review 6.  Assembly of cells and vesicles for organ engineering.

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7.  Chondrogenic differentiation of adipose-derived adult stem cells by a porous scaffold derived from native articular cartilage extracellular matrix.

Authors:  Nai-Chen Cheng; Bradley T Estes; Hani A Awad; Farshid Guilak
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8.  Shaped Films of Ionotropic Hydrogels Fabricated Using Templates of Patterned Paper.

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9.  Effect of 3D-scaffold formation on differentiation and survival in human neural progenitor cells.

Authors:  Stefanie Ortinau; Jürgen Schmich; Stephan Block; Andrea Liedmann; Ludwig Jonas; Dieter G Weiss; Christiane A Helm; Arndt Rolfs; Moritz J Frech
Journal:  Biomed Eng Online       Date:  2010-11-11       Impact factor: 2.819

Review 10.  Image-guided tissue engineering.

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