Literature DB >> 20807597

Three-dimensional poly(1,8-octanediol-co-citrate) scaffold pore shape and permeability effects on sub-cutaneous in vivo chondrogenesis using primary chondrocytes.

Claire G Jeong1, Huina Zhang, Scott J Hollister.   

Abstract

The objective of this study was to evaluate the coupled effects of three-dimensional poly(1,8-octanediol-co-citrate) (POC) scaffold pore shape and permeability on chondrogenesis using primary chondrocytes in vivo. Chondrogenesis was characterized as cartilage matrix formation by sulfated glycosaminoglycan (sGAG) quantification, relative mRNA expression of the cartilage-related proteins collagen types I, II and X, aggrecan and matrix metalloproteinases 13 and 3 and the compressive mechanical properties of the tissue/scaffold construct. A low permeability design with a spherical pore shape showed a significantly greater increase in cartilage matrix formation over 6 weeks in vivo than a high permeability design with a cubical pore shape. This increase in cartilage matrix synthesis corresponded with increases in mechanical compressive nonlinear elastic properties and histological data demonstrating darker red Safranin-O staining. There was higher mRNA expression for both cartilage-specific proteins and matrix degradation proteins in the high permeability design, resulting in overall less sGAG retained in the high permeability scaffold compared with the low permeability scaffold. Controlled POC scaffolds with a spherical pore shape and low permeability correlated with significantly increased cartilage matrix production using primary seeded chondrocytes. These results indicate that the low permeability design with a spherical pore shape provided a better microenvironment for chondrogenesis than the high permeability design with a cubical pore shape. Thus, scaffold architecture and material design may have a significant impact on the success of matrix-based clinical cartilage repair strategies.
Copyright © 2010. Published by Elsevier Ltd.

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Year:  2010        PMID: 20807597     DOI: 10.1016/j.actbio.2010.08.027

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  9 in total

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2.  Pore architecture effects on chondrogenic potential of patient-specific 3-dimensionally printed porous tissue bioscaffolds for auricular tissue engineering.

Authors:  David A Zopf; Colleen L Flanagan; Anna G Mitsak; Julia R Brennan; Scott J Hollister
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Authors:  Nai-Chen Cheng; Bradley T Estes; Tai-Horng Young; Farshid Guilak
Journal:  Tissue Eng Part A       Date:  2012-11-30       Impact factor: 3.845

8.  Self-assembling Peptide Hydrogels Facilitate Vascularization in Two-Component Scaffolds.

Authors:  Zain Siddiqui; Biplab Sarkar; Ka Kyung Kim; Arjun Kumar; Reshma Paul; Aryan Mahajan; Jonathan M Grasman; Jian Yang; Vivek A Kumar
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9.  Preclinical assessment of clinically streamlined, 3D-printed, biocompatible single- and two-stage tissue scaffolds for ear reconstruction.

Authors:  Julia R Brennan; Ashley Cornett; Brian Chang; Sarah J Crotts; Zahra Nourmohammadi; Isabelle Lombaert; Scott J Hollister; David A Zopf
Journal:  J Biomed Mater Res B Appl Biomater       Date:  2020-08-24       Impact factor: 3.368

  9 in total

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