Literature DB >> 20540101

Directional fluid flow enhances in vitro periosteal tissue growth and chondrogenesis on poly-epsilon-caprolactone scaffolds.

Yih-Wen Tarng1, Michelle E Casper, James S Fitzsimmons, James J Stone, Joris Bekkers, Kai-Nan An, Fong-Chin Su, Shawn W O'Driscoll, Gregory G Reinholz.   

Abstract

The purpose of this study was to investigate the effect of directional fluid flow on periosteal chondrogenesis. Periosteal explants were harvested from 2-month-old rabbits and sutured onto poly-epsilon-caprolactone (PCL) scaffolds with the cambium layer facing away from the scaffolds. The periosteum/PCL composites were cultured in suspension in spinner flask bioreactors and exposed to various fluid flow velocities: 0, 20, 60, and 150 rpm for 4 h each day for 6 weeks. The application of fluid flow significantly increased percent cartilage yield in periosteal explants from 17% in the static controls to 65-75% under fluid flow (there was no significant difference between 20, 60, or 150 rpm). The size of the neocartilage was also significantly greater in explants exposed to fluid flow compared with static culture. The development of zonal organization within the engineered cartilage was observed predominantly in the tissue exposed to flow conditions. The Young's modulus of the engineered cartilage exposed to 60 rpm was significantly greater than the samples exposed to 150 and 20 rpm. These results demonstrate that application of directional fluid flow to periosteal explants secured onto PCL scaffolds enhances cell proliferation, chondrogenic differentiation, and cell organization and alters the biomechanical properties of the engineered cartilage. Copyright 2010 Wiley Periodicals, Inc. J Biomed Mater Res Part A, 2010.

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Year:  2010        PMID: 20540101      PMCID: PMC2928853          DOI: 10.1002/jbm.a.32830

Source DB:  PubMed          Journal:  J Biomed Mater Res A        ISSN: 1549-3296            Impact factor:   4.396


  37 in total

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Authors:  D W Hutmacher
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2.  The importance of procedure specific training in harvesting periosteum for chondrogenesis.

Authors:  S W O'Driscoll; J S Fitzsimmons
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3.  Viability of periosteal tissue obtained postmortem.

Authors:  S W O'Driscoll; B Meisami; Y Miura; J S Fitzsimmons
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Review 4.  Articular cartilage regeneration using periosteum.

Authors:  S W O'Driscoll
Journal:  Clin Orthop Relat Res       Date:  1999-10       Impact factor: 4.176

5.  Periosteum responds to dynamic fluid pressure by proliferating in vitro.

Authors:  D B Saris; A Sanyal; K N An; J S Fitzsimmons; S W O'Driscoll
Journal:  J Orthop Res       Date:  1999-09       Impact factor: 3.494

6.  Tensile and compressive properties of healthy and osteoarthritic human articular cartilage.

Authors:  Federica Boschetti; Giuseppe M Peretti
Journal:  Biorheology       Date:  2008       Impact factor: 1.875

Review 7.  Overview of existing cartilage repair technology.

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8.  Poly-epsilon-caprolactone/gel hybrid scaffolds for cartilage tissue engineering.

Authors:  J C Schagemann; H W Chung; E H Mrosek; J J Stone; J S Fitzsimmons; S W O'Driscoll; G G Reinholz
Journal:  J Biomed Mater Res A       Date:  2010-05       Impact factor: 4.396

9.  Rejuvenation of periosteal chondrogenesis using local growth factor injection.

Authors:  G G Reinholz; J S Fitzsimmons; M E Casper; T J Ruesink; H W Chung; J C Schagemann; S W O'Driscoll
Journal:  Osteoarthritis Cartilage       Date:  2008-11-06       Impact factor: 6.576

10.  Porous tantalum and poly-epsilon-caprolactone biocomposites for osteochondral defect repair: preliminary studies in rabbits.

Authors:  Eike H Mrosek; Jan C Schagemann; Hsi-Wei Chung; James S Fitzsimmons; Michael J Yaszemski; Rodrigo M Mardones; Shawn W O'Driscoll; Gregory G Reinholz
Journal:  J Orthop Res       Date:  2010-02       Impact factor: 3.494

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2.  A novel recirculating flow-perfusion bioreactor for periosteal chondrogenesis.

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Journal:  Int Orthop       Date:  2011-06-15       Impact factor: 3.075

Review 3.  Periosteum derived stem cells for regenerative medicine proposals: Boosting current knowledge.

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Journal:  World J Stem Cells       Date:  2014-07-26       Impact factor: 5.326

4.  A simple rocker-induced mechanical stimulus upregulates mineralization by human osteoprogenitor cells in fibrous scaffolds.

Authors:  Sasima Puwanun; Robin M Delaine-Smith; Helen E Colley; Julian M Yates; Sheila MacNeil; Gwendolen C Reilly
Journal:  J Tissue Eng Regen Med       Date:  2017-08-09       Impact factor: 3.963

5.  The vascularized periosteum flap as novel tissue engineering model for repair of cartilage defects.

Authors:  Leila Harhaus; Jung-Ju Huang; Shu-Wei Kao; Yen-Lin Wu; Gina Alicia Mackert; Bernd Höner; Ming-Huei Cheng; Ulrich Kneser; Chao-Min Cheng
Journal:  J Cell Mol Med       Date:  2015-03-05       Impact factor: 5.310

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