Literature DB >> 18434267

Osteogenic differentiation of dura mater stem cells cultured in vitro on three-dimensional porous scaffolds of poly(epsilon-caprolactone) fabricated via co-extrusion and gas foaming.

C E Petrie Aronin1, J A Cooper, L S Sefcik, S S Tholpady, R C Ogle, E A Botchwey.   

Abstract

A novel scaffold fabrication method utilizing both polymer blend extrusion and gas foaming techniques to control pore size distribution is presented. Seventy-five per cent of all pores produced using polymer blend extrusion alone were less than 50microm. Introducing a gas technique provided better control of pore size distribution, expanding the range from 0-50 to 0-350microm. Varying sintering time, annealing temperature and foaming pressure also helped to reduce the percentage of pore sizes below 50microm. Scaffolds chosen for in vitro cellular studies had a pore size distribution of 0-300microm, average pore size 66+/-17microm, 0.54+/-0.02% porosity and 98% interconnectivity, measured by micro-computed tomography (microCT) analysis. The ability of the scaffolds to support osteogenic differentiation for subsequent cranial defect repair was evaluated by static and dynamic (0.035+/-0.006ms(-1) terminal velocity) cultivation with dura mater stem cells (DSCs). In vitro studies showed minimal increases in proliferation over 28 days in culture in osteogenic media. Alkaline phosphatase expression remained constant throughout the study. Moderate increases in matrix deposition, as assessed by histochemical staining and microCT analysis, occurred at later time points, days 21 and 28. Although constructs cultured dynamically showed greater mineralization than static conditions, these trends were not significant. It remains unclear whether bioreactor culture of DSCs is advantageous for bone tissue engineering applications. However, these studies show that polycaprolactone (PCL) scaffolds alone, without the addition of other co-polymers or ceramics, support long-term attachment and mineralization of DSCs throughout the entire porous scaffold.

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Year:  2008        PMID: 18434267      PMCID: PMC2654610          DOI: 10.1016/j.actbio.2008.02.029

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


  46 in total

1.  Bone tissue engineering in a rotating bioreactor using a microcarrier matrix system.

Authors:  E A Botchwey; S R Pollack; E M Levine; C T Laurencin
Journal:  J Biomed Mater Res       Date:  2001-05

2.  Engineering bone regeneration with bioabsorbable scaffolds with novel microarchitecture.

Authors:  K Whang; K E Healy; D R Elenz; E K Nam; D C Tsai; C H Thomas; G W Nuber; F H Glorieux; R Travers; S M Sprague
Journal:  Tissue Eng       Date:  1999-02

3.  Regulation of cranial suture morphogenesis.

Authors:  Roy C Ogle; Sunil S Tholpady; Kathryn A McGlynn; Rebecca A Ogle
Journal:  Cells Tissues Organs       Date:  2004       Impact factor: 2.481

4.  Bioreactor-based bone tissue engineering: the influence of dynamic flow on osteoblast phenotypic expression and matrix mineralization.

Authors:  Xiaojun Yu; Edward A Botchwey; Elliot M Levine; Solomon R Pollack; Cato T Laurencin
Journal:  Proc Natl Acad Sci U S A       Date:  2004-07-26       Impact factor: 11.205

5.  Quantitative analysis of three-dimensional fluid flow in rotating bioreactors for tissue engineering.

Authors:  Edward A Botchwey; Solomon R Pollack; Elliot M Levine; Eric D Johnston; Cato T Laurencin
Journal:  J Biomed Mater Res A       Date:  2004-05-01       Impact factor: 4.396

6.  Co-extrusion of biocompatible polymers for scaffolds with co-continuous morphology.

Authors:  Newell R Washburn; Carl G Simon; Alessandro Tona; Hoda M Elgendy; Alamgir Karim; Eric J Amis
Journal:  J Biomed Mater Res       Date:  2002-04

7.  Repair of calvarial defects with customised tissue-engineered bone grafts II. Evaluation of cellular efficiency and efficacy in vivo.

Authors:  Jan-Thorsten Schantz; Dietmar Werner Hutmacher; Christopher Xu Fu Lam; Maik Brinkmann; Kit Mui Wong; Thiam Chye Lim; Ning Chou; Robert Erling Guldberg; Swee Hin Teoh
Journal:  Tissue Eng       Date:  2003

8.  In vivo bone tissue engineering using mesenchymal stem cells on a novel electrospun nanofibrous scaffold.

Authors:  Michael Shin; Hiroshi Yoshimoto; Joseph P Vacanti
Journal:  Tissue Eng       Date:  2004 Jan-Feb

9.  In vitro degradation of three-dimensional porous poly(D,L-lactide-co-glycolide) scaffolds for tissue engineering.

Authors:  Linbo Wu; Jiandong Ding
Journal:  Biomaterials       Date:  2004-12       Impact factor: 12.479

10.  Osteogenic induction of human bone marrow-derived mesenchymal progenitor cells in novel synthetic polymer-hydrogel matrices.

Authors:  M Endres; D W Hutmacher; A J Salgado; C Kaps; J Ringe; R L Reis; M Sittinger; A Brandwood; J T Schantz
Journal:  Tissue Eng       Date:  2003-08
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  9 in total

1.  Calcification of primary human osteoblast cultures under flow conditions using polycaprolactone scaffolds for intravascular applications.

Authors:  Beili Zhu; Steven R Bailey; C Mauli Agrawal
Journal:  J Tissue Eng Regen Med       Date:  2011-09-20       Impact factor: 3.963

2.  An optical method to quantify the density of ligands for cell adhesion receptors in three-dimensional matrices.

Authors:  Dimitrios S Tzeranis; Amit Roy; Peter T C So; Ioannis V Yannas
Journal:  J R Soc Interface       Date:  2010-07-29       Impact factor: 4.118

Review 3.  [The latest study on biomimetic mineralized collagen-based bone materials for pediatric skull regeneration and repair].

Authors:  Bo Li; Shuo Wang; Yonggang Zhao; Xiumei Wang
Journal:  Zhongguo Xiu Fu Chong Jian Wai Ke Za Zhi       Date:  2021-03-15

Review 4.  Engineering 3D Models of Tumors and Bone to Understand Tumor-Induced Bone Disease and Improve Treatments.

Authors:  Kristin A Kwakwa; Joseph P Vanderburgh; Scott A Guelcher; Julie A Sterling
Journal:  Curr Osteoporos Rep       Date:  2017-08       Impact factor: 5.096

5.  Development of an angiogenesis-promoting microvesicle-alginate-polycaprolactone composite graft for bone tissue engineering applications.

Authors:  Hui Xie; Zhenxing Wang; Liming Zhang; Qian Lei; Aiqi Zhao; Hongxiang Wang; Qiubai Li; Zhichao Chen; WenJie Zhang
Journal:  PeerJ       Date:  2016-05-19       Impact factor: 2.984

6.  Primary pericranial Ewing's sarcoma on the temporal bone: A case report.

Authors:  Hiroto Kawano; Naoki Nitta; Mitsuaki Ishida; Tadateru Fukami; Kazuhiko Nozaki
Journal:  Surg Neurol Int       Date:  2016-06-03

7.  Evaluation of 3D-Printed Polycaprolactone Scaffolds Coated with Freeze-Dried Platelet-Rich Plasma for Bone Regeneration.

Authors:  Junda Li; Meilin Chen; Xiaoying Wei; Yishan Hao; Jinming Wang
Journal:  Materials (Basel)       Date:  2017-07-19       Impact factor: 3.623

8.  Osteoconductive properties of upside-down bilayer collagen membranes in rat calvarial defects.

Authors:  Balazs Feher; Karol Ali Apaza Alccayhuaman; Franz Josef Strauss; Jung-Seok Lee; Stefan Tangl; Ulrike Kuchler; Reinhard Gruber
Journal:  Int J Implant Dent       Date:  2021-06-07

9.  A high-strength mineralized collagen bone scaffold for large-sized cranial bone defect repair in sheep.

Authors:  Shuo Wang; Zhijun Zhao; Yongdong Yang; Antonios G Mikos; Zhiye Qiu; Tianxi Song; Fuzhai Cui; Xiumei Wang; Chunyang Zhang
Journal:  Regen Biomater       Date:  2018-08-13
  9 in total

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