Literature DB >> 11255176

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

E A Botchwey1, S R Pollack, E M Levine, C T Laurencin.   

Abstract

A novel approach was utilized to grow in vitro mineralized bone tissue using lighter-than-water, polymeric scaffolds in a high aspect ratio rotating bioreactor. We have adapted polymer microencapsulation methods for the formation of hollow, lighter-than-water microcarriers of degradable poly(lactic-co-glycolic acid). Scaffolds were fabricated by sintering together lighter-than-water microcarriers from 500 to 860 microm in diameter to create a fully interconnected, three-dimensional network with an average pore size of 187 microm and aggregate density of 0.65 g/mL. Motion in the rotating bioreactor was characterized by numerical simulation and by direct measurement using an in situ particle tracking system. Scaffold constructs established a near circular trajectory in the fluid medium with a terminal velocity of 98 mm/s while avoiding collision with the bioreactor wall. Preliminary cell culture studies on these scaffolds show that osteoblast-like cells readily attached to microcarrier scaffolds using controlled seeding conditions with an average cell density of 6.5 x 10(4) cells/cm(2). The maximum shear stress imparted to attached cells was estimated to be 3.9 dynes/cm(2). In addition, cells cultured in vitro on these lighter-than-water scaffolds retained their osteoblastic phenotype and showed significant increases in alkaline phosphatase expression and alizarin red staining by day 7 as compared with statically cultured controls. Copyright 2001 John Wiley & Sons, Inc.

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Year:  2001        PMID: 11255176      PMCID: PMC3464017          DOI: 10.1002/1097-4636(200105)55:2<242::aid-jbm1011>3.0.co;2-d

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


  37 in total

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  37 in total

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Authors:  Xiaojun Yu; Edward A Botchwey; Elliot M Levine; Solomon R Pollack; Cato T Laurencin
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2.  Collagen microcarrier spinner culture promotes osteoblast proliferation and synthesis of matrix proteins.

Authors:  Michael Overstreet; Afshin Sohrabi; Anna Polotsky; David S Hungerford; Carmelita G Frondoza
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Review 3.  Coculture strategies in bone tissue engineering: the impact of culture conditions on pluripotent stem cell populations.

Authors:  Sathyanarayana Janardhanan; Martha O Wang; John P Fisher
Journal:  Tissue Eng Part B Rev       Date:  2012-07-09       Impact factor: 6.389

4.  Osteochondral interface tissue engineering using macroscopic gradients of bioactive signals.

Authors:  Nathan H Dormer; Milind Singh; Limin Wang; Cory J Berkland; Michael S Detamore
Journal:  Ann Biomed Eng       Date:  2010-04-09       Impact factor: 3.934

5.  Microsphere-based seamless scaffolds containing macroscopic gradients of encapsulated factors for tissue engineering.

Authors:  Milind Singh; Casey P Morris; Ryan J Ellis; Michael S Detamore; Cory Berkland
Journal:  Tissue Eng Part C Methods       Date:  2008-12       Impact factor: 3.056

6.  Microsphere-based scaffolds for cartilage tissue engineering: using subcritical CO(2) as a sintering agent.

Authors:  Milind Singh; Brindar Sandhu; Aaron Scurto; Cory Berkland; Michael S Detamore
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7.  Expansion of microvascular networks in vivo by phthalimide neovascular factor 1 (PNF1).

Authors:  Kristen A Wieghaus; Meghan M Nickerson; Caren E Petrie Aronin; Lauren S Sefcik; Richard J Price; Mikell A Paige; Milton L Brown; Edward A Botchwey
Journal:  Biomaterials       Date:  2008-09-18       Impact factor: 12.479

8.  The interplay between cell adhesion cues and curvature of cell adherent alginate microgels in multipotent stem cell culture.

Authors:  John J Schmidt; Jaehyun Jeong; Hyunjoon Kong
Journal:  Tissue Eng Part A       Date:  2011-07-26       Impact factor: 3.845

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Authors:  Qing Lv; Meng Deng; Bret D Ulery; Lakshmi S Nair; Cato T Laurencin
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Journal:  Curr Stem Cell Res Ther       Date:  2008-12       Impact factor: 3.828

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