Literature DB >> 19191316

In vivo bone biocompatibility and degradation of porous fumarate-based polymer/alumoxane nanocomposites for bone tissue engineering.

Amit S Mistry1, Quynh P Pham, Corinne Schouten, Tiffany Yeh, Elizabeth M Christenson, Antonios G Mikos, John A Jansen.   

Abstract

The objective of this study was to determine how the incorporation of surface-modified alumoxane nanoparticles into a biodegradable fumarate-based polymer affects in vivo bone biocompatibility (characterized by direct bone contact and bone ingrowth) and in vivo degradability. Porous scaffolds were fabricated from four materials: poly(propylene fumarate)/propylene fumarate-diacrylate (PPF/PF-DA) polymer alone; a macrocomposite consisting of PPF/PF-DA polymer with boehmite microparticles; a nanocomposite composed of PPF/PF-DA polymer and mechanically reinforcing surface-modified alumoxane nanoparticles; and a low-molecular weight PPF polymer alone (tested as a degradation control). Scaffolds were implanted in the lateral femoral condyle of adult goats for 12 weeks and evaluated by micro-computed tomography and histological analysis. For all material groups, small amounts of bone, some soft tissue, and a few inflammatory elements were observed within the pores of scaffolds, though many pores remained empty or filled with fluid only. Direct contact between scaffolds and surrounding bone tissue was also observed in all scaffold types, though less commonly. Minimal in vivo degradation occurred during the 12 weeks of implantation in all materials except the degradation control. These results demonstrate that the incorporation of alumoxane nanoparticles into porous PPF/PF-DA scaffolds does not significantly alter in vivo bone biocompatibility or degradation. (c) 2009 Wiley Periodicals, Inc.

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Year:  2010        PMID: 19191316      PMCID: PMC2797574          DOI: 10.1002/jbm.a.32371

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


  24 in total

1.  Enhanced functions of osteoblasts on nanophase ceramics.

Authors:  T J Webster; C Ergun; R H Doremus; R W Siegel; R Bizios
Journal:  Biomaterials       Date:  2000-09       Impact factor: 12.479

2.  In vitro degradation of porous poly(propylene fumarate)/poly(DL-lactic-co-glycolic acid) composite scaffolds.

Authors:  Elizabeth L Hedberg; Charles K Shih; Jeremy J Lemoine; Mark D Timmer; Michael A K Liebschner; John A Jansen; Antonios G Mikos
Journal:  Biomaterials       Date:  2005-06       Impact factor: 12.479

3.  Effect of varied release kinetics of the osteogenic thrombin peptide TP508 from biodegradable, polymeric scaffolds on bone formation in vivo.

Authors:  Elizabeth L Hedberg; Henriette C Kroese-Deutman; Charles K Shih; Roger S Crowther; Darrell H Carney; Antonios G Mikos; John A Jansen
Journal:  J Biomed Mater Res A       Date:  2005-03-15       Impact factor: 4.396

4.  Methods: a comparative analysis of radiography, microcomputed tomography, and histology for bone tissue engineering.

Authors:  Elizabeth L Hedberg; Henriette C Kroese-Deutman; Charles K Shih; Jeremy J Lemoine; Michael A K Liebschner; Michael J Miller; Alan W Yasko; Roger S Crowther; Darrell H Carney; Antonios G Mikos; John A Jansen
Journal:  Tissue Eng       Date:  2005 Sep-Oct

Review 5.  Tissue engineering strategies for bone regeneration.

Authors:  Amit S Mistry; Antonios G Mikos
Journal:  Adv Biochem Eng Biotechnol       Date:  2005       Impact factor: 2.635

6.  In vivo degradation of porous poly(propylene fumarate)/poly(DL-lactic-co-glycolic acid) composite scaffolds.

Authors:  Elizabeth L Hedberg; Henriette C Kroese-Deutman; Charles K Shih; Roger S Crowther; Darrell H Carney; Antonios G Mikos; John A Jansen
Journal:  Biomaterials       Date:  2005-01-18       Impact factor: 12.479

7.  Marrow stromal osteoblast function on a poly(propylene fumarate)/beta-tricalcium phosphate biodegradable orthopaedic composite.

Authors:  S J Peter; L Lu; D J Kim; A G Mikos
Journal:  Biomaterials       Date:  2000-06       Impact factor: 12.479

8.  Tissue response to partially in vitro predegraded poly-L-lactide implants.

Authors:  Wim H De Jong; J Eelco Bergsma; Joke E Robinson; Ruud R M Bos
Journal:  Biomaterials       Date:  2005-05       Impact factor: 12.479

9.  Degradation and biocompatibility of a poly(propylene fumarate)-based/alumoxane nanocomposite for bone tissue engineering.

Authors:  A S Mistry; A G Mikos; J A Jansen
Journal:  J Biomed Mater Res A       Date:  2007-12-15       Impact factor: 4.396

10.  Three-dimensional culture of rat calvarial osteoblasts in porous biodegradable polymers.

Authors:  S L Ishaug-Riley; G M Crane-Kruger; M J Yaszemski; A G Mikos
Journal:  Biomaterials       Date:  1998-08       Impact factor: 12.479

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  23 in total

1.  In vitro cytocompatibility of one-dimensional and two-dimensional nanostructure-reinforced biodegradable polymeric nanocomposites.

Authors:  Behzad Farshid; Gaurav Lalwani; Balaji Sitharaman
Journal:  J Biomed Mater Res A       Date:  2014-11-19       Impact factor: 4.396

2.  Early osteogenic signal expression of rat bone marrow stromal cells is influenced by both hydroxyapatite nanoparticle content and initial cell seeding density in biodegradable nanocomposite scaffolds.

Authors:  Kyobum Kim; David Dean; Anqi Lu; Antonios G Mikos; John P Fisher
Journal:  Acta Biomater       Date:  2010-11-11       Impact factor: 8.947

3.  Biodegradable composite scaffolds incorporating an intramedullary rod and delivering bone morphogenetic protein-2 for stabilization and bone regeneration in segmental long bone defects.

Authors:  A M Henslee; P P Spicer; D M Yoon; M B Nair; V V Meretoja; K E Witherel; J A Jansen; A G Mikos; F K Kasper
Journal:  Acta Biomater       Date:  2011-06-30       Impact factor: 8.947

4.  Injectable PolyMIPE Scaffolds for Soft Tissue Regeneration.

Authors:  Robert S Moglia; Jennifer L Robinson; Andrea D Muschenborn; Tyler J Touchet; Duncan J Maitland; Elizabeth Cosgriff-Hernandez
Journal:  Polymer (Guildf)       Date:  2014-01-14       Impact factor: 4.430

Review 5.  Biomimetic coatings for bone tissue engineering of critical-sized defects.

Authors:  Yuelian Liu; Gang Wu; Klaas de Groot
Journal:  J R Soc Interface       Date:  2010-05-19       Impact factor: 4.118

6.  Injectable polyHIPEs as high-porosity bone grafts.

Authors:  Robert S Moglia; Jennifer L Holm; Nicholas A Sears; Caitlin J Wilson; Dawn M Harrison; Elizabeth Cosgriff-Hernandez
Journal:  Biomacromolecules       Date:  2011-09-08       Impact factor: 6.988

7.  Biomedical Applications of Biodegradable Polymers.

Authors:  Bret D Ulery; Lakshmi S Nair; Cato T Laurencin
Journal:  J Polym Sci B Polym Phys       Date:  2011-06-15

Review 8.  Building bridges: leveraging interdisciplinary collaborations in the development of biomaterials to meet clinical needs.

Authors:  Eliza L S Fong; Brendan M Watson; F Kurtis Kasper; Antonios G Mikos
Journal:  Adv Mater       Date:  2012-07-23       Impact factor: 30.849

9.  Injectable dual-gelling cell-laden composite hydrogels for bone tissue engineering.

Authors:  T N Vo; S R Shah; S Lu; A M Tatara; E J Lee; T T Roh; Y Tabata; A G Mikos
Journal:  Biomaterials       Date:  2015-12-31       Impact factor: 12.479

10.  2007 AIChE Alpha Chi Sigma Award: From Material to Tissue: Biomaterial Development, Scaffold Fabrication, and Tissue Engineering.

Authors:  James D Kretlow; Antonios G Mikos
Journal:  AIChE J       Date:  2008-10-29       Impact factor: 3.993

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