Literature DB >> 18077245

Correlating cell morphology and osteoid mineralization relative to strain profile for bone tissue engineering applications.

M A Wood1, Y Yang, E Baas, D O Meredith, R G Richards, J H Kuiper, A J El Haj.   

Abstract

A number of bone tissue engineering strategies use porous three-dimensional scaffolds in combination with bioreactor regimes. The ability to understand cell behaviour relative to strain profile will allow for the effects of mechanical conditioning in bone tissue engineering to be realized and optimized. We have designed a model system to investigate the effects of strain profile on bone cell behaviour. This simplified model has been designed with a view to providing insight into the types of strain distribution occurring across a single pore of a scaffold subjected to perfusion-compression conditioning. Local strains were calculated at the surface of the pore model using finite-element analysis. Scanning electron microscopy was used in secondary electron mode to identify cell morphology within the pore relative to local strains, while backscattered electron detection in combination with X-ray microanalysis was used to identify calcium deposition. Morphology was altered according to the level of strain experienced by bone cells, where cells subjected to compressive strains (up to 0.61%) appeared extremely rounded while those experiencing zero and tensile strain (up to 0.81%) were well spread. Osteoid mineralization was similarly shown to be dose dependent with respect to substrate strain within the pore model, with the highest level of calcium deposition identified in the intermediate zones of tension/compression.

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Year:  2008        PMID: 18077245      PMCID: PMC2607462          DOI: 10.1098/rsif.2007.1265

Source DB:  PubMed          Journal:  J R Soc Interface        ISSN: 1742-5662            Impact factor:   4.118


  24 in total

Review 1.  A model for mechanotransduction in bone cells: the load-bearing mechanosomes.

Authors:  Fred M Pavalko; Suzanne M Norvell; David B Burr; Charles H Turner; Randall L Duncan; Joseph P Bidwell
Journal:  J Cell Biochem       Date:  2003-01-01       Impact factor: 4.429

2.  Tissue engineering of bone: effects of mechanical strain on osteoblastic cells in type I collagen matrices.

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Journal:  Biomaterials       Date:  2005-01       Impact factor: 12.479

Review 3.  Exercise as an anabolic stimulus for bone.

Authors:  Charles H Turner; Alexander G Robling
Journal:  Curr Pharm Des       Date:  2004       Impact factor: 3.116

Review 4.  Orthopaedic tissue engineering: from laboratory to the clinic.

Authors:  Barry W Oakes
Journal:  Med J Aust       Date:  2004-03-01       Impact factor: 7.738

Review 5.  Bone tissue engineering: state of the art and future trends.

Authors:  António J Salgado; Olga P Coutinho; Rui L Reis
Journal:  Macromol Biosci       Date:  2004-08-09       Impact factor: 4.979

6.  Errors in quantitative backscattered electron analysis of bone standardized by energy-dispersive x-ray spectrometry.

Authors:  E G Vajda; J G Skedros; R D Bloebaum
Journal:  Scanning       Date:  1998-10       Impact factor: 1.932

Review 7.  Nuclear matrix proteins and osteoblast gene expression.

Authors:  J P Bidwell; M Alvarez; H Feister; J Onyia; J Hock
Journal:  J Bone Miner Res       Date:  1998-02       Impact factor: 6.741

8.  Bone injury response. An animal model for testing theories of regulation.

Authors:  P S Landry; A A Marino; K K Sadasivan; J A Albright
Journal:  Clin Orthop Relat Res       Date:  1996-11       Impact factor: 4.176

Review 9.  Molecular biology of matrix vesicles.

Authors:  H C Anderson
Journal:  Clin Orthop Relat Res       Date:  1995-05       Impact factor: 4.176

Review 10.  Mechanotransduction of bone cells in vitro: mechanobiology of bone tissue.

Authors:  M Mullender; A J El Haj; Y Yang; M A van Duin; E H Burger; J Klein-Nulend
Journal:  Med Biol Eng Comput       Date:  2004-01       Impact factor: 2.602

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