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Doppler optical coherence tomography imaging of local fluid flow and shear stress within microporous scaffolds.

TitleDoppler optical coherence tomography imaging of local fluid flow and shear stress within microporous scaffolds.
Publication TypeJournal Article
Year of Publication2009
AuthorsJia Y, Bagnaninchi PO, Yang Y, Haj AEl, Hinds MT, Kirkpatrick SJ, Wang RK
JournalJ Biomed Opt
Volume14
Issue3
Pagination034014
Date Published2009 May-Jun
ISSN1083-3668
KeywordsChitosan, Doppler Effect, Equipment Design, Microfluidics, Phantoms, Imaging, Porosity, Shear Strength, Stress, Mechanical, Tissue Engineering, Tissue Scaffolds, Tomography, Optical Coherence
Abstract

Establishing a relationship between perfusion rate and fluid shear stress in a 3D cell culture environment is an ongoing and challenging task faced by tissue engineers. We explore Doppler optical coherence tomography (DOCT) as a potential imaging tool for in situ monitoring of local fluid flow profiles inside porous chitosan scaffolds. From the measured fluid flow profiles, the fluid shear stresses are evaluated. We examine the localized fluid flow and shear stress within low- and high-porosity chitosan scaffolds, which are subjected to a constant input flow rate of 0.5 ml min(-1). The DOCT results show that the behavior of the fluid flow and shear stress in micropores is strongly dependent on the micropore interconnectivity, porosity, and size of pores within the scaffold. For low-porosity and high-porosity chitosan scaffolds examined, the measured local fluid flow and shear stress varied from micropore to micropore, with a mean shear stress of 0.49+/-0.3 dyn cm(-2) and 0.38+/-0.2 dyn cm(-2), respectively. In addition, we show that the scaffold's porosity and interconnectivity can be quantified by combining analyses of the 3D structural and flow images obtained from DOCT.

DOI10.1117/1.3130345
Alternate JournalJ Biomed Opt
PubMed ID19566307
PubMed Central IDPMC2705882
Grant List1R01 HL093140-01 / HL / NHLBI NIH HHS / United States
BBS/B/04242 / / Biotechnology and Biological Sciences Research Council / United Kingdom
R01 HL093140 / HL / NHLBI NIH HHS / United States
R01 HL093140-01 / HL / NHLBI NIH HHS / United States
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