Title of article
Nutrient diffusion and simple nth-order consumption in regenerative tissue and biocatalytic sensors Original Research Article
Author/Authors
Laurence A. Belfiore، نويسنده , , Michael L. Floren، نويسنده , , Fabio Z. Volpato، نويسنده , , Alexandre T. Paulino، نويسنده , , Carol J. Belfiore، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2011
Pages
9
From page
65
To page
73
Abstract
This contribution addresses intra-tissue molar density profiles for nutrients, oxygen, growth factors, and other essential ingredients that anchorage-dependent cells require for successful proliferation on biocompatible surfaces. One-dimensional transient and steady state models of the reaction–diffusion equation are solved to correct a few deficiencies in the first illustrative example of diffusion and zeroth-order rates of consumption in tissues with rectangular geometry, as discussed in Ref. [(Griffith and Swartz, 2006) 1]. The functional form of the molar density profile for each species depends on geometry and the magnitude of the species-specific intra-tissue Damköhler number. The tissueʹs central core is reactant starved at high consumption rates and low rates of intra-tissue diffusion when the Damköhler number exceeds its geometry-sensitive critical value. Ideal tissue engineering designs avoid the diffusion-limited regime such that attached cells are exposed to all of the ingredients required for proliferation everywhere within a regenerative matrix. Analytical and numerical molar density profiles that satisfy the unsteady state modified diffusion equation with pseudo-homogeneous nth-order rates of intra-tissue consumption (i.e., n = 0,1,2) allow one to (i) predict von Kármán–Pohlhausen mass transfer boundary layer thicknesses, measured inward from the external biomaterial surface toward its central core, and, most importantly, (ii) estimate the time required to achieve steady state conditions for regenerative tissue growth and biocatalytic sensing.
Keywords
Intra-tissue Damk?hler number , Zeroth-order reaction , Critical Damk?hler number , Regenerative tissue , Biosensors , Fickיs second law , Unsteady state diffusion , Reaction–diffusion equation , Modified diffusion equation ,
Journal title
Biophysical Chemistry
Serial Year
2011
Journal title
Biophysical Chemistry
Record number
1120444
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