Diffusivities of macromolecules in composite hydrogels

被引:53
作者
Kosto, KB [1 ]
Deen, WM [1 ]
机构
[1] MIT, Dept Chem Engn, Cambridge, MA 02139 USA
关键词
composite hydrogels; diffusivity; agarose; Ficoll; macromolecules; globular proteins; Darcy permeability; FRAP;
D O I
10.1002/aic.10216
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Diffusivities of fluorescein-labeled macromolecules were measured in dilute aqueous solution (D-infinity), agarose gels (D-a), and agarose-dextran composite gels (D) using fluorescence recovery after photobleaching. Macromolecules with Stokes-Einstein radii (r(s)) ranging from 2.7 to 5.9 nm were used, including two globular proteins (ovalbumin and BSA) and three narrow fractions of Ficoll, a spherical polysaccharide. Gels with agarose volume fractions of 0.040 and 0.080 were studied with dextran volume fractions ranging from 0 to 0.0076 and 0 to 0.011, respectively. For both agarose concentrations, the Darcy permeability (kappa) decreased by an order of magnitude as the dextran concentration in the gel was increased from zero to its maximum value. For a given gel composition, the relative diffusivity (D/D-infinity) decreased as r(s), increased, a hallmark of hindered diffusion. For a given test molecule, D/D-infinity was lowest in the most concentrated gets, as expected. As the dextran concentration was increased to its maximum value, two- to threefold decreases in relative diffusivity resulted for both agarose gel concentrations. The reductions in macromolecular diffusivities caused by incorporating various amounts of dextran into agarose gels could be predicted fairly accurately from the measured decreases in kappa, using an effective medium model. This suggests that one might be able to predict diffusivity variations in complex, multicomponent hydrogels (such as those in body tissue) in the same manner, provided that values Of K can be obtained. (C) 2004 American Institute of Chemical Engineers.
引用
收藏
页码:2648 / 2658
页数:11
相关论文
共 49 条
[1]   Solute diffusion within hydrogels. Mechanisms and models [J].
Amsden, B .
MACROMOLECULES, 1998, 31 (23) :8382-8395
[2]  
[Anonymous], 1973, Carbohydrate Research
[3]  
BERK DA, 1993, BIOPHYS J, V65, P2428, DOI 10.1016/S0006-3495(93)81326-2
[4]   INFLUENCE OF MOLECULAR-CONFIGURATION ON THE PASSAGE OF MACROMOLECULES ACROSS THE GLOMERULAR CAPILLARY WALL [J].
BOHRER, MP ;
DEEN, WM ;
ROBERTSON, CR ;
TROY, JL ;
BRENNER, BM .
JOURNAL OF GENERAL PHYSIOLOGY, 1979, 74 (05) :583-593
[5]   Partitioning and diffusion of large molecules in fibrous structures [J].
Bosma, JC ;
Wesselingh, JA .
JOURNAL OF CHROMATOGRAPHY B, 2000, 743 (1-2) :169-180
[6]  
Brady J.F., 1994, AIChE Annual Meeting, San Fransisco, CA, 1994, P320
[7]  
BRINKMAN HC, 1947, APPL SCI RES, V1, P27
[8]   PROTEIN PERMEATION THROUGH POLY(VINYL ALCOHOL) HYDROGEL MEMBRANES [J].
BURCZAK, K ;
FUJISATO, T ;
HATADA, M ;
IKADA, Y .
BIOMATERIALS, 1994, 15 (03) :231-238
[9]   Hindered diffusion of spherical macromolecules through dilute fibrous media [J].
Clague, DS ;
Phillips, RJ .
PHYSICS OF FLUIDS, 1996, 8 (07) :1720-1731
[10]   A numerical calculation of the hydraulic permeability of three-dimensional disordered fibrous media [J].
Clague, DS ;
Phillips, RJ .
PHYSICS OF FLUIDS, 1997, 9 (06) :1562-1572