The Effects of Urease Immobilization on the Transport Characteristics and Protein Adsorption Capacity of Cellulose Acetate Based Hemodialysis Membranes
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Alsoy Altınkaya, Sacide
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GOLD
Green Open Access
Yes
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No
Abstract
In this study, cellulose acetate (CA) based hemodialysis membranes were prepared by a dry phase inversion method and the influences of urease immobilization on the clearing performance and protein adsorption capacity of the membranes were investigated. Permeation experiments have shown that modification of CA membranes with urease immobilization not only enhanced the transport rate of urea but also increased the permeation coefficients of uric acid and creatinine by changing the structure of the membrane. Furthermore, the protein adsorption capacity of the CA membranes decreased. On the other hand, the mechanical strength of the modified CA membrane did not change significantly compared with that of the unmodified one. A mathematical model was derived to determine the rate of mass transfer of urea through modified CA membranes. Model predictions along with the experimental data suggest that urease immobilization can be used as an alternative method in preparing CA based hemodialysis membranes with improved transport characteristics and biocompatibility through reduced protein adsorption capacities.
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Keywords
Permeation, Alternative methods, Cellulose acetates, Uric acids, Hemodialysis membranes, Transport characteristics, Transport characteristics, Hemodialysis membranes, Cellulose acetates, Proteins, Membranes, Artificial, Uric acids, Permeation, Models, Theoretical, Alternative methods, Enzymes, Immobilized, Models, Biological, Urease, Permeability, Diffusion, Kinetics, Protein Transport, Renal Dialysis, Materials Testing, Adsorption, Cellulose
Fields of Science
02 engineering and technology, 0210 nano-technology
Citation
Yaşar Mahlıçlı, F., and Alsoy Altınkaya, S. (2009). The effects of urease immobilization on the transport characteristics and protein adsorption capacity of cellulose acetate based hemodialysis membranes. Journal of Materials Science: Materials in Medicine, 20(10), 2167-2179. doi:10.1007/s10856-009-3776-3
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OpenCitations Citation Count
7
Volume
20
Issue
10
Start Page
2167
End Page
2179
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