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Pore diffusion model for a two‐substrate enzymatic reaction: Application to galactose oxidase immobilized on porous glass particles
Author(s) -
Dahodwala S. K.,
Humphrey A. E.,
Weibel M. K.
Publication year - 1976
Publication title -
biotechnology and bioengineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.136
H-Index - 189
eISSN - 1097-0290
pISSN - 0006-3592
DOI - 10.1002/bit.260180711
Subject(s) - diffusion , glucose oxidase , substrate (aquarium) , chemistry , porous glass , galactose oxidase , galactose , thiele modulus , mass transfer , porosity , immobilized enzyme , chromatography , kinetic energy , porous medium , enzyme , catalysis , chemical engineering , thermodynamics , organic chemistry , physics , oceanography , quantum mechanics , engineering , geology
An analysis of the pore diffusion model involving a two‐substrate enzymatic reaction is presented. The resulting equations have been applied to the case of galactose oxidase catalyzed oxidation of galactose when the enzyme is immobilized on porous glass particles. The physical constants of the system were obtained by theoretical predictions and the enzyme concentration in the porous medium was derived from the experimental results. The calculations were performed with the assumption that the kinetic parameters of the enzyme remain unchanged upon immobilization. The theoretically calculated effectiveness factors were compared with the experimental effectiveness factors determined from the batch kinetic experiments and were found to be in agreement. The results are presented as effectiveness factor plots graphed as functions of bulk galactose and oxygen concentrations. The model was extended in order to study the effect of external mass transfer coefficients and pore enzyme concentrations on the effectiveness factors.

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