Generation of a pH gradient in an immobilized enzyme system
- 5 August 1993
- journal article
- Published by Wiley in Biotechnology & Bioengineering
- Vol. 42 (4) , 410-420
- https://doi.org/10.1002/bit.260420403
Abstract
Several examples of two‐step sequential reactions exist where, because of the poor equilibrium conversion by the first reaction, it is desirable to conduct the two reactions simultaneously. In such a scheme, the product of the first reaction is continuously removed by the second reaction, thus not allowing the first reaction to approach chemical equilibrium. Therefore, the first reaction is allowed to proceed in the desired direction at an appreciable rate. However, in many biochemical applications where enzyme catalysts are involved, the enzyme's activities are strong functions of pH. Where the pH optima of the first and second reaction differ by three to four units, the above reaction scheme would be difficult to implement. In these cases, the two reactions can be separated by a thin permeable membrane across which the desired pH gradient is maintained. In this article, it was shown, both by theory and experiment, that a thin, flat membrane of immobilized urease can accomplish this goal when one face of the membrane is exposed to the acidic bulk solution (pHb = 4.5) containing a small quantity of urea (0.01 M). In this particular case, the ammonia that was produced in the membrane consumed the incoming hydrogen ions and thus maintained the desired pH gradient. Experimental results indicate that with sufficient urease loading, the face of the membrane opposite to the bulk solution could be maintained at a pH that would allow many enzymes to realize their maximum activities (≈ 7.5). It was also found that this pH gradient could be maintained even in the presence of a buffer, which greatly enhances the transport of protons into the membrane. © 1993 John Wiley & Sons, Inc.Keywords
This publication has 20 references indexed in Scilit:
- Development of a multienzyme reactor for dopamine synthesis: I. Enzymology and kineticsBiotechnology & Bioengineering, 1992
- A FEASIBILITY ANALYSIS OF A NOVEL APPROACH FOR THE CONVERSION OF XYLOSE TO ETHANOLChemical Engineering Communications, 1992
- Xylose fermentationEnzyme and Microbial Technology, 1988
- Design of enzyme‐pH electrodesAIChE Journal, 1987
- Thermodynamics of the conversion of aqueous xylose to xyluloseBiophysical Chemistry, 1985
- Optimization of the activity in porous media of proton‐generating immobilized enzymatic reactions by weak acid facilitationBiotechnology & Bioengineering, 1985
- Acid generating immobilized enzymic reactions in porous media-activity control via augmentation of proton diffusion by weak acidsChemical Engineering Science, 1984
- Fermentation of D-xylose, xylitol, and D-xylulose by yeastsCanadian Journal of Microbiology, 1982
- Kinetic behavior of immobilized Penicillin acylaseBiotechnology & Bioengineering, 1980
- Buffer-facilitated proton transport. pH profile of bound enzymesBiochimica et Biophysica Acta (BBA) - Enzymology, 1974