Effect of solution pH and ionic strength on the separation of albumin from immunoglobulins (IgG) by selective filtration
- 25 April 1994
- journal article
- research article
- Published by Wiley in Biotechnology & Bioengineering
- Vol. 43 (10) , 960-968
- https://doi.org/10.1002/bit.260431009
Abstract
Although protein fractionation by selective membrane filtration has numerous potential applications in both the downstream processing of fermentation broths and the purification of plasma proteins, the selectivity for proteins with only moderately different molecular weights has generally been quite poor. We have obtained experimental data for the transport of bovine serum albumin (BSA) and immunoglobulins (IgG) through 100,000 and 300,000 molecular weight cutoff polyethersulfone membranes in a stirred ultrafiltration device at different solution pH and ionic strength. The selectivity was a complex function of the flux due to the simultaneous convective and diffusive solute transport through the membrane and the bulk mass transfer limitations in the stirred cell. Under phsioligical conditions (pH 7.0 and 0.15 M NaCI) the maximum selectivity for the BSA‐IgG separation was only about 2.0 due primarily to the effects of protein adsorption. In contrast, BSA‐IgG selectivities as high as 50 were obtained with the same membranes when the protein solution was at pH 4.8 and 0.0015 M NaCl. This enhanced selectivity was a direct result of the electrosatatic contributions to both bulk and membrane transport. The membrane selectivity could actually be reversed, with higher passage of the larger IgG molecules, by using a 300,000 molecular weight cutoff membrane at pH 7.4 and an ionic strength of 0.0015 M NaCl. These results clearly demonstrate that the effectiveness of selective protein filtration can be dramatically altered by appropriately controlling electrostatic interactions through changes in pH and/or ionic strength. © 1994 John Wiley & Sons, Inc.Keywords
This publication has 20 references indexed in Scilit:
- Separation albumin–PEG: Transmission of PEG through ultrafiltration membranesBiotechnology & Bioengineering, 1993
- Transport and separation of proteins by ultrafiltration through sorptive and non-sorptive membranesJournal of Membrane Science, 1992
- Dextran transport through asymmetric ultrafiltration membranes: Comparison with hydrodynamic modelsJournal of Membrane Science, 1992
- Increase in the efficiency of membrane fractionationJournal of Membrane Science, 1992
- Diffusive and convective protein transport through asymmetric membranesAIChE Journal, 1991
- Separation of proteins by surface modified polysulfone membranesJournal of Membrane Science, 1991
- Theoretical effects of macromolecule concentration and charge on membrane rejection coefficientsJournal of Membrane Science, 1984
- The role of macromolecular adsorption in fouling of ultrafiltration membranesJournal of Membrane Science, 1983
- The effect of electric charge on the diffusion of macromoleculesThe Journal of Chemical Physics, 1974
- Diffusion studies of bovine serum albumin by quasielastic light scatteringBiochemistry, 1974