Pore network modelling of affinity chromatography:: determination of the dynamic profiles of the pore diffusivity of β-galactosidase and its effect on column performance as the loading of β-galactosidase onto anti-β-galactosidase varies with time

被引:18
作者
Meyers, JJ
Crosser, OK
Liapis, AI
机构
[1] Univ Missouri, Dept Chem Engn, Rolla, MO 65409 USA
[2] Univ Missouri, Biochem Proc Inst, Rolla, MO 65409 USA
来源
JOURNAL OF BIOCHEMICAL AND BIOPHYSICAL METHODS | 2001年 / 49卷 / 1-3期
关键词
affinity chromatography; pore network modeling; pore size distribution; pore connectivity; beta-galactosidase; anti-beta-galactosidase; dynamic profiles of pore diffusion coefficient; dynamic adsorptive capacity of column;
D O I
10.1016/S0165-022X(01)00193-2
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
A three-dimensional pore network model for diffusion in porous adsorbent particles was employed in a dynamic adsorption model that simulates the adsorption of a solute in porous particles packed in a chromatographic column. The solution of the combined model yielded the dynamic profiles of the pore diffusion coefficient of beta -galactosidase along the radius of porous adsorbent particles and along the length of the column as the loading of beta -galactosidase onto anti-beta -galactosidase immobilized on the surface of the pores of the particles occurred, and, the dynamic adsorptive capacity of the chromatographic column as a function of the design and operational parameters of the chromatographic system. It was found that for a given column length the dynamic profiles of the pore diffusion coefficient were influenced by (a) the superficial fluid velocity in the column, (b) the diameter of the adsorbent particles, and (c) the pore connectivity of the porous structure of the adsorbent particles. The effect of the magnitude of the pore connectivity on the dynamic profiles of the pore diffusion coefficient of beta -galactosidase increased as the diameter of the adsorbent particles and the superficial fluid velocity in the column increased. The dynamic adsorptive capacity of the column increased as (i) the particle diameter and the superficial fluid velocity in the column decreased, and (ii) the column length and the pore connectivity increased. In preparative affinity chromatography, it is desirable to obtain high throughputs within acceptable pressure gradients, and this may require the employment of larger diameter adsorbent particles. In such a case, longer column lengths satisfying acceptable pressure gradients with adsorbent particles having higher pore connectivity values could provide high dynamic adsorptive capacities. An alternative chromatographic system could he comprised of a long column packed with large particles which have fractal pores, (fractal particles) that have high pore connectivities and which allow high intraparticle dillusional and convective flock mass transfer rates providing high throughputs and high dynamic adsorptive capacities. If large scale monoliths could be made to be reproducible and operationally stable, they could also offer all alternative mode of operation that could provide high throughputs and high dynamic adsorptive capacities. (C) 2001 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:123 / 139
页数:17
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