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Protein adsorption and transport in polymer-functionalized ion-exchangers

Journal

JOURNAL OF CHROMATOGRAPHY A
Volume 1218, Issue 49, Pages 8748-8759

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.chroma.2011.06.061

Keywords

Ion exchange chromatography; Proteins; Retention mechanism; Adsorption isotherm; Partitioning; Diffusion

Funding

  1. National Science Foundation [CBET-0828590]
  2. Div Of Chem, Bioeng, Env, & Transp Sys
  3. Directorate For Engineering [0828590] Funding Source: National Science Foundation

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A wide variety of stationary phases is available for use in preparative chromatography of proteins, covering different base matrices, pore structures and modes of chromatography. There has recently been significant growth in the number of such materials in which the base matrix is derivatized to add a covalently attached or grafted polymer layer or, in some cases, a hydrogel that fills the pore space. This review summarizes the main structural and functional features of ion exchangers of this kind, which represent the largest class of such materials. Although the adsorption and transport properties may generally be used operationally and modeled phenomenologically using the same methods as are used for proteins in conventional media, there are noteworthy mechanistic differences in protein behavior in these adsorbents. A fundamental difference in protein retention is that it may be portrayed as partitioning into a three-dimensional polymer phase rather than adsorption at an extended two-dimensional surface, as applies in more conventional media. Beyond this partitioning behavior, however, the polymer-functionalized media often display rapid intraparticle transport that, while qualitatively comparable to that in conventional media, is sufficiently rapid quantitatively under certain conditions that it can lead to clear benefits in key measures of performance such as the dynamic binding capacity. Although possible mechanistic bases for the retention and transport properties are discussed, appreciable areas of uncertainty make detailed mechanistic modeling very challenging, and more detailed experimental characterization is likely to be more productive. (C) 2011 Elsevier B.V. All rights reserved.

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