Estimating and leveraging protein diffusion on ion-exchange resin surfaces

Proc Natl Acad Sci U S A. 2020 Mar 31;117(13):7004-7010. doi: 10.1073/pnas.1921499117. Epub 2020 Mar 16.

Abstract

Protein mobility at solid-liquid interfaces can affect the performance of applications such as bioseparations and biosensors by facilitating reorganization of adsorbed protein, accelerating molecular recognition, and informing the fundamentals of adsorption. In the case of ion-exchange chromatographic beads with small, tortuous pores, where the existence of surface diffusion is often not recognized, slow mass transfer can result in lower resin capacity utilization. We demonstrate that accounting for and exploiting protein surface diffusion can alleviate the mass-transfer limitations on multiple significant length scales. Although the surface diffusivity has previously been shown to correlate with ionic strength (IS) and binding affinity, we show that the dependence is solely on the binding affinity, irrespective of pH, IS, and resin ligand density. Different surface diffusivities give rise to different protein distributions within the resin, as characterized using confocal microscopy and small-angle neutron scattering (length scales of micrometer and nanometer, respectively). The binding dependence of surface diffusion inspired a protein-loading approach in which the binding affinity, and hence the surface diffusivity, is modulated by varying IS. Such gradient loading increased the protein uptake efficiency by up to 43%, corroborating the importance of protein surface diffusion in protein transport in ion-exchange chromatography.

Keywords: dynamic binding capacity; protein transport; protein–surface interaction; small-angle neutron scattering; surface diffusion.

Publication types

  • Research Support, N.I.H., Extramural

MeSH terms

  • Diffusion
  • Ion Exchange Resins / chemistry*
  • Models, Chemical*
  • Proteins / chemistry*

Substances

  • Ion Exchange Resins
  • Proteins