Parametric investigation of batch adsorption of proteins onto Polymeric Particles

Background: Effective bimolecular adsorption of proteins onto solid matrices is characterized by in-depth understanding of the biophysical features essential to optimize the adsorption performance, Results: The adsorption of bovine serum albumin (BSA) onto anion-exchange Q-sepharose solid particulat...

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Main Authors: Tan, M., Agyei, D., Pan, S., Danquah, Michael
Format: Journal Article
Published: 2015
Online Access:http://www.ingentaconnect.com/content/ben/cpb/2015/00000016/00000009/art00008?crawler=true
http://hdl.handle.net/20.500.11937/28912
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author Tan, M.
Agyei, D.
Pan, S.
Danquah, Michael
author_facet Tan, M.
Agyei, D.
Pan, S.
Danquah, Michael
author_sort Tan, M.
building Curtin Institutional Repository
collection Online Access
description Background: Effective bimolecular adsorption of proteins onto solid matrices is characterized by in-depth understanding of the biophysical features essential to optimize the adsorption performance, Results: The adsorption of bovine serum albumin (BSA) onto anion-exchange Q-sepharose solid particulate support was investigated in batch adsorption experiments, Adsorption kinetics and isotherms were developed as a function of key industrially relevant parameters such as polymer loading, stirring speed, buffer pH, protein concentration and the state of protein dispersion (solid/aqueous) in order to optimize binding performance and adsorption capacity, Experimental results showed that the first order rate constant is higher at higher stirring speed, higher polymer loading, and under alkaline conditions, with a corresponding increase in equilibrium adsorption capacity, Increasing the stirring speed and using aqueous dispersion protein system increased the adsorption rate, but the maximum protein adsorption was unaffected, Regardless of the stirring speed, the adsorption capacity of the polymer was 2.8 mg/ml, However, doubling the polymer loading increased the adsorption capacity to 9.4 mg/ml, Conclusions: The result demonstrates that there exists a minimum amount of polymer loading required to achieve maximum protein adsorption capacity under specific process conditions.
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spelling curtin-20.500.11937-289122017-01-30T13:08:15Z Parametric investigation of batch adsorption of proteins onto Polymeric Particles Tan, M. Agyei, D. Pan, S. Danquah, Michael Background: Effective bimolecular adsorption of proteins onto solid matrices is characterized by in-depth understanding of the biophysical features essential to optimize the adsorption performance, Results: The adsorption of bovine serum albumin (BSA) onto anion-exchange Q-sepharose solid particulate support was investigated in batch adsorption experiments, Adsorption kinetics and isotherms were developed as a function of key industrially relevant parameters such as polymer loading, stirring speed, buffer pH, protein concentration and the state of protein dispersion (solid/aqueous) in order to optimize binding performance and adsorption capacity, Experimental results showed that the first order rate constant is higher at higher stirring speed, higher polymer loading, and under alkaline conditions, with a corresponding increase in equilibrium adsorption capacity, Increasing the stirring speed and using aqueous dispersion protein system increased the adsorption rate, but the maximum protein adsorption was unaffected, Regardless of the stirring speed, the adsorption capacity of the polymer was 2.8 mg/ml, However, doubling the polymer loading increased the adsorption capacity to 9.4 mg/ml, Conclusions: The result demonstrates that there exists a minimum amount of polymer loading required to achieve maximum protein adsorption capacity under specific process conditions. 2015 Journal Article http://hdl.handle.net/20.500.11937/28912 http://www.ingentaconnect.com/content/ben/cpb/2015/00000016/00000009/art00008?crawler=true restricted
spellingShingle Tan, M.
Agyei, D.
Pan, S.
Danquah, Michael
Parametric investigation of batch adsorption of proteins onto Polymeric Particles
title Parametric investigation of batch adsorption of proteins onto Polymeric Particles
title_full Parametric investigation of batch adsorption of proteins onto Polymeric Particles
title_fullStr Parametric investigation of batch adsorption of proteins onto Polymeric Particles
title_full_unstemmed Parametric investigation of batch adsorption of proteins onto Polymeric Particles
title_short Parametric investigation of batch adsorption of proteins onto Polymeric Particles
title_sort parametric investigation of batch adsorption of proteins onto polymeric particles
url http://www.ingentaconnect.com/content/ben/cpb/2015/00000016/00000009/art00008?crawler=true
http://hdl.handle.net/20.500.11937/28912