Removal of endotoxins from plasmid DNA: Analysis of aggregative interaction of mobile divalent metal cations with endotoxins and plasmid DNA

Endotoxin lipopolysaccharide removal from plasmid DNA-based vaccine remains a very challenging task for bioprocess engineers. This paper examined the potential use and advantages of divalent cation (Zn2+, Ca2+, Mg2+) induced aggregation as a plasmid DNA purification method for lipopolysaccharide rem...

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Main Authors: Ongkudon, C., Hodges, E., Murphy, K., Danquah, Michael
Format: Journal Article
Published: 2012
Online Access:http://hdl.handle.net/20.500.11937/47699
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author Ongkudon, C.
Hodges, E.
Murphy, K.
Danquah, Michael
author_facet Ongkudon, C.
Hodges, E.
Murphy, K.
Danquah, Michael
author_sort Ongkudon, C.
building Curtin Institutional Repository
collection Online Access
description Endotoxin lipopolysaccharide removal from plasmid DNA-based vaccine remains a very challenging task for bioprocess engineers. This paper examined the potential use and advantages of divalent cation (Zn2+, Ca2+, Mg2+) induced aggregation as a plasmid DNA purification method for lipopolysaccharide removal. Analysis of zeta potential, hydrodynamic size, percentage of aggregation; UV-Vis spectroscopy and electron microscopy were performed to determine the optimal cation for preferential aggregation of lipopolysaccharide over plasmid DNA. The results from the hydrodynamic size analysis showed that the addition of Zn2+ resulted in the maximum theoretical number of lipopolysaccharide molecules per aggregate particle. Dynamic light scattering analysis showed that plasmid DNA aggregates formed a larger maximum hydrodynamic size when it was treated with Ca 2+ than the other two cations. The Km value for lipopolysaccharide-Zn2+ was substantially low (0.28 M) and considerably large (>2 M) for plasmid DNA-Zn2+. Scatchard plots for plasmid DNA cations showed positive slopes indicating that there was a minimum concentration of plasmid DNA or cations before a significant aggregation occurred. This work concluded that Zn2+ had the most preferential aggregative interaction with lipopolysaccharide compared to Mg2+ and Ca2+.
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spelling curtin-20.500.11937-476992017-09-13T14:16:24Z Removal of endotoxins from plasmid DNA: Analysis of aggregative interaction of mobile divalent metal cations with endotoxins and plasmid DNA Ongkudon, C. Hodges, E. Murphy, K. Danquah, Michael Endotoxin lipopolysaccharide removal from plasmid DNA-based vaccine remains a very challenging task for bioprocess engineers. This paper examined the potential use and advantages of divalent cation (Zn2+, Ca2+, Mg2+) induced aggregation as a plasmid DNA purification method for lipopolysaccharide removal. Analysis of zeta potential, hydrodynamic size, percentage of aggregation; UV-Vis spectroscopy and electron microscopy were performed to determine the optimal cation for preferential aggregation of lipopolysaccharide over plasmid DNA. The results from the hydrodynamic size analysis showed that the addition of Zn2+ resulted in the maximum theoretical number of lipopolysaccharide molecules per aggregate particle. Dynamic light scattering analysis showed that plasmid DNA aggregates formed a larger maximum hydrodynamic size when it was treated with Ca 2+ than the other two cations. The Km value for lipopolysaccharide-Zn2+ was substantially low (0.28 M) and considerably large (>2 M) for plasmid DNA-Zn2+. Scatchard plots for plasmid DNA cations showed positive slopes indicating that there was a minimum concentration of plasmid DNA or cations before a significant aggregation occurred. This work concluded that Zn2+ had the most preferential aggregative interaction with lipopolysaccharide compared to Mg2+ and Ca2+. 2012 Journal Article http://hdl.handle.net/20.500.11937/47699 10.1002/jssc.201200237 restricted
spellingShingle Ongkudon, C.
Hodges, E.
Murphy, K.
Danquah, Michael
Removal of endotoxins from plasmid DNA: Analysis of aggregative interaction of mobile divalent metal cations with endotoxins and plasmid DNA
title Removal of endotoxins from plasmid DNA: Analysis of aggregative interaction of mobile divalent metal cations with endotoxins and plasmid DNA
title_full Removal of endotoxins from plasmid DNA: Analysis of aggregative interaction of mobile divalent metal cations with endotoxins and plasmid DNA
title_fullStr Removal of endotoxins from plasmid DNA: Analysis of aggregative interaction of mobile divalent metal cations with endotoxins and plasmid DNA
title_full_unstemmed Removal of endotoxins from plasmid DNA: Analysis of aggregative interaction of mobile divalent metal cations with endotoxins and plasmid DNA
title_short Removal of endotoxins from plasmid DNA: Analysis of aggregative interaction of mobile divalent metal cations with endotoxins and plasmid DNA
title_sort removal of endotoxins from plasmid dna: analysis of aggregative interaction of mobile divalent metal cations with endotoxins and plasmid dna
url http://hdl.handle.net/20.500.11937/47699