2016•Unpublished venueRequires access

Effects of chaotropic and antichaotropic agents on elution of poliovirus adsorbed on membrane filters (virus/surfactant/hydrophobic interactions/electrostatic interactions)

Samuel R. Farrah

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Abstract

The association of poliovirus with membrane fil- ters results from both electrostatic and hydrophobic interactions. At low pH, electrostatic interactions appear to dominate. How- ever, at high pH, hydrophobic interactions appear to dominate with both Millipore and Zeta plus filters. With both filters, viral elution was prevented at high pH by the presence of antichaotropic salts, which strengthen hydrophobic associations. This effect was antagonized by detergents and by chaotropic salts, which weaken hydrophobic associations. Excellent correlation was observed be- tween viral elution, the solubilization of adenine, and the micelle- formation process in the presence of chaotropic and antichaotropic agents. Such simple measurements of the relative ability of sol- vents to accomodate hydrophobic groups may be of predictive value in designing methods for concentration and purification of viruses. The hypothesis that hydrophobic interactions are the pri- mary force involved in the stabilization of virus attachment at high pH is consistent with observations that cannot be explained by consideration of electrostatic interactions as the major stabilizing factor.

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What this paper is about

The association of poliovirus with membrane fil- ters results from both electrostatic and hydrophobic interactions. At low pH, electrostatic interactions appear to dominate. How- ever, at high pH, hydrophobic interactions appear to dominate with both Millipore and Zeta plus filters. With both filters, viral elution was prevented at high pH by the presence of antichaotropic salts, which strengthen hydrophobic associations. This effect was antagonized by detergents and by chaotropic salts, which weaken hydrophobic associations. Excellent correlation was observed be- tween viral elution, the solubilization of adenine, and the micelle- formation process in the presence of chaotropic and antichaotropic agents. Such simple measurements of the relative ability of sol- vents to accomodate hydrophobic groups may be of predictive value in designing methods for concentration and purification of viruses. The hypothesis that hydrophobic interactions are the pri- mary force involved in the stabilization of virus attachment at high pH is consistent with observations that cannot be explained by consideration of electrostatic interactions as the major stabilizing factor.

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Available abstract

The association of poliovirus with membrane fil- ters results from both electrostatic and hydrophobic interactions. At low pH, electrostatic interactions appear to dominate. How- ever, at high pH, hydrophobic interactions appear to dominate with both Millipore and Zeta plus filters. With both filters, viral elution was prevented at high pH by the presence of antichaotropic salts, which strengthen hydrophobic associations. This effect was antagonized by detergents and by chaotropic salts, which weaken hydrophobic associations. Excellent correlation was observed be- tween viral elution, the solubilization of adenine, and the micelle- formation process in the presence of chaotropic and antichaotropic agents. Such simple measurements of the relative ability of sol- vents to accomodate hydrophobic groups may be of predictive value in designing methods for concentration and purification of viruses. The hypothesis that hydrophobic interactions are the pri- mary force involved in the stabilization of virus attachment at high pH is consistent with observations that cannot be explained by consideration of electrostatic interactions as the major stabilizing factor.

Key concepts: Chaotropic agent, Hydrophobic effect, Chemistry, Hydrophilic interaction chromatography, Pulmonary surfactant, Elution, Zeta potential, Membrane

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Effects of chaotropic and antichaotropic agents on elution of poliovirus adsorbed on membrane filters (virus/surfactant/hydrophobic interactions/electrostatic interactions) — Research Paper | ScholarLens