Literature DB >> 21723836

Hindered diffusion in polymeric solutions studied by fluorescence correlation spectroscopy.

Silviya P Zustiak1, Ralph Nossal, Dan L Sackett.   

Abstract

Diffusion of molecules in the crowded and charged interior of the cell has long been of interest for understanding cellular processes. Here, we introduce a model system of hindered diffusion that includes both crowding and binding. In particular, we obtained the diffusivity of the positively charged protein, ribonuclease A (RNase), in solutions of dextrans of various charges (binding) and concentrations (crowding), as well as combinations of both, in a buffer of physiological ionic strength. Using fluorescence correlation spectroscopy, we observed that the diffusivity of RNase was unaffected by the presence of positively charged or neutral dextrans in the dilute regime but was affected by crowding at higher polymer concentrations. Conversely, protein diffusivity was significantly reduced by negatively charged dextrans, even at 0.4 μM (0.02% w/v) dextran. The diffusivity of RNase decreased with increasing concentrations of negative dextran, and the amount of bound RNase increased until it reached a plateau of ∼80% bound RNase. High salt concentrations were used to establish the electrostatic nature of the binding. Binding of RNase to the negatively charged dextrans was further confirmed by ultrafiltration.
Copyright © 2011 Biophysical Society. Published by Elsevier Inc. All rights reserved.

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Year:  2011        PMID: 21723836      PMCID: PMC3127197          DOI: 10.1016/j.bpj.2011.05.035

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  40 in total

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  12 in total

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Review 5.  Physicochemical properties of cells and their effects on intrinsically disordered proteins (IDPs).

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8.  Development of Nanosilicate-Hydrogel Composites for Sustained Delivery of Charged Biopharmaceutics.

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9.  Motion of Molecular Probes and Viscosity Scaling in Polyelectrolyte Solutions at Physiological Ionic Strength.

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10.  Homogenization Theory for the Prediction of Obstructed Solute Diffusivity in Macromolecular Solutions.

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