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Short-Time Transport Properties of Bidisperse Suspensions of Immunoglobulins and Serum Albumins Consistent with a Colloid Physics Picture

[Image: see text] The crowded environment of biological systems such as the interior of living cells is occupied by macromolecules with a broad size distribution. This situation of polydispersity might influence the dependence of the diffusive dynamics of a given tracer macromolecule in a monodisper...

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Autores principales: Beck, Christian, Grimaldo, Marco, Lopez, Hender, Da Vela, Stefano, Sohmen, Benedikt, Zhang, Fajun, Oettel, Martin, Barrat, Jean-Louis, Roosen-Runge, Felix, Schreiber, Frank, Seydel, Tilo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9527755/
https://www.ncbi.nlm.nih.gov/pubmed/36112146
http://dx.doi.org/10.1021/acs.jpcb.2c02380
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author Beck, Christian
Grimaldo, Marco
Lopez, Hender
Da Vela, Stefano
Sohmen, Benedikt
Zhang, Fajun
Oettel, Martin
Barrat, Jean-Louis
Roosen-Runge, Felix
Schreiber, Frank
Seydel, Tilo
author_facet Beck, Christian
Grimaldo, Marco
Lopez, Hender
Da Vela, Stefano
Sohmen, Benedikt
Zhang, Fajun
Oettel, Martin
Barrat, Jean-Louis
Roosen-Runge, Felix
Schreiber, Frank
Seydel, Tilo
author_sort Beck, Christian
collection PubMed
description [Image: see text] The crowded environment of biological systems such as the interior of living cells is occupied by macromolecules with a broad size distribution. This situation of polydispersity might influence the dependence of the diffusive dynamics of a given tracer macromolecule in a monodisperse solution on its hydrodynamic size and on the volume fraction. The resulting size dependence of diffusive transport crucially influences the function of a living cell. Here, we investigate a simplified model system consisting of two constituents in aqueous solution, namely, of the proteins bovine serum albumin (BSA) and bovine polyclonal gamma-globulin (Ig), systematically depending on the total volume fraction and ratio of these constituents. From high-resolution quasi-elastic neutron spectroscopy, the separate apparent short-time diffusion coefficients for BSA and Ig in the mixture are extracted, which show substantial deviations from the diffusion coefficients measured in monodisperse solutions at the same total volume fraction. These deviations can be modeled quantitatively using results from the short-time rotational and translational diffusion in a two-component hard sphere system with two distinct, effective hydrodynamic radii. Thus, we find that a simple colloid picture well describes short-time diffusion in binary mixtures as a function of the mixing ratio and the total volume fraction. Notably, the self-diffusion of the smaller protein BSA in the mixture is faster than the diffusion in a pure BSA solution, whereas the self-diffusion of Ig in the mixture is slower than in the pure Ig solution.
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spelling pubmed-95277552022-10-04 Short-Time Transport Properties of Bidisperse Suspensions of Immunoglobulins and Serum Albumins Consistent with a Colloid Physics Picture Beck, Christian Grimaldo, Marco Lopez, Hender Da Vela, Stefano Sohmen, Benedikt Zhang, Fajun Oettel, Martin Barrat, Jean-Louis Roosen-Runge, Felix Schreiber, Frank Seydel, Tilo J Phys Chem B [Image: see text] The crowded environment of biological systems such as the interior of living cells is occupied by macromolecules with a broad size distribution. This situation of polydispersity might influence the dependence of the diffusive dynamics of a given tracer macromolecule in a monodisperse solution on its hydrodynamic size and on the volume fraction. The resulting size dependence of diffusive transport crucially influences the function of a living cell. Here, we investigate a simplified model system consisting of two constituents in aqueous solution, namely, of the proteins bovine serum albumin (BSA) and bovine polyclonal gamma-globulin (Ig), systematically depending on the total volume fraction and ratio of these constituents. From high-resolution quasi-elastic neutron spectroscopy, the separate apparent short-time diffusion coefficients for BSA and Ig in the mixture are extracted, which show substantial deviations from the diffusion coefficients measured in monodisperse solutions at the same total volume fraction. These deviations can be modeled quantitatively using results from the short-time rotational and translational diffusion in a two-component hard sphere system with two distinct, effective hydrodynamic radii. Thus, we find that a simple colloid picture well describes short-time diffusion in binary mixtures as a function of the mixing ratio and the total volume fraction. Notably, the self-diffusion of the smaller protein BSA in the mixture is faster than the diffusion in a pure BSA solution, whereas the self-diffusion of Ig in the mixture is slower than in the pure Ig solution. American Chemical Society 2022-09-16 2022-09-29 /pmc/articles/PMC9527755/ /pubmed/36112146 http://dx.doi.org/10.1021/acs.jpcb.2c02380 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Beck, Christian
Grimaldo, Marco
Lopez, Hender
Da Vela, Stefano
Sohmen, Benedikt
Zhang, Fajun
Oettel, Martin
Barrat, Jean-Louis
Roosen-Runge, Felix
Schreiber, Frank
Seydel, Tilo
Short-Time Transport Properties of Bidisperse Suspensions of Immunoglobulins and Serum Albumins Consistent with a Colloid Physics Picture
title Short-Time Transport Properties of Bidisperse Suspensions of Immunoglobulins and Serum Albumins Consistent with a Colloid Physics Picture
title_full Short-Time Transport Properties of Bidisperse Suspensions of Immunoglobulins and Serum Albumins Consistent with a Colloid Physics Picture
title_fullStr Short-Time Transport Properties of Bidisperse Suspensions of Immunoglobulins and Serum Albumins Consistent with a Colloid Physics Picture
title_full_unstemmed Short-Time Transport Properties of Bidisperse Suspensions of Immunoglobulins and Serum Albumins Consistent with a Colloid Physics Picture
title_short Short-Time Transport Properties of Bidisperse Suspensions of Immunoglobulins and Serum Albumins Consistent with a Colloid Physics Picture
title_sort short-time transport properties of bidisperse suspensions of immunoglobulins and serum albumins consistent with a colloid physics picture
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9527755/
https://www.ncbi.nlm.nih.gov/pubmed/36112146
http://dx.doi.org/10.1021/acs.jpcb.2c02380
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