Please use this identifier to cite or link to this item: doi:10.22028/D291-28968
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Title: Quantifying the influence of the ion cloud on SAXS profiles of charged proteins
Author(s): Ivanović, Miloš T.
Bruetzel, Linda K.
Shevchuk, Roman
Lipfert, Jan
Hub, Jochen Sebastian
Language: English
Title: Physical chemistry, chemical physics : PCCP
Volume: 20
Issue: 41
Startpage: 26351
Endpage: 26361
Publisher/Platform: RSC
Year of Publication: 2018
Publikation type: Journal Article
Abstract: Small-angle X-ray scattering (SAXS) is a popular experimental technique used to obtain structural information on biomolecules in solution. SAXS is sensitive to the overall electron density contrast between the biomolecule and the buffer, including contrast contributions from the hydration layer and the ion cloud. This property may be used advantageously to probe the properties of the ion cloud around charged biomolecules. However, in turn, contributions from the hydration layer and ion cloud may complicate the interpretation of the data, because these contributions must be modelled during structure validation and refinement. In this work, we quantified the influence of the ion cloud on SAXS curves of two charged proteins, bovine serum albumin (BSA) and glucose isomerase (GI), solvated in five different alkali chloride buffers of 100 mM or 500 mM concentrations. We compared three computational methods of varying physical detail, for deriving the ion cloud effect on the radius of gyration Rg of the proteins, namely (i) atomistic molecular dynamics simulations in conjunction with explicit-solvent SAXS calculations, (ii) non-linear Poisson–Boltzmann calculations, and (iii) a simple spherical model in conjunction with linearized Poisson–Boltzmann theory. The calculations for BSA are validated against experimental data. We find favorable agreement among the three computational methods and the experiment, suggesting that the influence of the ion cloud on Rg, as detected by SAXS, may be predicted with nearly analytic calculations. Our analysis further suggests that the ion cloud effect on Rg is dominated by the long-range distribution of the ions around the proteins, as described by Debye–Hückel theory, whereas the local salt structure near the protein surface plays a minor role.
DOI of the first publication: 10.1039/C8CP03080D
URL of the first publication: https://pubs.rsc.org/en/content/articlelanding/2018/cp/c8cp03080d#!divAbstract
Link to this record: hdl:20.500.11880/27790
http://dx.doi.org/10.22028/D291-28968
ISSN: 1463-9084
1463-9076
Date of registration: 17-Sep-2019
Faculty: NT - Naturwissenschaftlich- Technische Fakultät
Department: NT - Physik
Professorship: NT - Prof. Dr. Jochen Hub
Collections:SciDok - Der Wissenschaftsserver der Universität des Saarlandes

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