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Electrostatic Unfolding and Interactions of Albumin Driven by pH Changes: A Molecular Dynamics Study

[Image: see text] A better understanding of protein aggregation is bound to translate into critical advances in several areas, including the treatment of misfolded protein disorders and the development of self-assembling biomaterials for novel commercial applications. Because of its ubiquity and cli...

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Autores principales: Baler, K., Martin, O. A., Carignano, M. A., Ameer, G. A., Vila, J. A., Szleifer, I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3983335/
https://www.ncbi.nlm.nih.gov/pubmed/24393011
http://dx.doi.org/10.1021/jp409936v
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author Baler, K.
Martin, O. A.
Carignano, M. A.
Ameer, G. A.
Vila, J. A.
Szleifer, I.
author_facet Baler, K.
Martin, O. A.
Carignano, M. A.
Ameer, G. A.
Vila, J. A.
Szleifer, I.
author_sort Baler, K.
collection PubMed
description [Image: see text] A better understanding of protein aggregation is bound to translate into critical advances in several areas, including the treatment of misfolded protein disorders and the development of self-assembling biomaterials for novel commercial applications. Because of its ubiquity and clinical potential, albumin is one of the best-characterized models in protein aggregation research; but its properties in different conditions are not completely understood. Here, we carried out all-atom molecular dynamics simulations of albumin to understand how electrostatics can affect the conformation of a single albumin molecule just prior to self-assembly. We then analyzed the tertiary structure and solvent accessible surface area of albumin after electrostatically triggered partial denaturation. The data obtained from these single protein simulations allowed us to investigate the effect of electrostatic interactions between two proteins. The results of these simulations suggested that hydrophobic attractions and counterion binding may be strong enough to effectively overcome the electrostatic repulsions between the highly charged monomers. This work contributes to our general understanding of protein aggregation mechanisms, the importance of explicit consideration of free ions in protein solutions, provides critical new insights about the equilibrium conformation of albumin in its partially denatured state at low pH, and may spur significant progress in our efforts to develop biocompatible protein hydrogels driven by electrostatic partial denaturation.
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spelling pubmed-39833352014-04-17 Electrostatic Unfolding and Interactions of Albumin Driven by pH Changes: A Molecular Dynamics Study Baler, K. Martin, O. A. Carignano, M. A. Ameer, G. A. Vila, J. A. Szleifer, I. J Phys Chem B [Image: see text] A better understanding of protein aggregation is bound to translate into critical advances in several areas, including the treatment of misfolded protein disorders and the development of self-assembling biomaterials for novel commercial applications. Because of its ubiquity and clinical potential, albumin is one of the best-characterized models in protein aggregation research; but its properties in different conditions are not completely understood. Here, we carried out all-atom molecular dynamics simulations of albumin to understand how electrostatics can affect the conformation of a single albumin molecule just prior to self-assembly. We then analyzed the tertiary structure and solvent accessible surface area of albumin after electrostatically triggered partial denaturation. The data obtained from these single protein simulations allowed us to investigate the effect of electrostatic interactions between two proteins. The results of these simulations suggested that hydrophobic attractions and counterion binding may be strong enough to effectively overcome the electrostatic repulsions between the highly charged monomers. This work contributes to our general understanding of protein aggregation mechanisms, the importance of explicit consideration of free ions in protein solutions, provides critical new insights about the equilibrium conformation of albumin in its partially denatured state at low pH, and may spur significant progress in our efforts to develop biocompatible protein hydrogels driven by electrostatic partial denaturation. American Chemical Society 2014-01-06 2014-01-30 /pmc/articles/PMC3983335/ /pubmed/24393011 http://dx.doi.org/10.1021/jp409936v Text en Copyright © 2014 American Chemical Society
spellingShingle Baler, K.
Martin, O. A.
Carignano, M. A.
Ameer, G. A.
Vila, J. A.
Szleifer, I.
Electrostatic Unfolding and Interactions of Albumin Driven by pH Changes: A Molecular Dynamics Study
title Electrostatic Unfolding and Interactions of Albumin Driven by pH Changes: A Molecular Dynamics Study
title_full Electrostatic Unfolding and Interactions of Albumin Driven by pH Changes: A Molecular Dynamics Study
title_fullStr Electrostatic Unfolding and Interactions of Albumin Driven by pH Changes: A Molecular Dynamics Study
title_full_unstemmed Electrostatic Unfolding and Interactions of Albumin Driven by pH Changes: A Molecular Dynamics Study
title_short Electrostatic Unfolding and Interactions of Albumin Driven by pH Changes: A Molecular Dynamics Study
title_sort electrostatic unfolding and interactions of albumin driven by ph changes: a molecular dynamics study
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3983335/
https://www.ncbi.nlm.nih.gov/pubmed/24393011
http://dx.doi.org/10.1021/jp409936v
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