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Protein Binding Leads to Reduced Stability and Solvated Disorder in the Polystyrene Nanoparticle Corona

Understanding the conformation of proteins in the nanoparticle corona has important implications in how organisms respond to nanoparticle-based drugs. These proteins coat the nanoparticle surface, and their properties will influence the nanoparticle’s interaction with cell targets and the immune sys...

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Autores principales: Somarathne, Radha P., Amarasekara, Dhanush L., Kariyawasam, Chathuri S., Robertson, Harley A., Mayatt, Railey, Fitzkee, Nicholas C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10350082/
https://www.ncbi.nlm.nih.gov/pubmed/37461509
http://dx.doi.org/10.1101/2023.07.06.548033
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author Somarathne, Radha P.
Amarasekara, Dhanush L.
Kariyawasam, Chathuri S.
Robertson, Harley A.
Mayatt, Railey
Fitzkee, Nicholas C.
author_facet Somarathne, Radha P.
Amarasekara, Dhanush L.
Kariyawasam, Chathuri S.
Robertson, Harley A.
Mayatt, Railey
Fitzkee, Nicholas C.
author_sort Somarathne, Radha P.
collection PubMed
description Understanding the conformation of proteins in the nanoparticle corona has important implications in how organisms respond to nanoparticle-based drugs. These proteins coat the nanoparticle surface, and their properties will influence the nanoparticle’s interaction with cell targets and the immune system. While some coronas are thought to be disordered, two key unanswered questions are the degree of disorder and solvent accessibility. Here, using a comprehensive thermodynamic approach, along with supporting spectroscopic experiments, we develop a model for protein corona disorder in polystyrene nanoparticles of varying size. For two different proteins, we find that binding affinity decreases as nanoparticle size increases. The stoichiometry of binding, along with changes in the hydrodynamic size, support a highly solvated, disordered protein corona anchored at a small number of enthalpically-driven attachment sites. The scaling of the stoichiometry vs. nanoparticle size is consistent disordered polymer dimensions. Moreover, we find that proteins are destabilized less severely in the presence of larger nanoparticles, and this is supported by measurements of hydrophobic exposure, which becomes less pronounced at lower curvatures. Our observations hold for flat polystyrene surfaces, which, when controlled for total surface area, have the lowest hydrophobic exposure of all systems. Our model provides an explanation for previous observations of increased amyloid fibrillation rates in the presence of larger nanoparticles, and it may rationalize how cell receptors can recognize protein disorder in therapeutic nanoparticles.
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spelling pubmed-103500822023-07-17 Protein Binding Leads to Reduced Stability and Solvated Disorder in the Polystyrene Nanoparticle Corona Somarathne, Radha P. Amarasekara, Dhanush L. Kariyawasam, Chathuri S. Robertson, Harley A. Mayatt, Railey Fitzkee, Nicholas C. bioRxiv Article Understanding the conformation of proteins in the nanoparticle corona has important implications in how organisms respond to nanoparticle-based drugs. These proteins coat the nanoparticle surface, and their properties will influence the nanoparticle’s interaction with cell targets and the immune system. While some coronas are thought to be disordered, two key unanswered questions are the degree of disorder and solvent accessibility. Here, using a comprehensive thermodynamic approach, along with supporting spectroscopic experiments, we develop a model for protein corona disorder in polystyrene nanoparticles of varying size. For two different proteins, we find that binding affinity decreases as nanoparticle size increases. The stoichiometry of binding, along with changes in the hydrodynamic size, support a highly solvated, disordered protein corona anchored at a small number of enthalpically-driven attachment sites. The scaling of the stoichiometry vs. nanoparticle size is consistent disordered polymer dimensions. Moreover, we find that proteins are destabilized less severely in the presence of larger nanoparticles, and this is supported by measurements of hydrophobic exposure, which becomes less pronounced at lower curvatures. Our observations hold for flat polystyrene surfaces, which, when controlled for total surface area, have the lowest hydrophobic exposure of all systems. Our model provides an explanation for previous observations of increased amyloid fibrillation rates in the presence of larger nanoparticles, and it may rationalize how cell receptors can recognize protein disorder in therapeutic nanoparticles. Cold Spring Harbor Laboratory 2023-07-07 /pmc/articles/PMC10350082/ /pubmed/37461509 http://dx.doi.org/10.1101/2023.07.06.548033 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Somarathne, Radha P.
Amarasekara, Dhanush L.
Kariyawasam, Chathuri S.
Robertson, Harley A.
Mayatt, Railey
Fitzkee, Nicholas C.
Protein Binding Leads to Reduced Stability and Solvated Disorder in the Polystyrene Nanoparticle Corona
title Protein Binding Leads to Reduced Stability and Solvated Disorder in the Polystyrene Nanoparticle Corona
title_full Protein Binding Leads to Reduced Stability and Solvated Disorder in the Polystyrene Nanoparticle Corona
title_fullStr Protein Binding Leads to Reduced Stability and Solvated Disorder in the Polystyrene Nanoparticle Corona
title_full_unstemmed Protein Binding Leads to Reduced Stability and Solvated Disorder in the Polystyrene Nanoparticle Corona
title_short Protein Binding Leads to Reduced Stability and Solvated Disorder in the Polystyrene Nanoparticle Corona
title_sort protein binding leads to reduced stability and solvated disorder in the polystyrene nanoparticle corona
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10350082/
https://www.ncbi.nlm.nih.gov/pubmed/37461509
http://dx.doi.org/10.1101/2023.07.06.548033
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