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  5. In Silico Prediction of Protein Adsorption Energy on Titanium Dioxide and Gold Nanoparticles
 
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In Silico Prediction of Protein Adsorption Energy on Titanium Dioxide and Gold Nanoparticles

Author(s)
Alsharif, Shada A.  
Power, David  
Rouse, Ian  
Lobaskin, Vladimir  
Uri
http://hdl.handle.net/10197/12275
Date Issued
2020-10-04
Date Available
2021-06-21T15:44:45Z
Abstract
The free energy of adsorption of proteins onto nanoparticles offers an insight into the biological activity of these particles in the body, but calculating these energies is challenging at the atomistic resolution. In addition, structural information of the proteins may not be readily available. In this work, we demonstrate how information about adsorption affinity of proteins onto nanoparticles can be obtained from first principles with minimum experimental input. We use a multiscale model of protein–nanoparticle interaction to evaluate adsorption energies for a set of 59 human blood serum proteins on gold and titanium dioxide (anatase) nanoparticles of various sizes. For each protein, we compare the results for 3D structures derived from experiments to those predicted computationally from amino acid sequences using the I-TASSER methodology and software. Based on these calculations and 2D and 3D protein descriptors, we develop statistical models for predicting the binding energy of proteins, enabling the rapid characterization of the affinity of nanoparticles to a wide range of proteins.
Sponsorship
European Commission Horizon 2020
Science Foundation Ireland
Other Sponsorship
Royal Embassy of Saudi Arabia
Tabuk University
Type of Material
Journal Article
Publisher
MDPI
Journal
Nanomaterials
Volume
10
Issue
10
Copyright (Published Version)
2020 the Authors
Subjects

Nanoparticle

Protein adsoption

Proteins 3D strutures...

Bio-nano interface

Multiscale modelling

DOI
10.3390/nano10101967
Language
English
Status of Item
Peer reviewed
This item is made available under a Creative Commons License
https://creativecommons.org/licenses/by/3.0/ie/
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nanomaterials-10-01967.pdf

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2.56 MB

Format

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Checksum (MD5)

ba1207f1cc49d4630ae224c3264ff80e

Owning collection
Physics Research Collection

Item descriptive metadata is released under a CC-0 (public domain) license: https://creativecommons.org/public-domain/cc0/.
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