Multicomponent ligand interactions with colloidal gold and silver nanoparticles in water
<p>Multicomponent ligand interactions are involved in essentially all nanoparticle (NP) applications. However, the ligand conformation and ligand binding mechanisms on NPs are highly controversial. The research reported here is focused on deepening the fundamental understanding of multicompone...
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ndltd-MSSTATE-oai-library.msstate.edu-etd-04172017-1834532019-05-15T18:44:00Z Multicomponent ligand interactions with colloidal gold and silver nanoparticles in water Siriwardana, W-K-Kumudu Dilhani Chemistry <p>Multicomponent ligand interactions are involved in essentially all nanoparticle (NP) applications. However, the ligand conformation and ligand binding mechanisms on NPs are highly controversial. The research reported here is focused on deepening the fundamental understanding of multicomponent ligand interactions with gold and silver nanoparticles (AuNPs and AgNPs) in water.</p> <p>We demonstrated that AuNPs passivated by saturated layer of poly(ethylene glycol) (PEG-SH) have large fractions of AuNP surface area available for ligand adsorption and exchange. The fraction of AuNP surface area passivated by PEG-SH with molecular weights of 2000, 5000, and 30000 g/mol was calculated to be ~ 25%, ~20%, and ~9% using 2-mercaptobenzimidazole and adenine as model ligands.</p> <p>The effect of both reduced and oxidized protein cysteine residues on protein interactions with AgNPs was investigated. The model proteins included wild-type and mutated GB3 variants with 0, 1, or 2 reduced cysteine residues. Bovine serum albumin containing 34 oxidized (disulfide-linked) and 1 reduced cysteine residues was also included. Protein cysteine content that were found to have no detectable effect on kinetics of protein/AgNP binding. However, only proteins that contain reduced cysteine induced significant AgNP dissolution.</p> <p>We further demonstrated that organothiols can induce both AgNP disintegration and formation under ambient conditions by simply mixing organothiols with AgNPs or AgNO3, respectively. Surface plasmon- and fluorescence-active AgNPs formed by changing the concentration ratio between Ag+ and organothiol. Organothiols also induced AuNP formation by mixing HAuCl4 with organothiols, but no AuNP disintegration occured.</p> <p>Finally, we proposed that multicomponent ligand binding to AuNPs can be highly dependent on the sequence of ligand mixing with AuNPs. Quantitative studies revealed that competitive adenine and glutathione adsorption onto both as-synthesized and PEG-SH functionalized AuNPs is predominantly a kinetically controlled process. Besides providing new insights on multicomponent ligand interactions with colloidal AuNPs and AgNPs, this study opens a new avenue for fabrication of novel nanomaterials in biological/biomedical applications. </p> Joseph P. Emerson Stephen C. Foster Todd E. Mlsna David O. Wipf Dongmao Zhang MSSTATE 2017-07-31 text application/pdf http://sun.library.msstate.edu/ETD-db/theses/available/etd-04172017-183453/ http://sun.library.msstate.edu/ETD-db/theses/available/etd-04172017-183453/ en unrestricted I hereby certify that, if appropriate, I have obtained and attached hereto a written permission statement from the owner(s) of each third party copyrighted matter to be included in my thesis, Dissertation, or project report, allowing distribution as specified below. I certify that the version I submitted is the same as that approved by my advisory committee. I hereby grant to Mississippi State University Libraries or its agents the non-exclusive license to archive and make accessible, under the conditions specified below, my thesis, Dissertation, or project report in whole or in part in all forms of media, now or hereafter known. I retain all other ownership rights to the copyright of the thesis, Dissertation or project report. I also retain the right to use in future works (such as articles or books) all or part of this thesis, Dissertation, or project report. |
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Chemistry Siriwardana, W-K-Kumudu Dilhani Multicomponent ligand interactions with colloidal gold and silver nanoparticles in water |
description |
<p>Multicomponent ligand interactions are involved in essentially all nanoparticle (NP) applications. However, the ligand conformation and ligand binding mechanisms on NPs are highly controversial. The research reported here is focused on deepening the fundamental understanding of multicomponent ligand interactions with gold and silver nanoparticles (AuNPs and AgNPs) in water.</p>
<p>We demonstrated that AuNPs passivated by saturated layer of poly(ethylene glycol) (PEG-SH) have large fractions of AuNP surface area available for ligand adsorption and exchange. The fraction of AuNP surface area passivated by PEG-SH with molecular weights of 2000, 5000, and 30000 g/mol was calculated to be ~ 25%, ~20%, and ~9% using 2-mercaptobenzimidazole and adenine as model ligands.</p>
<p>The effect of both reduced and oxidized protein cysteine residues on protein interactions with AgNPs was investigated. The model proteins included wild-type and mutated GB3 variants with 0, 1, or 2 reduced cysteine residues. Bovine serum albumin containing 34 oxidized (disulfide-linked) and 1 reduced cysteine residues was also included. Protein cysteine content that were found to have no detectable effect on kinetics
of protein/AgNP binding. However, only proteins that contain reduced cysteine induced significant AgNP dissolution.</p>
<p>We further demonstrated that organothiols can induce both AgNP disintegration and formation under ambient conditions by simply mixing organothiols with AgNPs or AgNO3, respectively. Surface plasmon- and fluorescence-active AgNPs formed by changing the concentration ratio between Ag+ and organothiol. Organothiols also induced AuNP formation by mixing HAuCl4 with organothiols, but no AuNP disintegration occured.</p>
<p>Finally, we proposed that multicomponent ligand binding to AuNPs can be highly dependent on the sequence of ligand mixing with AuNPs. Quantitative studies revealed that competitive adenine and glutathione adsorption onto both as-synthesized and PEG-SH functionalized AuNPs is predominantly a kinetically controlled process. Besides providing new insights on multicomponent ligand interactions with colloidal AuNPs and AgNPs, this study opens a new avenue for fabrication of novel nanomaterials in biological/biomedical applications. </p> |
author2 |
Joseph P. Emerson |
author_facet |
Joseph P. Emerson Siriwardana, W-K-Kumudu Dilhani |
author |
Siriwardana, W-K-Kumudu Dilhani |
author_sort |
Siriwardana, W-K-Kumudu Dilhani |
title |
Multicomponent ligand interactions with colloidal gold and silver nanoparticles in water |
title_short |
Multicomponent ligand interactions with colloidal gold and silver nanoparticles in water |
title_full |
Multicomponent ligand interactions with colloidal gold and silver nanoparticles in water |
title_fullStr |
Multicomponent ligand interactions with colloidal gold and silver nanoparticles in water |
title_full_unstemmed |
Multicomponent ligand interactions with colloidal gold and silver nanoparticles in water |
title_sort |
multicomponent ligand interactions with colloidal gold and silver nanoparticles in water |
publisher |
MSSTATE |
publishDate |
2017 |
url |
http://sun.library.msstate.edu/ETD-db/theses/available/etd-04172017-183453/ |
work_keys_str_mv |
AT siriwardanawkkumududilhani multicomponentligandinteractionswithcolloidalgoldandsilvernanoparticlesinwater |
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1719086082832728064 |