Time-resolved botulinum neurotoxin A activity monitored using peptide-functionalized Au nanoparticle energy transfer sensors
We report herein on the employment of synthetic peptide-functionalized gold nanoparticles (AuNPs) with various diameters as radiative quenchers for the time-resolved monitoring of botulinum A light chain (BoLcA) activity. The results demonstrate that larger AuNPs provide higher energy transfer effic...
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sg-ntu-dr.10356-794482023-07-14T15:49:05Z Time-resolved botulinum neurotoxin A activity monitored using peptide-functionalized Au nanoparticle energy transfer sensors Wang, Yi Liu, Xiaohu Zhang, Jinling Aili, Daniel Liedberg, Bo School of Materials Science & Engineering Energy Transfer Gold DRNTU::Engineering::Nanotechnology We report herein on the employment of synthetic peptide-functionalized gold nanoparticles (AuNPs) with various diameters as radiative quenchers for the time-resolved monitoring of botulinum A light chain (BoLcA) activity. The results demonstrate that larger AuNPs provide higher energy transfer efficiencies between the dye and the AuNPs, but poorer BoLcA activities for the proteolysis of peptides because of steric constraints. The initial turnover number for the BoLcA proteolysis of peptides on 18 nm AuNPs was retarded by a factor of 80 as compared with 1.4 nm AuNPs. A similar phenomenon has been observed for trypsin, however, with less hindrance on large AuNPs. Thus, the use of smaller 1.4 nm AuNPs in conjunction with robust synthetic peptides provides an attractive format for the time-resolved monitoring of protease activity and for BoLcA sensing at a highly competitive limit of detection (1 pM). ASTAR (Agency for Sci., Tech. and Research, S’pore) Accepted version 2015-08-21T06:13:34Z 2019-12-06T13:25:36Z 2015-08-21T06:13:34Z 2019-12-06T13:25:36Z 2014 2014 Journal Article Wang, Y., Liu, X., Zhang, J., Aili, D., & Liedberg, B. (2014). Time-resolved botulinum neurotoxin A activity monitored using peptide-functionalized Au nanoparticle energy transfer sensors. Chemical Science, 5(7), 2651-2656. https://hdl.handle.net/10356/79448 http://hdl.handle.net/10220/38490 10.1039/c3sc53305k en Chemical Science application/pdf |
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Energy Transfer Gold DRNTU::Engineering::Nanotechnology Wang, Yi Liu, Xiaohu Zhang, Jinling Aili, Daniel Liedberg, Bo Time-resolved botulinum neurotoxin A activity monitored using peptide-functionalized Au nanoparticle energy transfer sensors |
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We report herein on the employment of synthetic peptide-functionalized gold nanoparticles (AuNPs) with various diameters as radiative quenchers for the time-resolved monitoring of botulinum A light chain (BoLcA) activity. The results demonstrate that larger AuNPs provide higher energy transfer efficiencies between the dye and the AuNPs, but poorer BoLcA activities for the proteolysis of peptides because of steric constraints. The initial turnover number for the BoLcA proteolysis of peptides on 18 nm AuNPs was retarded by a factor of 80 as compared with 1.4 nm AuNPs. A similar phenomenon has been observed for trypsin, however, with less hindrance on large AuNPs. Thus, the use of smaller 1.4 nm AuNPs in conjunction with robust synthetic peptides provides an attractive format for the time-resolved monitoring of protease activity and for BoLcA sensing at a highly competitive limit of detection (1 pM). |
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School of Materials Science & Engineering |
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School of Materials Science & Engineering Wang, Yi Liu, Xiaohu Zhang, Jinling Aili, Daniel Liedberg, Bo |
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Article |
author |
Wang, Yi Liu, Xiaohu Zhang, Jinling Aili, Daniel Liedberg, Bo |
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Wang, Yi |
title |
Time-resolved botulinum neurotoxin A activity monitored using peptide-functionalized Au nanoparticle energy transfer sensors |
title_short |
Time-resolved botulinum neurotoxin A activity monitored using peptide-functionalized Au nanoparticle energy transfer sensors |
title_full |
Time-resolved botulinum neurotoxin A activity monitored using peptide-functionalized Au nanoparticle energy transfer sensors |
title_fullStr |
Time-resolved botulinum neurotoxin A activity monitored using peptide-functionalized Au nanoparticle energy transfer sensors |
title_full_unstemmed |
Time-resolved botulinum neurotoxin A activity monitored using peptide-functionalized Au nanoparticle energy transfer sensors |
title_sort |
time-resolved botulinum neurotoxin a activity monitored using peptide-functionalized au nanoparticle energy transfer sensors |
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2015 |
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https://hdl.handle.net/10356/79448 http://hdl.handle.net/10220/38490 |
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1772827898114211840 |