Dissemin is shutting down on January 1st, 2025

Published in

Wiley, Angewandte Chemie, 19(130), p. 5404-5407

DOI: 10.1002/ange.201712921

Wiley, Angewandte Chemie International Edition, 19(57), p. 5306-5309, 2018

DOI: 10.1002/anie.201712921

Links

Tools

Export citation

Search in Google Scholar

Avoiding Thiol Compound Interference: A Nanoplatform Based on High-Fidelity Au-Se Bonds for Biological Applications

Journal article published in 2018 by Bo Hu, Fanpeng Kong ORCID, Xiaonan Gao ORCID, Lulu Jiang, Xiaofeng Li, Wen Gao ORCID, Kehua Xu, Bo Tang ORCID
This paper is made freely available by the publisher.
This paper is made freely available by the publisher.

Full text: Download

Green circle
Preprint: archiving allowed
Orange circle
Postprint: archiving restricted
Red circle
Published version: archiving forbidden
Data provided by SHERPA/RoMEO

Abstract

AbstractGold nanoparticles (Au NPs) assembled through Au−S covalent bonds have been widely used in biomolecule‐sensing technologies. However, during the process, detection distortions caused by high levels of thiol compounds can still significantly influence the result and this problem has not really been solved. Based on the higher stability of Au−Se bonds compared to Au−S bonds, we prepared selenol‐modified Au NPs as an Au‐Se nanoplatform (NPF). Compared with the Au‐S NPF, the Au‐Se NPF exhibits excellent anti‐interference properties in the presence of millimolar levels of glutathione (GSH). Such an Au‐Se NPF that can effectively avoid detection distortions caused by high levels of thiols thus offers a new perspective in future nanomaterial design, as well as a novel platform with higher stability and selectivity for the in vivo application of chemical sensing and clinical therapies.