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Rendering hydrophobic nanoclusters water-soluble and biocompatible

Hydrophobic and hydrophilic nanoclusters embody complementary superiorities. The means to amalgamate these superiorities, i.e., the atomic precision of hydrophobic clusters and the water dissolvability of hydrophilic clusters, remains challenging. This work presents a versatile strategy to render hy...

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Autores principales: Kang, Xi, Wei, Xiao, Xiang, Pan, Tian, Xiaohe, Zuo, Zewen, Song, Fengqi, Wang, Shuxin, Zhu, Manzhou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8159227/
https://www.ncbi.nlm.nih.gov/pubmed/34122938
http://dx.doi.org/10.1039/d0sc01055c
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author Kang, Xi
Wei, Xiao
Xiang, Pan
Tian, Xiaohe
Zuo, Zewen
Song, Fengqi
Wang, Shuxin
Zhu, Manzhou
author_facet Kang, Xi
Wei, Xiao
Xiang, Pan
Tian, Xiaohe
Zuo, Zewen
Song, Fengqi
Wang, Shuxin
Zhu, Manzhou
author_sort Kang, Xi
collection PubMed
description Hydrophobic and hydrophilic nanoclusters embody complementary superiorities. The means to amalgamate these superiorities, i.e., the atomic precision of hydrophobic clusters and the water dissolvability of hydrophilic clusters, remains challenging. This work presents a versatile strategy to render hydrophobic nanoclusters water-soluble—the micellization of nanoclusters in the presence of solvent-conjoined Na(+) cations—which overcomes the above major challenge. Specifically, although [Ag(29)(SSR)(12)(PPh(3))(4)](3−) nanoclusters are absolutely hydrophobic, they show good dissolvability in aqueous solution in the presence of solvent-conjoined Na(+) cations (Na(1)(NMP)(5) or Na(3)(DMF)(12)). Such cations act as both counterions of these nanoclusters and surface cosolvent of cluster-based micelles in the aqueous phase. A combination of DLS (dynamic light scattering) and aberration-corrected HAADF-STEM (high angle annular dark field detector scanning transmission electron microscopy) measurements unambiguously shows that the phase-transfer of hydrophobic Ag(29) into water is triggered by the micellization of nanoclusters. Owing to the excellent water solubility and stability of [Ag(29)(SSR)(12)(PPh(3))(4)](3−)[Na(1)(NMP)(5)](3)(+) in H(2)O, its performance in cell staining has been evaluated. Furthermore, the general applicability of the micellization strategy has been verified. Overall, this work presents a convenient and efficient approach for the preparation of cluster-based, biocompatible nanomaterials.
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spelling pubmed-81592272021-06-11 Rendering hydrophobic nanoclusters water-soluble and biocompatible Kang, Xi Wei, Xiao Xiang, Pan Tian, Xiaohe Zuo, Zewen Song, Fengqi Wang, Shuxin Zhu, Manzhou Chem Sci Chemistry Hydrophobic and hydrophilic nanoclusters embody complementary superiorities. The means to amalgamate these superiorities, i.e., the atomic precision of hydrophobic clusters and the water dissolvability of hydrophilic clusters, remains challenging. This work presents a versatile strategy to render hydrophobic nanoclusters water-soluble—the micellization of nanoclusters in the presence of solvent-conjoined Na(+) cations—which overcomes the above major challenge. Specifically, although [Ag(29)(SSR)(12)(PPh(3))(4)](3−) nanoclusters are absolutely hydrophobic, they show good dissolvability in aqueous solution in the presence of solvent-conjoined Na(+) cations (Na(1)(NMP)(5) or Na(3)(DMF)(12)). Such cations act as both counterions of these nanoclusters and surface cosolvent of cluster-based micelles in the aqueous phase. A combination of DLS (dynamic light scattering) and aberration-corrected HAADF-STEM (high angle annular dark field detector scanning transmission electron microscopy) measurements unambiguously shows that the phase-transfer of hydrophobic Ag(29) into water is triggered by the micellization of nanoclusters. Owing to the excellent water solubility and stability of [Ag(29)(SSR)(12)(PPh(3))(4)](3−)[Na(1)(NMP)(5)](3)(+) in H(2)O, its performance in cell staining has been evaluated. Furthermore, the general applicability of the micellization strategy has been verified. Overall, this work presents a convenient and efficient approach for the preparation of cluster-based, biocompatible nanomaterials. The Royal Society of Chemistry 2020-04-22 /pmc/articles/PMC8159227/ /pubmed/34122938 http://dx.doi.org/10.1039/d0sc01055c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Kang, Xi
Wei, Xiao
Xiang, Pan
Tian, Xiaohe
Zuo, Zewen
Song, Fengqi
Wang, Shuxin
Zhu, Manzhou
Rendering hydrophobic nanoclusters water-soluble and biocompatible
title Rendering hydrophobic nanoclusters water-soluble and biocompatible
title_full Rendering hydrophobic nanoclusters water-soluble and biocompatible
title_fullStr Rendering hydrophobic nanoclusters water-soluble and biocompatible
title_full_unstemmed Rendering hydrophobic nanoclusters water-soluble and biocompatible
title_short Rendering hydrophobic nanoclusters water-soluble and biocompatible
title_sort rendering hydrophobic nanoclusters water-soluble and biocompatible
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8159227/
https://www.ncbi.nlm.nih.gov/pubmed/34122938
http://dx.doi.org/10.1039/d0sc01055c
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