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Covalent and non-covalent coupling of a Au(102) nanocluster with a fluorophore: energy transfer, quenching and intracellular pH sensing

Interactions between an atomically precise gold nanocluster Au(102)(p-MBA)(44) (p-MBA = para mercaptobenzoic acid) and a fluorescent organic dye molecule (KU, azadioxatriangulenium) are studied. In solution, the constituents form spontaneously a weakly bound complex leading to quenching of fluoresce...

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Autores principales: Hulkko, Eero, Lahtinen, Tanja, Marjomäki, Varpu, Pohjolainen, Emmi, Saarnio, Ville, Sokolowska, Karolina, Ajitha, Ardra, Kuisma, Mikael, Lehtovaara, Lauri, Groenhof, Gerrit, Häkkinen, Hannu, Pettersson, Mika
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9417352/
https://www.ncbi.nlm.nih.gov/pubmed/36132657
http://dx.doi.org/10.1039/d1na00368b
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author Hulkko, Eero
Lahtinen, Tanja
Marjomäki, Varpu
Pohjolainen, Emmi
Saarnio, Ville
Sokolowska, Karolina
Ajitha, Ardra
Kuisma, Mikael
Lehtovaara, Lauri
Groenhof, Gerrit
Häkkinen, Hannu
Pettersson, Mika
author_facet Hulkko, Eero
Lahtinen, Tanja
Marjomäki, Varpu
Pohjolainen, Emmi
Saarnio, Ville
Sokolowska, Karolina
Ajitha, Ardra
Kuisma, Mikael
Lehtovaara, Lauri
Groenhof, Gerrit
Häkkinen, Hannu
Pettersson, Mika
author_sort Hulkko, Eero
collection PubMed
description Interactions between an atomically precise gold nanocluster Au(102)(p-MBA)(44) (p-MBA = para mercaptobenzoic acid) and a fluorescent organic dye molecule (KU, azadioxatriangulenium) are studied. In solution, the constituents form spontaneously a weakly bound complex leading to quenching of fluorescence of the KU dye via energy transfer. The KU can be separated from the complex by lowering pH, leading to recovery of fluorescence, which forms a basis for an optical reversible pH sensor. However, the sensor is not a stable entity, which could be delivered inside cells. For this purpose, a covalently bound hybrid is synthesized by linking the KU dye to the ligand layer of the cluster via an ester bond. Covalent linking facilitates entry of the cluster–dye hybrids into cells via endocytosis. Inside cells, the hybrids accumulate in endosomes where Au(102) releases its cargo via hydrolysis of the ester bond. Changes of the local pH inside endosomes regulate reversible fluorescence due to variations in the interactions between the Au(102) cluster and the dye. This work presents a concept for delivering reporter molecules into cells by using atomically precise gold nanoclusters as carriers and paves the way for future developments of cluster-reporter sensors for in vivo measurements of e.g. absolute pH values or ion concentrations.
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spelling pubmed-94173522022-09-20 Covalent and non-covalent coupling of a Au(102) nanocluster with a fluorophore: energy transfer, quenching and intracellular pH sensing Hulkko, Eero Lahtinen, Tanja Marjomäki, Varpu Pohjolainen, Emmi Saarnio, Ville Sokolowska, Karolina Ajitha, Ardra Kuisma, Mikael Lehtovaara, Lauri Groenhof, Gerrit Häkkinen, Hannu Pettersson, Mika Nanoscale Adv Chemistry Interactions between an atomically precise gold nanocluster Au(102)(p-MBA)(44) (p-MBA = para mercaptobenzoic acid) and a fluorescent organic dye molecule (KU, azadioxatriangulenium) are studied. In solution, the constituents form spontaneously a weakly bound complex leading to quenching of fluorescence of the KU dye via energy transfer. The KU can be separated from the complex by lowering pH, leading to recovery of fluorescence, which forms a basis for an optical reversible pH sensor. However, the sensor is not a stable entity, which could be delivered inside cells. For this purpose, a covalently bound hybrid is synthesized by linking the KU dye to the ligand layer of the cluster via an ester bond. Covalent linking facilitates entry of the cluster–dye hybrids into cells via endocytosis. Inside cells, the hybrids accumulate in endosomes where Au(102) releases its cargo via hydrolysis of the ester bond. Changes of the local pH inside endosomes regulate reversible fluorescence due to variations in the interactions between the Au(102) cluster and the dye. This work presents a concept for delivering reporter molecules into cells by using atomically precise gold nanoclusters as carriers and paves the way for future developments of cluster-reporter sensors for in vivo measurements of e.g. absolute pH values or ion concentrations. RSC 2021-09-24 /pmc/articles/PMC9417352/ /pubmed/36132657 http://dx.doi.org/10.1039/d1na00368b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Hulkko, Eero
Lahtinen, Tanja
Marjomäki, Varpu
Pohjolainen, Emmi
Saarnio, Ville
Sokolowska, Karolina
Ajitha, Ardra
Kuisma, Mikael
Lehtovaara, Lauri
Groenhof, Gerrit
Häkkinen, Hannu
Pettersson, Mika
Covalent and non-covalent coupling of a Au(102) nanocluster with a fluorophore: energy transfer, quenching and intracellular pH sensing
title Covalent and non-covalent coupling of a Au(102) nanocluster with a fluorophore: energy transfer, quenching and intracellular pH sensing
title_full Covalent and non-covalent coupling of a Au(102) nanocluster with a fluorophore: energy transfer, quenching and intracellular pH sensing
title_fullStr Covalent and non-covalent coupling of a Au(102) nanocluster with a fluorophore: energy transfer, quenching and intracellular pH sensing
title_full_unstemmed Covalent and non-covalent coupling of a Au(102) nanocluster with a fluorophore: energy transfer, quenching and intracellular pH sensing
title_short Covalent and non-covalent coupling of a Au(102) nanocluster with a fluorophore: energy transfer, quenching and intracellular pH sensing
title_sort covalent and non-covalent coupling of a au(102) nanocluster with a fluorophore: energy transfer, quenching and intracellular ph sensing
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9417352/
https://www.ncbi.nlm.nih.gov/pubmed/36132657
http://dx.doi.org/10.1039/d1na00368b
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