A Deoxyuridine-Based Far-Red Emitting Viscosity Sensor

A novel deoxyuridine (dU) benzothiazolium (BZ) derivative, referred to as dU-BZ, is reported that was synthesized via Sonogashira coupling reaction methodology. The deoxyuridine building block was introduced to enhance hydrophilicity, while an alkynylated benzothiazolium dye was incorporated for lon...

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Main Authors: Mengyuan Wang, Yuanwei Zhang, Xiling Yue, Sheng Yao, Mykhailo V. Bondar, Kevin D. Belfield
Format: Article
Language:English
Published: MDPI AG 2016-05-01
Series:Molecules
Subjects:
Online Access:http://www.mdpi.com/1420-3049/21/6/709
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spelling doaj-d6b20cdb4d7d497da6f8a2eb55822bb22020-11-24T23:48:02ZengMDPI AGMolecules1420-30492016-05-0121670910.3390/molecules21060709molecules21060709A Deoxyuridine-Based Far-Red Emitting Viscosity SensorMengyuan Wang0Yuanwei Zhang1Xiling Yue2Sheng Yao3Mykhailo V. Bondar4Kevin D. Belfield5Department of Chemistry, University of Central Florida, P.O. Box 162366, Orlando, FL 32816, USADepartment of Chemistry, University of Central Florida, P.O. Box 162366, Orlando, FL 32816, USADepartment of Chemistry, University of Central Florida, P.O. Box 162366, Orlando, FL 32816, USADepartment of Chemistry, University of Central Florida, P.O. Box 162366, Orlando, FL 32816, USAInstitute of Physics, National Academy of Sciences of Ukraine, Prospect Nauki, 46, Kiev-28 03028, UkraineSchool of Chemistry and Chemical Engineering, Shaanxi Normal University, Xi’an 710062, ChinaA novel deoxyuridine (dU) benzothiazolium (BZ) derivative, referred to as dU-BZ, is reported that was synthesized via Sonogashira coupling reaction methodology. The deoxyuridine building block was introduced to enhance hydrophilicity, while an alkynylated benzothiazolium dye was incorporated for long wavelength absorption to reduce potential phototoxicity that is characteristic of using UV light to excite common fluorphores, better discriminate from native autofluorescence, and potentially facilitate deep tissue imaging. An impressive 30-fold enhancement of fluorescence intensity of dU-BZ was achieved upon increasing viscosity. Fluorescence quantum yields in 99% glycerol/1% methanol (v/v) solution as a function of temperature (293–343 K), together with viscosity-dependent fluorescence lifetimes and radiative and non-radiative rate constants in glycerol/methanol solutions (ranging from 4.8 to 950 cP) were determined. Both fluorescence quantum yields and lifetimes increased with increased viscosity, consistent with results predicted by theory. This suggests that the newly-designed compound, dU-BZ, is capable of functioning as a probe of local microviscosity, an aspect examined by in vitro bioimaging experiments.http://www.mdpi.com/1420-3049/21/6/709microviscosity sensorfar-red fluorescent probebioimagingnucleosidesSonogashira couplingmolecular rotor
collection DOAJ
language English
format Article
sources DOAJ
author Mengyuan Wang
Yuanwei Zhang
Xiling Yue
Sheng Yao
Mykhailo V. Bondar
Kevin D. Belfield
spellingShingle Mengyuan Wang
Yuanwei Zhang
Xiling Yue
Sheng Yao
Mykhailo V. Bondar
Kevin D. Belfield
A Deoxyuridine-Based Far-Red Emitting Viscosity Sensor
Molecules
microviscosity sensor
far-red fluorescent probe
bioimaging
nucleosides
Sonogashira coupling
molecular rotor
author_facet Mengyuan Wang
Yuanwei Zhang
Xiling Yue
Sheng Yao
Mykhailo V. Bondar
Kevin D. Belfield
author_sort Mengyuan Wang
title A Deoxyuridine-Based Far-Red Emitting Viscosity Sensor
title_short A Deoxyuridine-Based Far-Red Emitting Viscosity Sensor
title_full A Deoxyuridine-Based Far-Red Emitting Viscosity Sensor
title_fullStr A Deoxyuridine-Based Far-Red Emitting Viscosity Sensor
title_full_unstemmed A Deoxyuridine-Based Far-Red Emitting Viscosity Sensor
title_sort deoxyuridine-based far-red emitting viscosity sensor
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2016-05-01
description A novel deoxyuridine (dU) benzothiazolium (BZ) derivative, referred to as dU-BZ, is reported that was synthesized via Sonogashira coupling reaction methodology. The deoxyuridine building block was introduced to enhance hydrophilicity, while an alkynylated benzothiazolium dye was incorporated for long wavelength absorption to reduce potential phototoxicity that is characteristic of using UV light to excite common fluorphores, better discriminate from native autofluorescence, and potentially facilitate deep tissue imaging. An impressive 30-fold enhancement of fluorescence intensity of dU-BZ was achieved upon increasing viscosity. Fluorescence quantum yields in 99% glycerol/1% methanol (v/v) solution as a function of temperature (293–343 K), together with viscosity-dependent fluorescence lifetimes and radiative and non-radiative rate constants in glycerol/methanol solutions (ranging from 4.8 to 950 cP) were determined. Both fluorescence quantum yields and lifetimes increased with increased viscosity, consistent with results predicted by theory. This suggests that the newly-designed compound, dU-BZ, is capable of functioning as a probe of local microviscosity, an aspect examined by in vitro bioimaging experiments.
topic microviscosity sensor
far-red fluorescent probe
bioimaging
nucleosides
Sonogashira coupling
molecular rotor
url http://www.mdpi.com/1420-3049/21/6/709
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