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High-Contrast Fluorescence Imaging in Fixed and Living Cells Using Optimized Optical Switches

We present the design, synthesis and characterization of new functionalized fluorescent optical switches for rapid, all-visible light-mediated manipulation of fluorescence signals from labelled structures within living cells, and as probes for high-contrast optical lock-in detection (OLID) imaging m...

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Autores principales: Wu, Liangxing, Dai, Yingrui, Jiang, Xiaoli, Petchprayoon, Chutima, Lee, Jessie E., Jiang, Tao, Yan, Yuling, Marriott, Gerard
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3674008/
https://www.ncbi.nlm.nih.gov/pubmed/23755140
http://dx.doi.org/10.1371/journal.pone.0064738
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author Wu, Liangxing
Dai, Yingrui
Jiang, Xiaoli
Petchprayoon, Chutima
Lee, Jessie E.
Jiang, Tao
Yan, Yuling
Marriott, Gerard
author_facet Wu, Liangxing
Dai, Yingrui
Jiang, Xiaoli
Petchprayoon, Chutima
Lee, Jessie E.
Jiang, Tao
Yan, Yuling
Marriott, Gerard
author_sort Wu, Liangxing
collection PubMed
description We present the design, synthesis and characterization of new functionalized fluorescent optical switches for rapid, all-visible light-mediated manipulation of fluorescence signals from labelled structures within living cells, and as probes for high-contrast optical lock-in detection (OLID) imaging microscopy. A triazole-substituted BIPS (TzBIPS) is identified from a rational synthetic design strategy that undergoes robust, rapid and reversible, visible light-driven transitions between a colorless spiro- (SP) and a far-red absorbing merocyanine (MC) state within living cells. The excited MC-state of TzBIPS may also decay to the MC-ground state emitting near infra-red fluorescence, which is used as a sensitive and quantitative read-out of the state of the optical switch in living cells. The SP to MC transition for a membrane-targeted TzBIPS probe (C(12)-TzBIPS) is triggered at 405 nm at an energy level compatible with studies in living cells, while the action spectrum of the reverse transition (MC to SP) has a maximum at 650 nm. The SP to MC transition is complete within the 790 ns pixel dwell time of the confocal microscope, while a single cycle of optical switching between the SP and MC states in a region of interest is complete within 8 ms (125 Hz) within living cells, the fastest rate attained for any optical switch probe in a biological sample. This property can be exploited for real-time correction of background signals in living cells. A reactive form of TzBIPS is linked to secondary antibodies and used, in conjunction with an enhanced scope-based analysis of the modulated MC-fluorescence in immuno-stained cells, for high-contrast immunofluorescence microscopic analysis of the actin cytoskeleton.
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spelling pubmed-36740082013-06-10 High-Contrast Fluorescence Imaging in Fixed and Living Cells Using Optimized Optical Switches Wu, Liangxing Dai, Yingrui Jiang, Xiaoli Petchprayoon, Chutima Lee, Jessie E. Jiang, Tao Yan, Yuling Marriott, Gerard PLoS One Research Article We present the design, synthesis and characterization of new functionalized fluorescent optical switches for rapid, all-visible light-mediated manipulation of fluorescence signals from labelled structures within living cells, and as probes for high-contrast optical lock-in detection (OLID) imaging microscopy. A triazole-substituted BIPS (TzBIPS) is identified from a rational synthetic design strategy that undergoes robust, rapid and reversible, visible light-driven transitions between a colorless spiro- (SP) and a far-red absorbing merocyanine (MC) state within living cells. The excited MC-state of TzBIPS may also decay to the MC-ground state emitting near infra-red fluorescence, which is used as a sensitive and quantitative read-out of the state of the optical switch in living cells. The SP to MC transition for a membrane-targeted TzBIPS probe (C(12)-TzBIPS) is triggered at 405 nm at an energy level compatible with studies in living cells, while the action spectrum of the reverse transition (MC to SP) has a maximum at 650 nm. The SP to MC transition is complete within the 790 ns pixel dwell time of the confocal microscope, while a single cycle of optical switching between the SP and MC states in a region of interest is complete within 8 ms (125 Hz) within living cells, the fastest rate attained for any optical switch probe in a biological sample. This property can be exploited for real-time correction of background signals in living cells. A reactive form of TzBIPS is linked to secondary antibodies and used, in conjunction with an enhanced scope-based analysis of the modulated MC-fluorescence in immuno-stained cells, for high-contrast immunofluorescence microscopic analysis of the actin cytoskeleton. Public Library of Science 2013-06-05 /pmc/articles/PMC3674008/ /pubmed/23755140 http://dx.doi.org/10.1371/journal.pone.0064738 Text en © 2013 Wu et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Wu, Liangxing
Dai, Yingrui
Jiang, Xiaoli
Petchprayoon, Chutima
Lee, Jessie E.
Jiang, Tao
Yan, Yuling
Marriott, Gerard
High-Contrast Fluorescence Imaging in Fixed and Living Cells Using Optimized Optical Switches
title High-Contrast Fluorescence Imaging in Fixed and Living Cells Using Optimized Optical Switches
title_full High-Contrast Fluorescence Imaging in Fixed and Living Cells Using Optimized Optical Switches
title_fullStr High-Contrast Fluorescence Imaging in Fixed and Living Cells Using Optimized Optical Switches
title_full_unstemmed High-Contrast Fluorescence Imaging in Fixed and Living Cells Using Optimized Optical Switches
title_short High-Contrast Fluorescence Imaging in Fixed and Living Cells Using Optimized Optical Switches
title_sort high-contrast fluorescence imaging in fixed and living cells using optimized optical switches
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3674008/
https://www.ncbi.nlm.nih.gov/pubmed/23755140
http://dx.doi.org/10.1371/journal.pone.0064738
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