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Accessing lanthanide-based, in situ illuminated optical turn-on probes by modulation of the antenna triplet state energy

Luminescent lanthanides possess ideal properties for biological imaging, including long luminescent lifetimes and emission within the optical window. Here, we report a novel approach to responsive luminescent Tb(iii) probes that involves direct modulation of the antenna excited triplet state energy....

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Autores principales: Cosby, Alexia G., Woods, Joshua J., Nawrocki, Patrick, Sørensen, Thomas J., Wilson, Justin J., Boros, Eszter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8278976/
https://www.ncbi.nlm.nih.gov/pubmed/34349918
http://dx.doi.org/10.1039/d1sc02148f
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author Cosby, Alexia G.
Woods, Joshua J.
Nawrocki, Patrick
Sørensen, Thomas J.
Wilson, Justin J.
Boros, Eszter
author_facet Cosby, Alexia G.
Woods, Joshua J.
Nawrocki, Patrick
Sørensen, Thomas J.
Wilson, Justin J.
Boros, Eszter
author_sort Cosby, Alexia G.
collection PubMed
description Luminescent lanthanides possess ideal properties for biological imaging, including long luminescent lifetimes and emission within the optical window. Here, we report a novel approach to responsive luminescent Tb(iii) probes that involves direct modulation of the antenna excited triplet state energy. If the triplet energy lies too close to the (5)D(4) Tb(iii) excited state (20 500 cm(−1)), energy transfer to (5)D(4) competes with back energy transfer processes and limits lanthanide-based emission. To validate this approach, a series of pyridyl-functionalized, macrocyclic lanthanide complexes were designed, and the corresponding lowest energy triplet states were calculated using density functional theory (DFT). Subsequently, three novel constructs L3 (nitro-pyridyl), L4 (amino-pyridyl) and L5 (fluoro-pyridyl) were synthesized. Photophysical characterization of the corresponding Gd(iii) complexes revealed antenna triplet energies between 25 800 and 30 400 cm(−1) and a 500-fold increase in quantum yield upon conversion of Tb(L3) to Tb(L4) using the biologically relevant analyte H(2)S. The corresponding turn-on reaction can be monitored using conventional, small-animal optical imaging equipment in presence of a Cherenkov radiation emitting isotope as an in situ excitation source, demonstrating that antenna triplet state energy modulation represents a viable approach to biocompatible, Tb-based optical turn-on probes.
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spelling pubmed-82789762021-08-03 Accessing lanthanide-based, in situ illuminated optical turn-on probes by modulation of the antenna triplet state energy Cosby, Alexia G. Woods, Joshua J. Nawrocki, Patrick Sørensen, Thomas J. Wilson, Justin J. Boros, Eszter Chem Sci Chemistry Luminescent lanthanides possess ideal properties for biological imaging, including long luminescent lifetimes and emission within the optical window. Here, we report a novel approach to responsive luminescent Tb(iii) probes that involves direct modulation of the antenna excited triplet state energy. If the triplet energy lies too close to the (5)D(4) Tb(iii) excited state (20 500 cm(−1)), energy transfer to (5)D(4) competes with back energy transfer processes and limits lanthanide-based emission. To validate this approach, a series of pyridyl-functionalized, macrocyclic lanthanide complexes were designed, and the corresponding lowest energy triplet states were calculated using density functional theory (DFT). Subsequently, three novel constructs L3 (nitro-pyridyl), L4 (amino-pyridyl) and L5 (fluoro-pyridyl) were synthesized. Photophysical characterization of the corresponding Gd(iii) complexes revealed antenna triplet energies between 25 800 and 30 400 cm(−1) and a 500-fold increase in quantum yield upon conversion of Tb(L3) to Tb(L4) using the biologically relevant analyte H(2)S. The corresponding turn-on reaction can be monitored using conventional, small-animal optical imaging equipment in presence of a Cherenkov radiation emitting isotope as an in situ excitation source, demonstrating that antenna triplet state energy modulation represents a viable approach to biocompatible, Tb-based optical turn-on probes. The Royal Society of Chemistry 2021-06-14 /pmc/articles/PMC8278976/ /pubmed/34349918 http://dx.doi.org/10.1039/d1sc02148f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Cosby, Alexia G.
Woods, Joshua J.
Nawrocki, Patrick
Sørensen, Thomas J.
Wilson, Justin J.
Boros, Eszter
Accessing lanthanide-based, in situ illuminated optical turn-on probes by modulation of the antenna triplet state energy
title Accessing lanthanide-based, in situ illuminated optical turn-on probes by modulation of the antenna triplet state energy
title_full Accessing lanthanide-based, in situ illuminated optical turn-on probes by modulation of the antenna triplet state energy
title_fullStr Accessing lanthanide-based, in situ illuminated optical turn-on probes by modulation of the antenna triplet state energy
title_full_unstemmed Accessing lanthanide-based, in situ illuminated optical turn-on probes by modulation of the antenna triplet state energy
title_short Accessing lanthanide-based, in situ illuminated optical turn-on probes by modulation of the antenna triplet state energy
title_sort accessing lanthanide-based, in situ illuminated optical turn-on probes by modulation of the antenna triplet state energy
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8278976/
https://www.ncbi.nlm.nih.gov/pubmed/34349918
http://dx.doi.org/10.1039/d1sc02148f
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