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Molecularly engineered AIEgens with enhanced quantum and singlet-oxygen yield for mitochondria-targeted imaging and photodynamic therapy

Luminogens characteristic of aggregation-induced emission (AIEgens) have been extensively exploited for the development of imaging-guided photodynamic therapeutic (PDT) agents. However, intramolecular rotation of donor–acceptor (D–A) type AIEgens favors non-radiative decay of photonic energy which r...

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Autores principales: Xu, Fang-Zhou, Zhu, Ling, Han, Hai-Hao, Zou, Jian-Wei, Zang, Yi, Li, Jia, James, Tony D., He, Xiao-Peng, Wang, Cheng-Yun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9384827/
https://www.ncbi.nlm.nih.gov/pubmed/36092996
http://dx.doi.org/10.1039/d2sc00889k
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author Xu, Fang-Zhou
Zhu, Ling
Han, Hai-Hao
Zou, Jian-Wei
Zang, Yi
Li, Jia
James, Tony D.
He, Xiao-Peng
Wang, Cheng-Yun
author_facet Xu, Fang-Zhou
Zhu, Ling
Han, Hai-Hao
Zou, Jian-Wei
Zang, Yi
Li, Jia
James, Tony D.
He, Xiao-Peng
Wang, Cheng-Yun
author_sort Xu, Fang-Zhou
collection PubMed
description Luminogens characteristic of aggregation-induced emission (AIEgens) have been extensively exploited for the development of imaging-guided photodynamic therapeutic (PDT) agents. However, intramolecular rotation of donor–acceptor (D–A) type AIEgens favors non-radiative decay of photonic energy which results in unsatisfactory fluorescence quantum and singlet oxygen yields. To address this issue, we developed several molecularly engineered AIEgens with partially “locked” molecular structures enhancing both fluorescence emission and the production of triplet excitons. A triphenylphosphine group was introduced to form a D–A conjugate, improving water solubility and the capacity for mitochondrial localization of the resulting probes. Experimental and theoretical analyses suggest that the much higher quantum and singlet oxygen yield of a structurally “significantly-locked” probe (LOCK-2) than its “partially locked” (LOCK-1) and “unlocked” equivalent (LOCK-0) is a result of suppressed AIE and twisted intramolecular charge transfer. LOCK-2 was also used for the mitochondrial-targeting, fluorescence image-guided PDT of liver cancer cells.
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spelling pubmed-93848272022-09-08 Molecularly engineered AIEgens with enhanced quantum and singlet-oxygen yield for mitochondria-targeted imaging and photodynamic therapy Xu, Fang-Zhou Zhu, Ling Han, Hai-Hao Zou, Jian-Wei Zang, Yi Li, Jia James, Tony D. He, Xiao-Peng Wang, Cheng-Yun Chem Sci Chemistry Luminogens characteristic of aggregation-induced emission (AIEgens) have been extensively exploited for the development of imaging-guided photodynamic therapeutic (PDT) agents. However, intramolecular rotation of donor–acceptor (D–A) type AIEgens favors non-radiative decay of photonic energy which results in unsatisfactory fluorescence quantum and singlet oxygen yields. To address this issue, we developed several molecularly engineered AIEgens with partially “locked” molecular structures enhancing both fluorescence emission and the production of triplet excitons. A triphenylphosphine group was introduced to form a D–A conjugate, improving water solubility and the capacity for mitochondrial localization of the resulting probes. Experimental and theoretical analyses suggest that the much higher quantum and singlet oxygen yield of a structurally “significantly-locked” probe (LOCK-2) than its “partially locked” (LOCK-1) and “unlocked” equivalent (LOCK-0) is a result of suppressed AIE and twisted intramolecular charge transfer. LOCK-2 was also used for the mitochondrial-targeting, fluorescence image-guided PDT of liver cancer cells. The Royal Society of Chemistry 2022-08-03 /pmc/articles/PMC9384827/ /pubmed/36092996 http://dx.doi.org/10.1039/d2sc00889k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Xu, Fang-Zhou
Zhu, Ling
Han, Hai-Hao
Zou, Jian-Wei
Zang, Yi
Li, Jia
James, Tony D.
He, Xiao-Peng
Wang, Cheng-Yun
Molecularly engineered AIEgens with enhanced quantum and singlet-oxygen yield for mitochondria-targeted imaging and photodynamic therapy
title Molecularly engineered AIEgens with enhanced quantum and singlet-oxygen yield for mitochondria-targeted imaging and photodynamic therapy
title_full Molecularly engineered AIEgens with enhanced quantum and singlet-oxygen yield for mitochondria-targeted imaging and photodynamic therapy
title_fullStr Molecularly engineered AIEgens with enhanced quantum and singlet-oxygen yield for mitochondria-targeted imaging and photodynamic therapy
title_full_unstemmed Molecularly engineered AIEgens with enhanced quantum and singlet-oxygen yield for mitochondria-targeted imaging and photodynamic therapy
title_short Molecularly engineered AIEgens with enhanced quantum and singlet-oxygen yield for mitochondria-targeted imaging and photodynamic therapy
title_sort molecularly engineered aiegens with enhanced quantum and singlet-oxygen yield for mitochondria-targeted imaging and photodynamic therapy
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9384827/
https://www.ncbi.nlm.nih.gov/pubmed/36092996
http://dx.doi.org/10.1039/d2sc00889k
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