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Enhancing singlet oxygen generation in semiconducting polymer nanoparticles through fluorescence resonance energy transfer for tumor treatment

Photosensitizers (PSs) are of particular importance for efficient photodynamic therapy (PDT). Challenges for PSs simultaneously possessing strong light-absorbing ability, high (1)O(2) generation by effective intersystem crossing from the singlet to the triplet state, good water-solubility and excell...

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Autores principales: Jiang, Jiayang, Qian, Yuanyuan, Xu, Zihan, Lv, Zhuang, Tao, Peng, Xie, Mingjuan, Liu, Shujuan, Huang, Wei, Zhao, Qiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6524665/
https://www.ncbi.nlm.nih.gov/pubmed/31183060
http://dx.doi.org/10.1039/c8sc05501g
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author Jiang, Jiayang
Qian, Yuanyuan
Xu, Zihan
Lv, Zhuang
Tao, Peng
Xie, Mingjuan
Liu, Shujuan
Huang, Wei
Zhao, Qiang
author_facet Jiang, Jiayang
Qian, Yuanyuan
Xu, Zihan
Lv, Zhuang
Tao, Peng
Xie, Mingjuan
Liu, Shujuan
Huang, Wei
Zhao, Qiang
author_sort Jiang, Jiayang
collection PubMed
description Photosensitizers (PSs) are of particular importance for efficient photodynamic therapy (PDT). Challenges for PSs simultaneously possessing strong light-absorbing ability, high (1)O(2) generation by effective intersystem crossing from the singlet to the triplet state, good water-solubility and excellent photostability still exist. Reported here are a new kind of dual-emissive semiconducting polymer nanoparticles (SPNs) containing fluorescent BODIPY derivatives and near-infrared (NIR) phosphorescent iridium(iii) complexes. In the SPNs, the BODIPY units serve as the energy donors in the fluorescence resonance energy transfer (FRET) process for enhancing the light absorption of the SPNs. The NIR emissive iridium(iii) complexes are chosen as the energy acceptors and efficient photosensitizers. The ionized semiconducting polymers can easily self-assemble to form hydrophilic nanoparticles and homogeneously disperse in aqueous solution. Meanwhile, the conjugated backbone of SPNs provides effective shielding for the two luminophores from photobleaching. Thus, an excellent overall performance of the SPN-based PSs has been realized and the high (1)O(2) yield (0.97) resulting from the synergistic effect of BODIPY units and iridium(iii) complexes through the FRET process is among the best reported for PSs. In addition, owing to the phosphorescence quenching of iridium(iii) complexes caused by (3)O(2), the SPNs can also be utilized for O(2) mapping in vitro and in vivo, which assists in the evaluation of the PDT process and provides important instructions in early-stage cancer diagnosis.
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spelling pubmed-65246652019-06-10 Enhancing singlet oxygen generation in semiconducting polymer nanoparticles through fluorescence resonance energy transfer for tumor treatment Jiang, Jiayang Qian, Yuanyuan Xu, Zihan Lv, Zhuang Tao, Peng Xie, Mingjuan Liu, Shujuan Huang, Wei Zhao, Qiang Chem Sci Chemistry Photosensitizers (PSs) are of particular importance for efficient photodynamic therapy (PDT). Challenges for PSs simultaneously possessing strong light-absorbing ability, high (1)O(2) generation by effective intersystem crossing from the singlet to the triplet state, good water-solubility and excellent photostability still exist. Reported here are a new kind of dual-emissive semiconducting polymer nanoparticles (SPNs) containing fluorescent BODIPY derivatives and near-infrared (NIR) phosphorescent iridium(iii) complexes. In the SPNs, the BODIPY units serve as the energy donors in the fluorescence resonance energy transfer (FRET) process for enhancing the light absorption of the SPNs. The NIR emissive iridium(iii) complexes are chosen as the energy acceptors and efficient photosensitizers. The ionized semiconducting polymers can easily self-assemble to form hydrophilic nanoparticles and homogeneously disperse in aqueous solution. Meanwhile, the conjugated backbone of SPNs provides effective shielding for the two luminophores from photobleaching. Thus, an excellent overall performance of the SPN-based PSs has been realized and the high (1)O(2) yield (0.97) resulting from the synergistic effect of BODIPY units and iridium(iii) complexes through the FRET process is among the best reported for PSs. In addition, owing to the phosphorescence quenching of iridium(iii) complexes caused by (3)O(2), the SPNs can also be utilized for O(2) mapping in vitro and in vivo, which assists in the evaluation of the PDT process and provides important instructions in early-stage cancer diagnosis. Royal Society of Chemistry 2019-04-11 /pmc/articles/PMC6524665/ /pubmed/31183060 http://dx.doi.org/10.1039/c8sc05501g Text en This journal is © The Royal Society of Chemistry 2019 http://creativecommons.org/licenses/by/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Jiang, Jiayang
Qian, Yuanyuan
Xu, Zihan
Lv, Zhuang
Tao, Peng
Xie, Mingjuan
Liu, Shujuan
Huang, Wei
Zhao, Qiang
Enhancing singlet oxygen generation in semiconducting polymer nanoparticles through fluorescence resonance energy transfer for tumor treatment
title Enhancing singlet oxygen generation in semiconducting polymer nanoparticles through fluorescence resonance energy transfer for tumor treatment
title_full Enhancing singlet oxygen generation in semiconducting polymer nanoparticles through fluorescence resonance energy transfer for tumor treatment
title_fullStr Enhancing singlet oxygen generation in semiconducting polymer nanoparticles through fluorescence resonance energy transfer for tumor treatment
title_full_unstemmed Enhancing singlet oxygen generation in semiconducting polymer nanoparticles through fluorescence resonance energy transfer for tumor treatment
title_short Enhancing singlet oxygen generation in semiconducting polymer nanoparticles through fluorescence resonance energy transfer for tumor treatment
title_sort enhancing singlet oxygen generation in semiconducting polymer nanoparticles through fluorescence resonance energy transfer for tumor treatment
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6524665/
https://www.ncbi.nlm.nih.gov/pubmed/31183060
http://dx.doi.org/10.1039/c8sc05501g
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