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All-in-one mitochondria-targeted NIR-II fluorophores for cancer therapy and imaging

Small-molecule subcellular organelle-targeting theranostic probes are crucial for early disease diagnosis and treatment. The imaging window of these molecules is mainly focused on the visible and near-infrared region (below ∼900 nm) which limits the tissue penetration depth and therapeutic effects....

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Autores principales: Zheng, Yujia, Li, Qianqian, Wu, Jing, Luo, Ziyi, Zhou, Wenyi, Li, Anguo, Chen, Yanling, Rouzi, Tuerxunayi, Tian, Tian, Zhou, Hui, Zeng, Xiaodong, Li, Yang, Cheng, Xiaoding, Wei, Yongchang, Deng, Zixin, Zhou, Fuling, Hong, Xuechuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179124/
https://www.ncbi.nlm.nih.gov/pubmed/34163948
http://dx.doi.org/10.1039/d0sc04727a
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author Zheng, Yujia
Li, Qianqian
Wu, Jing
Luo, Ziyi
Zhou, Wenyi
Li, Anguo
Chen, Yanling
Rouzi, Tuerxunayi
Tian, Tian
Zhou, Hui
Zeng, Xiaodong
Li, Yang
Cheng, Xiaoding
Wei, Yongchang
Deng, Zixin
Zhou, Fuling
Hong, Xuechuan
author_facet Zheng, Yujia
Li, Qianqian
Wu, Jing
Luo, Ziyi
Zhou, Wenyi
Li, Anguo
Chen, Yanling
Rouzi, Tuerxunayi
Tian, Tian
Zhou, Hui
Zeng, Xiaodong
Li, Yang
Cheng, Xiaoding
Wei, Yongchang
Deng, Zixin
Zhou, Fuling
Hong, Xuechuan
author_sort Zheng, Yujia
collection PubMed
description Small-molecule subcellular organelle-targeting theranostic probes are crucial for early disease diagnosis and treatment. The imaging window of these molecules is mainly focused on the visible and near-infrared region (below ∼900 nm) which limits the tissue penetration depth and therapeutic effects. Herein, a novel NIR-II small-molecule probe H4–PEG-Glu with a thiopyrylium cation was synthesized. H4–PEG-Glu not only can quickly and effectively image mitochondria in acute myeloid leukemia (AML) cells, and induce G(0)/G(1) phase arrest by the intrinsic mitochondrial apoptosis pathway w/o irradiation, but also exhibit moderate cytotoxicity against AML cancer cells in a dose dependent-manner without laser irradiation. The THP-1 cells treated with H4–PEG-Glu upon NIR laser irradiation showed enhanced chemo- and photothermal therapy (CPTT) with 93.07% ± 6.43 apoptosis by Annexin V staining. Meanwhile, H4–PEG-Glu displayed high synergistic CPTT effects in vivo, as well as specific NIR-II tumor imaging in AML patient derived PDX mouse models for the first time. Our work lays down a solid foundation for designing small-molecule NIR-II mitochondria-selective theranostic probes.
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spelling pubmed-81791242021-06-22 All-in-one mitochondria-targeted NIR-II fluorophores for cancer therapy and imaging Zheng, Yujia Li, Qianqian Wu, Jing Luo, Ziyi Zhou, Wenyi Li, Anguo Chen, Yanling Rouzi, Tuerxunayi Tian, Tian Zhou, Hui Zeng, Xiaodong Li, Yang Cheng, Xiaoding Wei, Yongchang Deng, Zixin Zhou, Fuling Hong, Xuechuan Chem Sci Chemistry Small-molecule subcellular organelle-targeting theranostic probes are crucial for early disease diagnosis and treatment. The imaging window of these molecules is mainly focused on the visible and near-infrared region (below ∼900 nm) which limits the tissue penetration depth and therapeutic effects. Herein, a novel NIR-II small-molecule probe H4–PEG-Glu with a thiopyrylium cation was synthesized. H4–PEG-Glu not only can quickly and effectively image mitochondria in acute myeloid leukemia (AML) cells, and induce G(0)/G(1) phase arrest by the intrinsic mitochondrial apoptosis pathway w/o irradiation, but also exhibit moderate cytotoxicity against AML cancer cells in a dose dependent-manner without laser irradiation. The THP-1 cells treated with H4–PEG-Glu upon NIR laser irradiation showed enhanced chemo- and photothermal therapy (CPTT) with 93.07% ± 6.43 apoptosis by Annexin V staining. Meanwhile, H4–PEG-Glu displayed high synergistic CPTT effects in vivo, as well as specific NIR-II tumor imaging in AML patient derived PDX mouse models for the first time. Our work lays down a solid foundation for designing small-molecule NIR-II mitochondria-selective theranostic probes. The Royal Society of Chemistry 2020-11-27 /pmc/articles/PMC8179124/ /pubmed/34163948 http://dx.doi.org/10.1039/d0sc04727a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zheng, Yujia
Li, Qianqian
Wu, Jing
Luo, Ziyi
Zhou, Wenyi
Li, Anguo
Chen, Yanling
Rouzi, Tuerxunayi
Tian, Tian
Zhou, Hui
Zeng, Xiaodong
Li, Yang
Cheng, Xiaoding
Wei, Yongchang
Deng, Zixin
Zhou, Fuling
Hong, Xuechuan
All-in-one mitochondria-targeted NIR-II fluorophores for cancer therapy and imaging
title All-in-one mitochondria-targeted NIR-II fluorophores for cancer therapy and imaging
title_full All-in-one mitochondria-targeted NIR-II fluorophores for cancer therapy and imaging
title_fullStr All-in-one mitochondria-targeted NIR-II fluorophores for cancer therapy and imaging
title_full_unstemmed All-in-one mitochondria-targeted NIR-II fluorophores for cancer therapy and imaging
title_short All-in-one mitochondria-targeted NIR-II fluorophores for cancer therapy and imaging
title_sort all-in-one mitochondria-targeted nir-ii fluorophores for cancer therapy and imaging
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179124/
https://www.ncbi.nlm.nih.gov/pubmed/34163948
http://dx.doi.org/10.1039/d0sc04727a
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