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Super-stable cyanine@albumin fluorophore for enhanced NIR-II bioimaging

Near-infrared-II (NIR-II) dyes could be encapsulated by either exogenous or endogenous albumin to form stable complexes for deep tissue bioimaging. However, we still lack a complete understanding of the interaction mechanism of the dye@albumin complex. Studying this principle is essential to guide e...

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Autores principales: Bai, Lang, Hu, Zhubin, Han, Tianyang, Wang, Yajun, Xu, Jiajun, Jiang, Guanyu, Feng, Xin, Sun, Bin, Liu, Xiangping, Tian, Rui, Sun, Haitao, Zhang, Songling, Chen, Xiaoyuan, Zhu, Shoujun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9254253/
https://www.ncbi.nlm.nih.gov/pubmed/35832086
http://dx.doi.org/10.7150/thno.71443
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author Bai, Lang
Hu, Zhubin
Han, Tianyang
Wang, Yajun
Xu, Jiajun
Jiang, Guanyu
Feng, Xin
Sun, Bin
Liu, Xiangping
Tian, Rui
Sun, Haitao
Zhang, Songling
Chen, Xiaoyuan
Zhu, Shoujun
author_facet Bai, Lang
Hu, Zhubin
Han, Tianyang
Wang, Yajun
Xu, Jiajun
Jiang, Guanyu
Feng, Xin
Sun, Bin
Liu, Xiangping
Tian, Rui
Sun, Haitao
Zhang, Songling
Chen, Xiaoyuan
Zhu, Shoujun
author_sort Bai, Lang
collection PubMed
description Near-infrared-II (NIR-II) dyes could be encapsulated by either exogenous or endogenous albumin to form stable complexes for deep tissue bioimaging. However, we still lack a complete understanding of the interaction mechanism of the dye@albumin complex. Studying this principle is essential to guide efficient dye synthesis and develop NIR-II probes with improved brightness, photostability, etc. Methods: Here, we screen and test the optical and chemical properties of dye@albumin fluorophores, and systematically investigate the binding sites and the relationship between dye structures and binding degree. Super-stable cyanine dye@albumin fluorophores are rationally obtained, and we also evaluate their pharmacokinetics and long-lasting NIR-II imaging abilities. Results: We identify several key parameters of cyanine dyes governing the supramolecular/covalent binding to albumin, including a six-membered ring with chlorine (Cl), the small size of side groups, and relatively high hydrophobicity. The tailored fluorophore (IR-780@albumin) exhibits much-improved photostability, serving as a long-lasting imaging probe for NIR-II bioimaging. Conclusion: Our study reveals that the chloride-containing cyanine dyes with the above-screened chemical structure (e.g. IR-780) could be lodged into albumin more efficiently, producing a much more stable fluorescent probe. Our finding partly solves the photobleaching issue of clinically-available cyanine dyes, enriching the probe library for NIR-II bioimaging and imaging-guided surgery.
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spelling pubmed-92542532022-07-12 Super-stable cyanine@albumin fluorophore for enhanced NIR-II bioimaging Bai, Lang Hu, Zhubin Han, Tianyang Wang, Yajun Xu, Jiajun Jiang, Guanyu Feng, Xin Sun, Bin Liu, Xiangping Tian, Rui Sun, Haitao Zhang, Songling Chen, Xiaoyuan Zhu, Shoujun Theranostics Research Paper Near-infrared-II (NIR-II) dyes could be encapsulated by either exogenous or endogenous albumin to form stable complexes for deep tissue bioimaging. However, we still lack a complete understanding of the interaction mechanism of the dye@albumin complex. Studying this principle is essential to guide efficient dye synthesis and develop NIR-II probes with improved brightness, photostability, etc. Methods: Here, we screen and test the optical and chemical properties of dye@albumin fluorophores, and systematically investigate the binding sites and the relationship between dye structures and binding degree. Super-stable cyanine dye@albumin fluorophores are rationally obtained, and we also evaluate their pharmacokinetics and long-lasting NIR-II imaging abilities. Results: We identify several key parameters of cyanine dyes governing the supramolecular/covalent binding to albumin, including a six-membered ring with chlorine (Cl), the small size of side groups, and relatively high hydrophobicity. The tailored fluorophore (IR-780@albumin) exhibits much-improved photostability, serving as a long-lasting imaging probe for NIR-II bioimaging. Conclusion: Our study reveals that the chloride-containing cyanine dyes with the above-screened chemical structure (e.g. IR-780) could be lodged into albumin more efficiently, producing a much more stable fluorescent probe. Our finding partly solves the photobleaching issue of clinically-available cyanine dyes, enriching the probe library for NIR-II bioimaging and imaging-guided surgery. Ivyspring International Publisher 2022-05-26 /pmc/articles/PMC9254253/ /pubmed/35832086 http://dx.doi.org/10.7150/thno.71443 Text en © The author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Bai, Lang
Hu, Zhubin
Han, Tianyang
Wang, Yajun
Xu, Jiajun
Jiang, Guanyu
Feng, Xin
Sun, Bin
Liu, Xiangping
Tian, Rui
Sun, Haitao
Zhang, Songling
Chen, Xiaoyuan
Zhu, Shoujun
Super-stable cyanine@albumin fluorophore for enhanced NIR-II bioimaging
title Super-stable cyanine@albumin fluorophore for enhanced NIR-II bioimaging
title_full Super-stable cyanine@albumin fluorophore for enhanced NIR-II bioimaging
title_fullStr Super-stable cyanine@albumin fluorophore for enhanced NIR-II bioimaging
title_full_unstemmed Super-stable cyanine@albumin fluorophore for enhanced NIR-II bioimaging
title_short Super-stable cyanine@albumin fluorophore for enhanced NIR-II bioimaging
title_sort super-stable cyanine@albumin fluorophore for enhanced nir-ii bioimaging
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9254253/
https://www.ncbi.nlm.nih.gov/pubmed/35832086
http://dx.doi.org/10.7150/thno.71443
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