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Effect of the enantiomeric structure of hydrophobic polymers on the encapsulation properties of a second near infrared (NIR-II) fluorescent dye for in vivo deep imaging

Over-thousand-nanometer (OTN) near-infrared (NIR) fluorophores are useful for biological deep imaging because of the reduced absorption and scattering of OTN-NIR light in biological tissues. IR-1061, an OTN-NIR fluorescent dye, has a hydrophobic and cationic backbone in its molecular structure, and...

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Autores principales: Ichihashi, Kotoe, Umezawa, Masakazu, Ueya, Yuichi, Okubo, Kyohei, Takamoto, Eiji, Matsuda, Takashi, Kamimura, Masao, Soga, Kohei
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/PMC8979197/
https://www.ncbi.nlm.nih.gov/pubmed/35425212
http://dx.doi.org/10.1039/d1ra08330a
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author Ichihashi, Kotoe
Umezawa, Masakazu
Ueya, Yuichi
Okubo, Kyohei
Takamoto, Eiji
Matsuda, Takashi
Kamimura, Masao
Soga, Kohei
author_facet Ichihashi, Kotoe
Umezawa, Masakazu
Ueya, Yuichi
Okubo, Kyohei
Takamoto, Eiji
Matsuda, Takashi
Kamimura, Masao
Soga, Kohei
author_sort Ichihashi, Kotoe
collection PubMed
description Over-thousand-nanometer (OTN) near-infrared (NIR) fluorophores are useful for biological deep imaging because of the reduced absorption and scattering of OTN-NIR light in biological tissues. IR-1061, an OTN-NIR fluorescent dye, has a hydrophobic and cationic backbone in its molecular structure, and a non-polar counter ion, BF(4)(−). Because of its hydrophobicity, IR-1061 needs to be encapsulated in a hydrophobic microenvironment, such as a hydrophobic core of polymer micelles, shielded with a hydrophilic shell for bioimaging applications. Previous studies have shown that the affinity of dyes with hydrophobic core polymers is dependent on the polarity of the core polymer, and that this characteristic is important for designing dye-encapsulated micelles to be used in bioimaging. In this study, the dye–polymer affinity was investigated using hydrophobic polymer films with different chiral structures of poly(lactic acid). IR-1061 showed higher affinity for l- and d-lactic acid copolymers (i.e., poly(dl-lactic acid) (PDLLA)) than to poly(l-lactic acid) (PLLA), as IR-1061 shows less dimerization in PDLLA than in PLLA. In contrast, the stability of IR-1061 in PDLLA was less than that in PLLA due to the influence of hydroxyl groups. Choosing hydrophobic core polymers for their robustness and dye affinity is an effective strategy to prepare OTN-NIR fluorescent probes for in vivo deep imaging.
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spelling pubmed-89791972022-04-13 Effect of the enantiomeric structure of hydrophobic polymers on the encapsulation properties of a second near infrared (NIR-II) fluorescent dye for in vivo deep imaging Ichihashi, Kotoe Umezawa, Masakazu Ueya, Yuichi Okubo, Kyohei Takamoto, Eiji Matsuda, Takashi Kamimura, Masao Soga, Kohei RSC Adv Chemistry Over-thousand-nanometer (OTN) near-infrared (NIR) fluorophores are useful for biological deep imaging because of the reduced absorption and scattering of OTN-NIR light in biological tissues. IR-1061, an OTN-NIR fluorescent dye, has a hydrophobic and cationic backbone in its molecular structure, and a non-polar counter ion, BF(4)(−). Because of its hydrophobicity, IR-1061 needs to be encapsulated in a hydrophobic microenvironment, such as a hydrophobic core of polymer micelles, shielded with a hydrophilic shell for bioimaging applications. Previous studies have shown that the affinity of dyes with hydrophobic core polymers is dependent on the polarity of the core polymer, and that this characteristic is important for designing dye-encapsulated micelles to be used in bioimaging. In this study, the dye–polymer affinity was investigated using hydrophobic polymer films with different chiral structures of poly(lactic acid). IR-1061 showed higher affinity for l- and d-lactic acid copolymers (i.e., poly(dl-lactic acid) (PDLLA)) than to poly(l-lactic acid) (PLLA), as IR-1061 shows less dimerization in PDLLA than in PLLA. In contrast, the stability of IR-1061 in PDLLA was less than that in PLLA due to the influence of hydroxyl groups. Choosing hydrophobic core polymers for their robustness and dye affinity is an effective strategy to prepare OTN-NIR fluorescent probes for in vivo deep imaging. The Royal Society of Chemistry 2022-01-06 /pmc/articles/PMC8979197/ /pubmed/35425212 http://dx.doi.org/10.1039/d1ra08330a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Ichihashi, Kotoe
Umezawa, Masakazu
Ueya, Yuichi
Okubo, Kyohei
Takamoto, Eiji
Matsuda, Takashi
Kamimura, Masao
Soga, Kohei
Effect of the enantiomeric structure of hydrophobic polymers on the encapsulation properties of a second near infrared (NIR-II) fluorescent dye for in vivo deep imaging
title Effect of the enantiomeric structure of hydrophobic polymers on the encapsulation properties of a second near infrared (NIR-II) fluorescent dye for in vivo deep imaging
title_full Effect of the enantiomeric structure of hydrophobic polymers on the encapsulation properties of a second near infrared (NIR-II) fluorescent dye for in vivo deep imaging
title_fullStr Effect of the enantiomeric structure of hydrophobic polymers on the encapsulation properties of a second near infrared (NIR-II) fluorescent dye for in vivo deep imaging
title_full_unstemmed Effect of the enantiomeric structure of hydrophobic polymers on the encapsulation properties of a second near infrared (NIR-II) fluorescent dye for in vivo deep imaging
title_short Effect of the enantiomeric structure of hydrophobic polymers on the encapsulation properties of a second near infrared (NIR-II) fluorescent dye for in vivo deep imaging
title_sort effect of the enantiomeric structure of hydrophobic polymers on the encapsulation properties of a second near infrared (nir-ii) fluorescent dye for in vivo deep imaging
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8979197/
https://www.ncbi.nlm.nih.gov/pubmed/35425212
http://dx.doi.org/10.1039/d1ra08330a
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