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Hybrid Multimodal Imaging Synthons for Chemoselective and Efficient Biomolecule Modification with Chelator and Near-Infrared Fluorescent Cyanine Dye

The development of hybrid multimodal imaging synthons (MIS), carrying in addition to a chelator for radiometal labeling also a near-infrared (NIR) fluorescent cyanine dye was the aim of this work. The MIS should be introducible into biomolecules of choice via an efficient and chemoselective click ch...

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Autores principales: Hübner, Ralph, von Kiedrowski, Valeska, Benkert, Vanessa, Wängler, Björn, Schirrmacher, Ralf, Krämer, Roland, Wängler, Carmen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7558102/
https://www.ncbi.nlm.nih.gov/pubmed/32948032
http://dx.doi.org/10.3390/ph13090250
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author Hübner, Ralph
von Kiedrowski, Valeska
Benkert, Vanessa
Wängler, Björn
Schirrmacher, Ralf
Krämer, Roland
Wängler, Carmen
author_facet Hübner, Ralph
von Kiedrowski, Valeska
Benkert, Vanessa
Wängler, Björn
Schirrmacher, Ralf
Krämer, Roland
Wängler, Carmen
author_sort Hübner, Ralph
collection PubMed
description The development of hybrid multimodal imaging synthons (MIS), carrying in addition to a chelator for radiometal labeling also a near-infrared (NIR) fluorescent cyanine dye was the aim of this work. The MIS should be introducible into biomolecules of choice via an efficient and chemoselective click chemistry reaction. After chemical optimization, a successful synthetic strategy towards such hybrid MIS was developed, based on solid phase-based synthesis techniques and applying different near-infrared fluorescent cyanine dyes. The developed hybrid agents were shown to be easily introducible into a model homobivalent peptidic gastrin-releasing peptide receptor- (GRPR)-specific carrier without forming any side products and the MIS as well as their bioconjugates were radiolabeled with the positron-emitter (68)Ga(3+). The hybrid multimodal agents were characterized with regard to their log(D)s, GRPR target affinities and photophysical characteristics. It could be shown that the properties of the bioconjugates were not per se affected by the introduction of the MIS but that the cyanine dye used and specifically the number of comprised negative charges per dye molecule can have a considerable influence on target receptor binding. Thus, the molecular toolbox described here enables the synthesis of tailored hybrid multimodal imaging synthons for biomolecule modification, meeting the specific need and envisioned application of the combined imaging agent.
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spelling pubmed-75581022020-10-29 Hybrid Multimodal Imaging Synthons for Chemoselective and Efficient Biomolecule Modification with Chelator and Near-Infrared Fluorescent Cyanine Dye Hübner, Ralph von Kiedrowski, Valeska Benkert, Vanessa Wängler, Björn Schirrmacher, Ralf Krämer, Roland Wängler, Carmen Pharmaceuticals (Basel) Article The development of hybrid multimodal imaging synthons (MIS), carrying in addition to a chelator for radiometal labeling also a near-infrared (NIR) fluorescent cyanine dye was the aim of this work. The MIS should be introducible into biomolecules of choice via an efficient and chemoselective click chemistry reaction. After chemical optimization, a successful synthetic strategy towards such hybrid MIS was developed, based on solid phase-based synthesis techniques and applying different near-infrared fluorescent cyanine dyes. The developed hybrid agents were shown to be easily introducible into a model homobivalent peptidic gastrin-releasing peptide receptor- (GRPR)-specific carrier without forming any side products and the MIS as well as their bioconjugates were radiolabeled with the positron-emitter (68)Ga(3+). The hybrid multimodal agents were characterized with regard to their log(D)s, GRPR target affinities and photophysical characteristics. It could be shown that the properties of the bioconjugates were not per se affected by the introduction of the MIS but that the cyanine dye used and specifically the number of comprised negative charges per dye molecule can have a considerable influence on target receptor binding. Thus, the molecular toolbox described here enables the synthesis of tailored hybrid multimodal imaging synthons for biomolecule modification, meeting the specific need and envisioned application of the combined imaging agent. MDPI 2020-09-16 /pmc/articles/PMC7558102/ /pubmed/32948032 http://dx.doi.org/10.3390/ph13090250 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hübner, Ralph
von Kiedrowski, Valeska
Benkert, Vanessa
Wängler, Björn
Schirrmacher, Ralf
Krämer, Roland
Wängler, Carmen
Hybrid Multimodal Imaging Synthons for Chemoselective and Efficient Biomolecule Modification with Chelator and Near-Infrared Fluorescent Cyanine Dye
title Hybrid Multimodal Imaging Synthons for Chemoselective and Efficient Biomolecule Modification with Chelator and Near-Infrared Fluorescent Cyanine Dye
title_full Hybrid Multimodal Imaging Synthons for Chemoselective and Efficient Biomolecule Modification with Chelator and Near-Infrared Fluorescent Cyanine Dye
title_fullStr Hybrid Multimodal Imaging Synthons for Chemoselective and Efficient Biomolecule Modification with Chelator and Near-Infrared Fluorescent Cyanine Dye
title_full_unstemmed Hybrid Multimodal Imaging Synthons for Chemoselective and Efficient Biomolecule Modification with Chelator and Near-Infrared Fluorescent Cyanine Dye
title_short Hybrid Multimodal Imaging Synthons for Chemoselective and Efficient Biomolecule Modification with Chelator and Near-Infrared Fluorescent Cyanine Dye
title_sort hybrid multimodal imaging synthons for chemoselective and efficient biomolecule modification with chelator and near-infrared fluorescent cyanine dye
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7558102/
https://www.ncbi.nlm.nih.gov/pubmed/32948032
http://dx.doi.org/10.3390/ph13090250
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