Gallic Acid–Triethylene Glycol Aptadendrimers Synthesis, Biophysical Characterization and Cellular Evaluation
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Herein, we describe the synthesis of an aptadendrimer by covalent bioconjugation of a gallic acid–triethylene glycol (GATG) dendrimer with the G-quadruplex (G4) AT11 aptamer (a modified Academic Editor: Wouter L. J. Hinrichs Received: 28 September 2022 Accepted: 11 November 2022 Published: 14 November 2022 Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. Copyright: © 2022 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 (https:// creativecommons.org/licenses/by/ 4.0/). version of AS1411) at the surface. We evaluated the loading and interaction of an acridine orange ligand, termed C8, that acts as an anticancer drug and binder/stabilizer of the G4 structure of AT11. Dynamic light scattering experiments demonstrated that the aptadendrimer was approximately 3.1 nm in diameter. Both steady-state and time-resolved fluorescence anisotropy evidenced the interaction between the aptadendrimer and C8. Additionally, we demonstrated that the iodine atom of the C8 ligand acts as an effective intramolecular quencher in solution, while upon complexation with the aptadendrimer, it adopts a more extended conformation. Docking studies support this conclusion. Release experiments show a delivery of C8 after 4 h. The aptadendrimers tend to localize in the cytoplasm of various cell lines studied as demonstrated by confocal microscopy. The internalization of the aptadendrimers is not nucleolin-mediated or by passive diffusion, but via endocytosis. MTT studies with prostate cancer cells and non-malignant cells evidenced high cytotoxicity mainly due to the C8 ligand. The rapid internalization of the aptadendrimers and the f luorescence properties make them attractive for the development of potential nanocarriers.
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Miranda, A.; Lopez-Blanco, R.; Lopes-Nunes, J.; Melo, A.M.; Campello, M.P.C.; Paulo, A.; Oliveira, M.C.; Mergny, J.-L.; Oliveira, P.A.; Fernandez-Megia, E.; et al. Gallic Acid–Triethylene Glycol Aptadendrimers Synthesis, Biophysical Characterization and Cellular Evaluation. Pharmaceutics 2022, 14, 2456. https://doi.org/ 10.3390/pharmaceutics14112456
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https://doi.org/10.3390/pharmaceutics14112456Sponsors
This work was supported by PESSOA program ref. 5079, project FCT ref. UIDP/00709/2020 ORACLE, “Bolsa de Investigação em Oncologia Dr. Rocha Alves do Núcleo Regional do Centro da Liga Portuguesa Contra o Cancro” and Project CENTRO-01-0145-FEDER-181235, PAPILOMA-Vaginal gel for topical application to precancerous lesions caused by Human Papilloma Virus. Thanks are due to FCT/MCT for the financial support to CICS-UBI (ref. UIDB/00709/2020) research unit, C2TN-IST UID/Multi/04349/2019 research unit, PPBI-Portuguese Platform of BioImaging research unit (POCI-01-0145-FEDER-022122), and to the Portuguese NMR Network (ROTEIRO/0031/2013PINFRA/22161/2016), through national funds and, where applicable, co-financed by the FEDER through COMPETE2020, POCI, PORL and PIDDAC. This article/publication is based upon work from COST Action CA 17140 “Cancer Nanomedicine from the Bench to the Bedside” supported by COST (European Cooperation in Science and Technology). The authors acknowledge Project UIDB/04565/2020 of the Research Unit Institute for Bioengineering and Biosciences—iBB, project LA/P/0140/2020 of the Associate Laboratory Institute for Health and Bioeconomy—i4HB, and PTDC/BIA-BFS/30959/2017 project. This work was supported by the Spanish Ministry of Science and Innovation (RTI2018-102212-B-I00), the Xunta de Galicia (ED431C 2022/21, and Centro Singular deInvestigación de Galicia accreditation 2019 2022, ED431G2019/03), Axencia Galega de Innovación (IN845D 2020/09), and the European Union (European Regional Development Fund-ERDF).
André Miranda acknowledges the research fellowship from “Rede Nacional de Ressonância Magnética Nuclear” ref. (PINFRA/22161/2016-B4) and the doctoral fellowship grant from FCT—Foundation for Science and Technology (ref. 2021.04785.BD). Additionally, acknowledges to STSM grant from COST Action 17140 (ref. ECOST-STSM-Request-CA17140-47396). J. Lopes-Nunes acknowledges the doctoral fellowship grant from the FCT—Foundation for Science and Technology ref. 2020.05329.BD. A.M.M. acknowledges the Junior Researcher position under the FCT CEEC-individual call (CEECIND/00884/2017). The authors thank Alexander Fedorov for assistance with time-resolved fluorescence measurements.
André Miranda acknowledges the research fellowship from “Rede Nacional de Ressonância Magnética Nuclear” ref. (PINFRA/22161/2016-B4) and the doctoral fellowship grant from FCT—Foundation for Science and Technology (ref. 2021.04785.BD). Additionally, acknowledges to STSM grant from COST Action 17140 (ref. ECOST-STSM-Request-CA17140-47396). J. Lopes-Nunes acknowledges the doctoral fellowship grant from the FCT—Foundation for Science and Technology ref. 2020.05329.BD. A.M.M. acknowledges the Junior Researcher position under the FCT CEEC-individual call (CEECIND/00884/2017). The authors thank Alexander Fedorov for assistance with time-resolved fluorescence measurements.
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© 2022 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 (https:// creativecommons.org/licenses/by/ 4.0/).
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