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Mannose-decorated hybrid nanoparticles for enhanced macrophage targeting

Our goal was to design nanocarriers that specifically target and deliver therapeutics to polarized macrophages. Mannose receptors are highly overexpressed on polarized macrophages. In this study, we constructed Pluronic® -F127 polymer and tannic acid (TA) based nanoparticles (F127-TA core nanopartic...

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Autores principales: Hatami, Elham, Mu, Ying, Shields, Deanna N., Chauhan, Subhash C., Kumar, Santosh, Cory, Theodore J., Yallapu, Murali M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6351286/
https://www.ncbi.nlm.nih.gov/pubmed/30723809
http://dx.doi.org/10.1016/j.bbrep.2019.01.007
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author Hatami, Elham
Mu, Ying
Shields, Deanna N.
Chauhan, Subhash C.
Kumar, Santosh
Cory, Theodore J.
Yallapu, Murali M.
author_facet Hatami, Elham
Mu, Ying
Shields, Deanna N.
Chauhan, Subhash C.
Kumar, Santosh
Cory, Theodore J.
Yallapu, Murali M.
author_sort Hatami, Elham
collection PubMed
description Our goal was to design nanocarriers that specifically target and deliver therapeutics to polarized macrophages. Mannose receptors are highly overexpressed on polarized macrophages. In this study, we constructed Pluronic® -F127 polymer and tannic acid (TA) based nanoparticles (F127-TA core nanoparticles) with varying mannose densities. The particle size of the optimized mannose-decorated F127-TA hybrid nanoparticles (MDNPs) was found to be ~ 265 nm with a negative zeta potential of ~ − 4.5 mV. No significant changes in the size and zeta potentials of nanoparticles were observed, which demonstrated structural integrity and stability of the nanoformulation. Physicochemical characteristics of MDNPs were evaluated by FTIR and TGA and demonstrated the presence of mannose units on surface nanoparticles. A mannose-dependent cellular targeting and uptake of MDNPs was found in U937 macrophages. The uptake process was found to vary directly with time and volume of MDNPs nanoparticles. The uptake pattern is higher in M2 than M1. This behavior was also evident from the instantaneous and superior binding profile of M2 macrophage lysate protein with MDNPs over that of M1 macrophage lysate protein. These results demonstrated that an appropriate mannose ligand density was confirmed, suggesting efficient targeting of M2. Altogether, these data support that the MDNPs formulation could serve as a targeted therapeutic guide in the generation of nanomedicine to treat various conditions as an anti-inflammation therapy.
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spelling pubmed-63512862019-02-05 Mannose-decorated hybrid nanoparticles for enhanced macrophage targeting Hatami, Elham Mu, Ying Shields, Deanna N. Chauhan, Subhash C. Kumar, Santosh Cory, Theodore J. Yallapu, Murali M. Biochem Biophys Rep Research Article Our goal was to design nanocarriers that specifically target and deliver therapeutics to polarized macrophages. Mannose receptors are highly overexpressed on polarized macrophages. In this study, we constructed Pluronic® -F127 polymer and tannic acid (TA) based nanoparticles (F127-TA core nanoparticles) with varying mannose densities. The particle size of the optimized mannose-decorated F127-TA hybrid nanoparticles (MDNPs) was found to be ~ 265 nm with a negative zeta potential of ~ − 4.5 mV. No significant changes in the size and zeta potentials of nanoparticles were observed, which demonstrated structural integrity and stability of the nanoformulation. Physicochemical characteristics of MDNPs were evaluated by FTIR and TGA and demonstrated the presence of mannose units on surface nanoparticles. A mannose-dependent cellular targeting and uptake of MDNPs was found in U937 macrophages. The uptake process was found to vary directly with time and volume of MDNPs nanoparticles. The uptake pattern is higher in M2 than M1. This behavior was also evident from the instantaneous and superior binding profile of M2 macrophage lysate protein with MDNPs over that of M1 macrophage lysate protein. These results demonstrated that an appropriate mannose ligand density was confirmed, suggesting efficient targeting of M2. Altogether, these data support that the MDNPs formulation could serve as a targeted therapeutic guide in the generation of nanomedicine to treat various conditions as an anti-inflammation therapy. Elsevier 2019-01-25 /pmc/articles/PMC6351286/ /pubmed/30723809 http://dx.doi.org/10.1016/j.bbrep.2019.01.007 Text en © 2019 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Hatami, Elham
Mu, Ying
Shields, Deanna N.
Chauhan, Subhash C.
Kumar, Santosh
Cory, Theodore J.
Yallapu, Murali M.
Mannose-decorated hybrid nanoparticles for enhanced macrophage targeting
title Mannose-decorated hybrid nanoparticles for enhanced macrophage targeting
title_full Mannose-decorated hybrid nanoparticles for enhanced macrophage targeting
title_fullStr Mannose-decorated hybrid nanoparticles for enhanced macrophage targeting
title_full_unstemmed Mannose-decorated hybrid nanoparticles for enhanced macrophage targeting
title_short Mannose-decorated hybrid nanoparticles for enhanced macrophage targeting
title_sort mannose-decorated hybrid nanoparticles for enhanced macrophage targeting
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6351286/
https://www.ncbi.nlm.nih.gov/pubmed/30723809
http://dx.doi.org/10.1016/j.bbrep.2019.01.007
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