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Assessing cellular internalization and endosomal escape abilities of novel BUFII-Graphene oxide nanobioconjugates

Cell-penetrating agents based on functionalized nanoplatforms have emerged as a promising approach for developing more efficient and multifunctional delivery vehicles for treating various complex diseases that require reaching different intracellular compartments. Our previous work has shown that ac...

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Autores principales: Torres-Vanegas, Julian Daniel, Cifuentes, Javier, Puentes, Paola Ruiz, Quezada, Valentina, Garcia-Brand, Andres J., Cruz, Juan C., Reyes, Luis H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9521742/
https://www.ncbi.nlm.nih.gov/pubmed/36186591
http://dx.doi.org/10.3389/fchem.2022.974218
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author Torres-Vanegas, Julian Daniel
Cifuentes, Javier
Puentes, Paola Ruiz
Quezada, Valentina
Garcia-Brand, Andres J.
Cruz, Juan C.
Reyes, Luis H.
author_facet Torres-Vanegas, Julian Daniel
Cifuentes, Javier
Puentes, Paola Ruiz
Quezada, Valentina
Garcia-Brand, Andres J.
Cruz, Juan C.
Reyes, Luis H.
author_sort Torres-Vanegas, Julian Daniel
collection PubMed
description Cell-penetrating agents based on functionalized nanoplatforms have emerged as a promising approach for developing more efficient and multifunctional delivery vehicles for treating various complex diseases that require reaching different intracellular compartments. Our previous work has shown that achieving full cellular coverage and high endosomal escape rates is possible by interfacing magnetite nanoparticles with potent translocating peptides such as Buforin II (BUF-II). In this work, we extended such an approach to two graphene oxide (GO)-based nanoplatforms functionalized with different surface chemistries to which the peptide molecules were successfully conjugated. The developed nanobioconjugates were characterized via spectroscopic (FTIR, Raman), thermogravimetric, and microscopic (SEM, TEM, and AFM) techniques. Moreover, biocompatibility was assessed via standardized hemocompatibility and cytotoxicity assays in two cell lines. Finally, cell internalization and coverage and endosomal escape abilities were estimated with the aid of confocal microscopy analysis of colocalization of the nanobioconjugates with Lysotracker Green(®). Our findings showed coverage values that approached 100% for both cell lines, high biocompatibility, and endosomal escape levels ranging from 30 to 45% and 12–24% for Vero and THP-1 cell lines. This work provides the first routes toward developing the next-generation, carbon-based, cell-penetrating nanovehicles to deliver therapeutic agents. Further studies will be focused on elucidating the intracellular trafficking pathways of the nanobioconjugates to reach different cellular compartments.
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spelling pubmed-95217422022-09-30 Assessing cellular internalization and endosomal escape abilities of novel BUFII-Graphene oxide nanobioconjugates Torres-Vanegas, Julian Daniel Cifuentes, Javier Puentes, Paola Ruiz Quezada, Valentina Garcia-Brand, Andres J. Cruz, Juan C. Reyes, Luis H. Front Chem Chemistry Cell-penetrating agents based on functionalized nanoplatforms have emerged as a promising approach for developing more efficient and multifunctional delivery vehicles for treating various complex diseases that require reaching different intracellular compartments. Our previous work has shown that achieving full cellular coverage and high endosomal escape rates is possible by interfacing magnetite nanoparticles with potent translocating peptides such as Buforin II (BUF-II). In this work, we extended such an approach to two graphene oxide (GO)-based nanoplatforms functionalized with different surface chemistries to which the peptide molecules were successfully conjugated. The developed nanobioconjugates were characterized via spectroscopic (FTIR, Raman), thermogravimetric, and microscopic (SEM, TEM, and AFM) techniques. Moreover, biocompatibility was assessed via standardized hemocompatibility and cytotoxicity assays in two cell lines. Finally, cell internalization and coverage and endosomal escape abilities were estimated with the aid of confocal microscopy analysis of colocalization of the nanobioconjugates with Lysotracker Green(®). Our findings showed coverage values that approached 100% for both cell lines, high biocompatibility, and endosomal escape levels ranging from 30 to 45% and 12–24% for Vero and THP-1 cell lines. This work provides the first routes toward developing the next-generation, carbon-based, cell-penetrating nanovehicles to deliver therapeutic agents. Further studies will be focused on elucidating the intracellular trafficking pathways of the nanobioconjugates to reach different cellular compartments. Frontiers Media S.A. 2022-09-15 /pmc/articles/PMC9521742/ /pubmed/36186591 http://dx.doi.org/10.3389/fchem.2022.974218 Text en Copyright © 2022 Torres-Vanegas, Cifuentes, Puentes, Quezada, Garcia-Brand, Cruz and Reyes. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Torres-Vanegas, Julian Daniel
Cifuentes, Javier
Puentes, Paola Ruiz
Quezada, Valentina
Garcia-Brand, Andres J.
Cruz, Juan C.
Reyes, Luis H.
Assessing cellular internalization and endosomal escape abilities of novel BUFII-Graphene oxide nanobioconjugates
title Assessing cellular internalization and endosomal escape abilities of novel BUFII-Graphene oxide nanobioconjugates
title_full Assessing cellular internalization and endosomal escape abilities of novel BUFII-Graphene oxide nanobioconjugates
title_fullStr Assessing cellular internalization and endosomal escape abilities of novel BUFII-Graphene oxide nanobioconjugates
title_full_unstemmed Assessing cellular internalization and endosomal escape abilities of novel BUFII-Graphene oxide nanobioconjugates
title_short Assessing cellular internalization and endosomal escape abilities of novel BUFII-Graphene oxide nanobioconjugates
title_sort assessing cellular internalization and endosomal escape abilities of novel bufii-graphene oxide nanobioconjugates
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9521742/
https://www.ncbi.nlm.nih.gov/pubmed/36186591
http://dx.doi.org/10.3389/fchem.2022.974218
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