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Cyclodextrin-Based Nanostructure Efficiently Delivers siRNA to Glioblastoma Cells Preferentially via Macropinocytosis

Small interfering ribonucleic acid (siRNA) has the potential to revolutionize therapeutics since it can knockdown very efficiently the target protein. It is starting to be widely used to interfere with cell infection by HIV. However, naked siRNAs are unable to get into the cell, requiring the use of...

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Autores principales: Manzanares, Darío, Pérez-Carrión, María Dolores, Jiménez Blanco, José Luis, Ortiz Mellet, Carmen, García Fernández, José Manuel, Ceña, Valentín
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7731237/
https://www.ncbi.nlm.nih.gov/pubmed/33291321
http://dx.doi.org/10.3390/ijms21239306
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author Manzanares, Darío
Pérez-Carrión, María Dolores
Jiménez Blanco, José Luis
Ortiz Mellet, Carmen
García Fernández, José Manuel
Ceña, Valentín
author_facet Manzanares, Darío
Pérez-Carrión, María Dolores
Jiménez Blanco, José Luis
Ortiz Mellet, Carmen
García Fernández, José Manuel
Ceña, Valentín
author_sort Manzanares, Darío
collection PubMed
description Small interfering ribonucleic acid (siRNA) has the potential to revolutionize therapeutics since it can knockdown very efficiently the target protein. It is starting to be widely used to interfere with cell infection by HIV. However, naked siRNAs are unable to get into the cell, requiring the use of carriers to protect them from degradation and transporting them across the cell membrane. There is no information about which is the most efficient endocytosis route for high siRNA transfection efficiency. One of the most promising carriers to efficiently deliver siRNA are cyclodextrin derivatives. We have used nanocomplexes composed of siRNA and a β-cyclodextrin derivative, AMC6, with a very high transfection efficiency to selectively knockdown clathrin heavy chain, caveolin 1, and p21 Activated Kinase 1 to specifically block clathrin-mediated, caveolin-mediated and macropinocytosis endocytic pathways. The main objective was to identify whether there is a preferential endocytic pathway associated with high siRNA transfection efficiency. We have found that macropinocytosis is the preferential entry pathway for the nanoparticle and its associated siRNA cargo. However, blockade of macropinocytosis does not affect AMC6-mediated transfection efficiency, suggesting that macropinocytosis blockade can be functionally compensated by an increase in clathrin- and caveolin-mediated endocytosis.
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spelling pubmed-77312372020-12-12 Cyclodextrin-Based Nanostructure Efficiently Delivers siRNA to Glioblastoma Cells Preferentially via Macropinocytosis Manzanares, Darío Pérez-Carrión, María Dolores Jiménez Blanco, José Luis Ortiz Mellet, Carmen García Fernández, José Manuel Ceña, Valentín Int J Mol Sci Article Small interfering ribonucleic acid (siRNA) has the potential to revolutionize therapeutics since it can knockdown very efficiently the target protein. It is starting to be widely used to interfere with cell infection by HIV. However, naked siRNAs are unable to get into the cell, requiring the use of carriers to protect them from degradation and transporting them across the cell membrane. There is no information about which is the most efficient endocytosis route for high siRNA transfection efficiency. One of the most promising carriers to efficiently deliver siRNA are cyclodextrin derivatives. We have used nanocomplexes composed of siRNA and a β-cyclodextrin derivative, AMC6, with a very high transfection efficiency to selectively knockdown clathrin heavy chain, caveolin 1, and p21 Activated Kinase 1 to specifically block clathrin-mediated, caveolin-mediated and macropinocytosis endocytic pathways. The main objective was to identify whether there is a preferential endocytic pathway associated with high siRNA transfection efficiency. We have found that macropinocytosis is the preferential entry pathway for the nanoparticle and its associated siRNA cargo. However, blockade of macropinocytosis does not affect AMC6-mediated transfection efficiency, suggesting that macropinocytosis blockade can be functionally compensated by an increase in clathrin- and caveolin-mediated endocytosis. MDPI 2020-12-06 /pmc/articles/PMC7731237/ /pubmed/33291321 http://dx.doi.org/10.3390/ijms21239306 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
Manzanares, Darío
Pérez-Carrión, María Dolores
Jiménez Blanco, José Luis
Ortiz Mellet, Carmen
García Fernández, José Manuel
Ceña, Valentín
Cyclodextrin-Based Nanostructure Efficiently Delivers siRNA to Glioblastoma Cells Preferentially via Macropinocytosis
title Cyclodextrin-Based Nanostructure Efficiently Delivers siRNA to Glioblastoma Cells Preferentially via Macropinocytosis
title_full Cyclodextrin-Based Nanostructure Efficiently Delivers siRNA to Glioblastoma Cells Preferentially via Macropinocytosis
title_fullStr Cyclodextrin-Based Nanostructure Efficiently Delivers siRNA to Glioblastoma Cells Preferentially via Macropinocytosis
title_full_unstemmed Cyclodextrin-Based Nanostructure Efficiently Delivers siRNA to Glioblastoma Cells Preferentially via Macropinocytosis
title_short Cyclodextrin-Based Nanostructure Efficiently Delivers siRNA to Glioblastoma Cells Preferentially via Macropinocytosis
title_sort cyclodextrin-based nanostructure efficiently delivers sirna to glioblastoma cells preferentially via macropinocytosis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7731237/
https://www.ncbi.nlm.nih.gov/pubmed/33291321
http://dx.doi.org/10.3390/ijms21239306
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