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Nanodiamond Integration into Niosomes as an Emerging and Efficient Gene Therapy Nanoplatform for Central Nervous System Diseases

[Image: see text] Nanodiamonds (NDs) are promising materials for gene delivery because of their unique physicochemical and biological features, along with their possibility of combination with other nonviral systems. Our aim was to evaluate the biophysical performance of NDs as helper components of...

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Autores principales: AL Qtaish, Nuseibah, Gallego, Idoia, Paredes, Alejandro J., Villate-Beitia, Ilia, Soto-Sánchez, Cristina, Martínez-Navarrete, Gema, Sainz-Ramos, Myriam, Lopez-Mendez, Tania B., Fernández, Eduardo, Puras, Gustavo, Pedraz, José Luis
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8949757/
https://www.ncbi.nlm.nih.gov/pubmed/35289181
http://dx.doi.org/10.1021/acsami.2c02182
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author AL Qtaish, Nuseibah
Gallego, Idoia
Paredes, Alejandro J.
Villate-Beitia, Ilia
Soto-Sánchez, Cristina
Martínez-Navarrete, Gema
Sainz-Ramos, Myriam
Lopez-Mendez, Tania B.
Fernández, Eduardo
Puras, Gustavo
Pedraz, José Luis
author_facet AL Qtaish, Nuseibah
Gallego, Idoia
Paredes, Alejandro J.
Villate-Beitia, Ilia
Soto-Sánchez, Cristina
Martínez-Navarrete, Gema
Sainz-Ramos, Myriam
Lopez-Mendez, Tania B.
Fernández, Eduardo
Puras, Gustavo
Pedraz, José Luis
author_sort AL Qtaish, Nuseibah
collection PubMed
description [Image: see text] Nanodiamonds (NDs) are promising materials for gene delivery because of their unique physicochemical and biological features, along with their possibility of combination with other nonviral systems. Our aim was to evaluate the biophysical performance of NDs as helper components of niosomes, named nanodiasomes, to address a potential nonviral gene delivery nanoplatform for therapeutic applications in central nervous system (CNS) diseases. Nanodiasomes, niosomes, and their corresponding complexes, obtained after genetic material addition at different ratios (w/w), were evaluated in terms of physicochemical properties, cellular uptake, intracellular disposition, biocompatibility, and transfection efficiency in HEK-293 cells. Nanodiasomes, niosomes, and complexes fulfilled the physicochemical features for gene therapy applications. Biologically, the incorporation of NDs into niosomes enhanced 75% transfection efficiency (p < 0.001) and biocompatibility (p < 0.05) to values over 90%, accompanied by a higher cellular uptake (p < 0.05). Intracellular trafficking analysis showed higher endocytosis via clathrins (p < 0.05) in nanodiaplexes compared with nioplexes, followed by higher lysosomal colocalization (p < 0.05), that coexisted with endosomal escape properties, whereas endocytosis mediated by caveolae was the most efficient pathway in the case of nanodiaplexes. Moreover, studies in CNS primary cells revealed that nanodiaplexes successfully transfected neuronal and retinal cells. This proof-of-concept study points out that ND integration into niosomes represents an encouraging nonviral nanoplatform strategy for the treatment of CNS diseases by gene therapy.
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spelling pubmed-89497572022-03-29 Nanodiamond Integration into Niosomes as an Emerging and Efficient Gene Therapy Nanoplatform for Central Nervous System Diseases AL Qtaish, Nuseibah Gallego, Idoia Paredes, Alejandro J. Villate-Beitia, Ilia Soto-Sánchez, Cristina Martínez-Navarrete, Gema Sainz-Ramos, Myriam Lopez-Mendez, Tania B. Fernández, Eduardo Puras, Gustavo Pedraz, José Luis ACS Appl Mater Interfaces [Image: see text] Nanodiamonds (NDs) are promising materials for gene delivery because of their unique physicochemical and biological features, along with their possibility of combination with other nonviral systems. Our aim was to evaluate the biophysical performance of NDs as helper components of niosomes, named nanodiasomes, to address a potential nonviral gene delivery nanoplatform for therapeutic applications in central nervous system (CNS) diseases. Nanodiasomes, niosomes, and their corresponding complexes, obtained after genetic material addition at different ratios (w/w), were evaluated in terms of physicochemical properties, cellular uptake, intracellular disposition, biocompatibility, and transfection efficiency in HEK-293 cells. Nanodiasomes, niosomes, and complexes fulfilled the physicochemical features for gene therapy applications. Biologically, the incorporation of NDs into niosomes enhanced 75% transfection efficiency (p < 0.001) and biocompatibility (p < 0.05) to values over 90%, accompanied by a higher cellular uptake (p < 0.05). Intracellular trafficking analysis showed higher endocytosis via clathrins (p < 0.05) in nanodiaplexes compared with nioplexes, followed by higher lysosomal colocalization (p < 0.05), that coexisted with endosomal escape properties, whereas endocytosis mediated by caveolae was the most efficient pathway in the case of nanodiaplexes. Moreover, studies in CNS primary cells revealed that nanodiaplexes successfully transfected neuronal and retinal cells. This proof-of-concept study points out that ND integration into niosomes represents an encouraging nonviral nanoplatform strategy for the treatment of CNS diseases by gene therapy. American Chemical Society 2022-03-15 2022-03-23 /pmc/articles/PMC8949757/ /pubmed/35289181 http://dx.doi.org/10.1021/acsami.2c02182 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle AL Qtaish, Nuseibah
Gallego, Idoia
Paredes, Alejandro J.
Villate-Beitia, Ilia
Soto-Sánchez, Cristina
Martínez-Navarrete, Gema
Sainz-Ramos, Myriam
Lopez-Mendez, Tania B.
Fernández, Eduardo
Puras, Gustavo
Pedraz, José Luis
Nanodiamond Integration into Niosomes as an Emerging and Efficient Gene Therapy Nanoplatform for Central Nervous System Diseases
title Nanodiamond Integration into Niosomes as an Emerging and Efficient Gene Therapy Nanoplatform for Central Nervous System Diseases
title_full Nanodiamond Integration into Niosomes as an Emerging and Efficient Gene Therapy Nanoplatform for Central Nervous System Diseases
title_fullStr Nanodiamond Integration into Niosomes as an Emerging and Efficient Gene Therapy Nanoplatform for Central Nervous System Diseases
title_full_unstemmed Nanodiamond Integration into Niosomes as an Emerging and Efficient Gene Therapy Nanoplatform for Central Nervous System Diseases
title_short Nanodiamond Integration into Niosomes as an Emerging and Efficient Gene Therapy Nanoplatform for Central Nervous System Diseases
title_sort nanodiamond integration into niosomes as an emerging and efficient gene therapy nanoplatform for central nervous system diseases
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8949757/
https://www.ncbi.nlm.nih.gov/pubmed/35289181
http://dx.doi.org/10.1021/acsami.2c02182
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