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Development and screening of brain-targeted lipid-based nanoparticles with enhanced cell penetration and gene delivery properties

BACKGROUND: The potential of gene therapy for treatment of neurological disorders can be explored using designed lipid-based nanoparticles such as liposomes, which have demonstrated ability to deliver nucleic acid to brain cells. We synthesized liposomes conjugated to cell-penetrating peptides (CPPs...

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Autores principales: dos Santos Rodrigues, Bruna, Lakkadwala, Sushant, Kanekiyo, Takahisa, Singh, Jagdish
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6699367/
https://www.ncbi.nlm.nih.gov/pubmed/31616141
http://dx.doi.org/10.2147/IJN.S215941
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author dos Santos Rodrigues, Bruna
Lakkadwala, Sushant
Kanekiyo, Takahisa
Singh, Jagdish
author_facet dos Santos Rodrigues, Bruna
Lakkadwala, Sushant
Kanekiyo, Takahisa
Singh, Jagdish
author_sort dos Santos Rodrigues, Bruna
collection PubMed
description BACKGROUND: The potential of gene therapy for treatment of neurological disorders can be explored using designed lipid-based nanoparticles such as liposomes, which have demonstrated ability to deliver nucleic acid to brain cells. We synthesized liposomes conjugated to cell-penetrating peptides (CPPs) (vascular endothelial-cadherin-derived peptide [pVec], pentapeptide QLPVM and HIV-1 trans-activating protein [TAT]) and transferrin (Tf) ligand, and examined the influence of surface modifications on the liposome delivery capacity and transfection efficiency of encapsulated plasmid DNA. The design of liposomes was based on targeting molecular recognition of transferrin receptor overexpressed on the blood–brain barrier (BBB) with enhanced internalization ability of CPPs. METHODS: CPP-Tf-liposomes were characterized by particle size distribution, zeta potential, protection of encapsulated plasmid DNA, uptake mechanisms and transfection efficiencies. An in vitro triple co-culture BBB model selected the liposomal formulations that were able to cross the in vitro BBB and subsequently, transfect primary neuronal cells. The in vivo biodistribution and biocompatibility of selected formulations were also investigated in mice. RESULTS: Liposomal formulations were able to protect the encapsulated plasmid DNA against enzymatic degradation and presented low hemolytic potential and low cytotoxicity at 100 nM phospholipid concentration. Cellular internalization of nanoparticles occurred via multiple endocytosis pathways. CPP-Tf-conjugated liposomes mediated robust transfection of brain endothelial (bEnd.3), primary glial and primary neuronal cells. Liposomes modified with Tf and TAT demonstrated superior ability to cross the barrier layer and subsequently, transfect neuronal cells compared to other formulations. Quantification of fluorescently labeled liposomes and in vivo imaging demonstrated that this system could efficiently overcome the BBB and penetrate the brain of mice (7.7% penetration of injected dose). CONCLUSION: In vitro screening platforms are important tools to enhance the success of brain-targeted gene delivery systems. The potential of TAT-Tf-liposomes as efficient brain-targeted gene carriers in vitro and in vivo was suggested to be related to the presence of selected moieties on the nanoparticle surface.
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spelling pubmed-66993672019-10-15 Development and screening of brain-targeted lipid-based nanoparticles with enhanced cell penetration and gene delivery properties dos Santos Rodrigues, Bruna Lakkadwala, Sushant Kanekiyo, Takahisa Singh, Jagdish Int J Nanomedicine Original Research BACKGROUND: The potential of gene therapy for treatment of neurological disorders can be explored using designed lipid-based nanoparticles such as liposomes, which have demonstrated ability to deliver nucleic acid to brain cells. We synthesized liposomes conjugated to cell-penetrating peptides (CPPs) (vascular endothelial-cadherin-derived peptide [pVec], pentapeptide QLPVM and HIV-1 trans-activating protein [TAT]) and transferrin (Tf) ligand, and examined the influence of surface modifications on the liposome delivery capacity and transfection efficiency of encapsulated plasmid DNA. The design of liposomes was based on targeting molecular recognition of transferrin receptor overexpressed on the blood–brain barrier (BBB) with enhanced internalization ability of CPPs. METHODS: CPP-Tf-liposomes were characterized by particle size distribution, zeta potential, protection of encapsulated plasmid DNA, uptake mechanisms and transfection efficiencies. An in vitro triple co-culture BBB model selected the liposomal formulations that were able to cross the in vitro BBB and subsequently, transfect primary neuronal cells. The in vivo biodistribution and biocompatibility of selected formulations were also investigated in mice. RESULTS: Liposomal formulations were able to protect the encapsulated plasmid DNA against enzymatic degradation and presented low hemolytic potential and low cytotoxicity at 100 nM phospholipid concentration. Cellular internalization of nanoparticles occurred via multiple endocytosis pathways. CPP-Tf-conjugated liposomes mediated robust transfection of brain endothelial (bEnd.3), primary glial and primary neuronal cells. Liposomes modified with Tf and TAT demonstrated superior ability to cross the barrier layer and subsequently, transfect neuronal cells compared to other formulations. Quantification of fluorescently labeled liposomes and in vivo imaging demonstrated that this system could efficiently overcome the BBB and penetrate the brain of mice (7.7% penetration of injected dose). CONCLUSION: In vitro screening platforms are important tools to enhance the success of brain-targeted gene delivery systems. The potential of TAT-Tf-liposomes as efficient brain-targeted gene carriers in vitro and in vivo was suggested to be related to the presence of selected moieties on the nanoparticle surface. Dove 2019-08-14 /pmc/articles/PMC6699367/ /pubmed/31616141 http://dx.doi.org/10.2147/IJN.S215941 Text en © 2019 dos Santos Rodrigues et al. http://creativecommons.org/licenses/by-nc/3.0/ This work is published and licensed by Dove Medical Press Limited. The full terms of this license are available at https://www.dovepress.com/terms.php and incorporate the Creative Commons Attribution – Non Commercial (unported, v3.0) License (http://creativecommons.org/licenses/by-nc/3.0/). By accessing the work you hereby accept the Terms. Non-commercial uses of the work are permitted without any further permission from Dove Medical Press Limited, provided the work is properly attributed. For permission for commercial use of this work, please see paragraphs 4.2 and 5 of our Terms (https://www.dovepress.com/terms.php).
spellingShingle Original Research
dos Santos Rodrigues, Bruna
Lakkadwala, Sushant
Kanekiyo, Takahisa
Singh, Jagdish
Development and screening of brain-targeted lipid-based nanoparticles with enhanced cell penetration and gene delivery properties
title Development and screening of brain-targeted lipid-based nanoparticles with enhanced cell penetration and gene delivery properties
title_full Development and screening of brain-targeted lipid-based nanoparticles with enhanced cell penetration and gene delivery properties
title_fullStr Development and screening of brain-targeted lipid-based nanoparticles with enhanced cell penetration and gene delivery properties
title_full_unstemmed Development and screening of brain-targeted lipid-based nanoparticles with enhanced cell penetration and gene delivery properties
title_short Development and screening of brain-targeted lipid-based nanoparticles with enhanced cell penetration and gene delivery properties
title_sort development and screening of brain-targeted lipid-based nanoparticles with enhanced cell penetration and gene delivery properties
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6699367/
https://www.ncbi.nlm.nih.gov/pubmed/31616141
http://dx.doi.org/10.2147/IJN.S215941
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