Macrophage apoptosis using alendronate in targeted nanoarchaeosomes.


Journal

European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V
ISSN: 1873-3441
Titre abrégé: Eur J Pharm Biopharm
Pays: Netherlands
ID NLM: 9109778

Informations de publication

Date de publication:
Mar 2021
Historique:
received: 08 09 2020
revised: 30 12 2020
accepted: 04 01 2021
pubmed: 14 1 2021
medline: 12 10 2021
entrez: 13 1 2021
Statut: ppublish

Résumé

Nanoarchaeosomes are non-hydrolysable nanovesicles made of archaeolipids, naturally functionalised with ligand for scavenger receptor class 1. We hypothesized that nitrogenate bisphosphonate alendronate (ALN) loaded nanoarchaeosomes (nanoarchaeosomes(ALN)) may constitute more efficient macrophage targeted apoptotic inducers than ALN loaded nanoliposomes (nanoliposomes (ALN)). To that aim, ALN was loaded in cholesterol containing (nanoARC-chol(ALN)) or not (nanoARC(ALN)) nanoarchaeosomes. Nanoarchaeosomes(ALN) (220-320 nm sized, ~ -40 mV ξ potential, 38-50 μg ALN/mg lipid ratio) displayed higher structural stability than nanoliposomes(ALN) of matching size and ξ potential, retaining most of ALN against a 1/200 folds dilution. The cytotoxicity of nanoARC(ALN) on J774A.1 cells, resulted > 30 folds higher than free ALN and nanoliposomes(ALN) and was reduced by cholesterol in nanoARC-chol(ALN). Devoid of ALN, nanoARC-chol was non-cytotoxic, exhibited pronounced anti-inflammatory activity on J774.1 cells, strongly reducing reactive oxygen species (ROS) and IL-6 induced by LPS. Nanoarchaeosomes bilayer extensively interacted with serum proteins but resulted refractory to phospholipases. Upon J774A.1 cells uptake, nanoarchaeosomes induced cytoplasmic acid vesicles, reduced the mitochondrial membrane potential by 20-40 % without consuming ATP neither damaging lysosomes and increasing pERK. Refractory to chemoenzymatic attacks, either void or drug loaded, nanoarchaeosomes induced either anti-inflammation or macrophages apoptosis, constituting promising targeted nanovesicles for multiple therapeutic purposes.

Identifiants

pubmed: 33440242
pii: S0939-6411(21)00001-1
doi: 10.1016/j.ejpb.2021.01.001
pii:
doi:

Substances chimiques

Lipid Bilayers 0
Lipids 0
Liposomes 0
Alendronate X1J18R4W8P

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

42-54

Informations de copyright

Copyright © 2021. Published by Elsevier B.V.

Auteurs

Horacio Emanuel Jerez (HE)

Centro de Investigación y Desarrollo en Nanomedicinas (CIDeN), Universidad Nacional de Quilmes, Bernal, Buenos Aires, Argentina.

María Julia Altube (MJ)

Centro de Investigación y Desarrollo en Nanomedicinas (CIDeN), Universidad Nacional de Quilmes, Bernal, Buenos Aires, Argentina.

Yamila B Gándola (YB)

Universidad de Buenos Aires, Consejo Nacional de Investigaciones Científicas y Técnicas, Instituto de Química y Fisicoquímica Biológicas (IQUIFIB), Facultad de Farmacia y Bioquímica, Buenos Aires, Argentina.

Lorena González (L)

Universidad de Buenos Aires, Consejo Nacional de Investigaciones Científicas y Técnicas, Instituto de Química y Fisicoquímica Biológicas (IQUIFIB), Facultad de Farmacia y Bioquímica, Buenos Aires, Argentina.

Marina Cecilia González (MC)

INIBIOLP-CONICET, Facultad Cs. Médicas, Universidad Nacional de La Plata, La Plata, Argentina.

María José Morilla (MJ)

Centro de Investigación y Desarrollo en Nanomedicinas (CIDeN), Universidad Nacional de Quilmes, Bernal, Buenos Aires, Argentina.

Eder Lilia Romero (EL)

Centro de Investigación y Desarrollo en Nanomedicinas (CIDeN), Universidad Nacional de Quilmes, Bernal, Buenos Aires, Argentina. Electronic address: elromero@unq.edu.ar.

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Classifications MeSH