Boada, Christian A. and Zinger, Assaf and Rohen, Scott and Martinez, Jonathan O. and Evangelopoulos, Michael and Molinaro, Roberto and Lu, Madeleine and Villarreal-Leal, Ramiro Alejandro and Giordano, Federica and Sushnitha, Manuela and De Rosa, Enrica and Simonsen, Jens B. and Shevkoplyas, Sergey and Taraballi, Francesca and Tasciotti, Ennio (2021) LDL-Based Lipid Nanoparticle Derived for Blood Plasma Accumulates Preferentially in Atherosclerotic Plaque. Frontiers in Bioengineering and Biotechnology, 9. ISSN 2296-4185
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Abstract
Apolipoprotein-based drug delivery is a promising approach to develop safe nanoparticles capable of targeted drug delivery for various diseases. In this work, we have synthesized a lipid-based nanoparticle (NPs) that we have called “Aposomes” presenting native apolipoprotein B-100 (apoB-100), the primary protein present in Low-Density Lipoproteins (LDL) on its surface. The aposomes were synthesized from LDL isolated from blood plasma using a microfluidic approach. The synthesized aposomes had a diameter of 91 ± 4 nm and a neutral surface charge of 0.7 mV ± mV. Protein analysis using western blot and flow cytometry confirmed the presence of apoB-100 on the nanoparticle’s surface. Furthermore, Aposomes retained liposomes’ drug loading capabilities, demonstrating a prolonged release curve with ∼80% cargo release at 4 hours. Considering the natural tropism of LDL towards the atherosclerotic plaques, we evaluated the biological properties of aposomes in a mouse model of advanced atherosclerosis. We observed a ∼20-fold increase in targeting of plaques when comparing aposomes to control liposomes. Additionally, aposomes presented a favorable biocompatibility profile that showed no deviation from typical values in liver toxicity markers (i.e., LDH, ALT, AST, Cholesterol). The results of this study demonstrate the possibilities of using apolipoprotein-based approaches to create nanoparticles with active targeting capabilities and could be the basis for future cardiovascular therapies.
Item Type: | Article |
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Subjects: | Scholar Eprints > Biological Science |
Depositing User: | Managing Editor |
Date Deposited: | 23 Dec 2022 04:08 |
Last Modified: | 15 Jun 2024 11:50 |
URI: | http://repository.stmscientificarchives.com/id/eprint/196 |