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Shear Stress-Dependent Targeting Efficiency Using Self-Assembled Gelatin–Oleic Nanoparticles in a Biomimetic Microfluidic System

Cellular properties and microenvironments, as well as the characteristics of nanoparticles (NPs), affect the cellular uptake and cytotoxic effects of drug-loaded NPs. Since there is fluid flow in the human blood system, fluid flow also affects the drug delivery efficiency of NPs. This study aimed to...

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Autores principales: Kang, Taehee, Park, Chulhun, Meghani, Nileshkumar, Tran, Thao T.D., Tran, Phuong H.L., Lee, Beom-Jin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7356760/
https://www.ncbi.nlm.nih.gov/pubmed/32560107
http://dx.doi.org/10.3390/pharmaceutics12060555
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author Kang, Taehee
Park, Chulhun
Meghani, Nileshkumar
Tran, Thao T.D.
Tran, Phuong H.L.
Lee, Beom-Jin
author_facet Kang, Taehee
Park, Chulhun
Meghani, Nileshkumar
Tran, Thao T.D.
Tran, Phuong H.L.
Lee, Beom-Jin
author_sort Kang, Taehee
collection PubMed
description Cellular properties and microenvironments, as well as the characteristics of nanoparticles (NPs), affect the cellular uptake and cytotoxic effects of drug-loaded NPs. Since there is fluid flow in the human blood system, fluid flow also affects the drug delivery efficiency of NPs. This study aimed to evaluate the cellular behaviors of drug-loaded soft NPs on A549 cancer cells under different levels of shear stress (0.5, 5, and 50 dynes/cm(2)) in the biomimetic microfluidic system. The soft self-assembled NPs were formed by the gelatin–oleic conjugate (GOC). The poorly water-soluble coumarin-6 or paclitaxel (PTX) were used as model markers for encapsulation within self-assembled NPs (C-GONs or PTX-GONs, respectively). The cellular uptake of C-GONs was found to be improved with shear-stress dependence. The inhibitory concentration (IC(50)) of PTX-GONs at 0.5, 5, and 50 dynes/cm(2) was 0.106 µg/mL, 0.108 µg/mL, and 0.091 µg/mL, respectively, as compared to 0.138 µg/mL in a static condition. The cell killing efficiency of PTX-GONs was increased in the highest shear stress of 50 dynes/cm(2) in the static condition, and other levels of shear stress in dynamic conditions.
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spelling pubmed-73567602020-07-22 Shear Stress-Dependent Targeting Efficiency Using Self-Assembled Gelatin–Oleic Nanoparticles in a Biomimetic Microfluidic System Kang, Taehee Park, Chulhun Meghani, Nileshkumar Tran, Thao T.D. Tran, Phuong H.L. Lee, Beom-Jin Pharmaceutics Article Cellular properties and microenvironments, as well as the characteristics of nanoparticles (NPs), affect the cellular uptake and cytotoxic effects of drug-loaded NPs. Since there is fluid flow in the human blood system, fluid flow also affects the drug delivery efficiency of NPs. This study aimed to evaluate the cellular behaviors of drug-loaded soft NPs on A549 cancer cells under different levels of shear stress (0.5, 5, and 50 dynes/cm(2)) in the biomimetic microfluidic system. The soft self-assembled NPs were formed by the gelatin–oleic conjugate (GOC). The poorly water-soluble coumarin-6 or paclitaxel (PTX) were used as model markers for encapsulation within self-assembled NPs (C-GONs or PTX-GONs, respectively). The cellular uptake of C-GONs was found to be improved with shear-stress dependence. The inhibitory concentration (IC(50)) of PTX-GONs at 0.5, 5, and 50 dynes/cm(2) was 0.106 µg/mL, 0.108 µg/mL, and 0.091 µg/mL, respectively, as compared to 0.138 µg/mL in a static condition. The cell killing efficiency of PTX-GONs was increased in the highest shear stress of 50 dynes/cm(2) in the static condition, and other levels of shear stress in dynamic conditions. MDPI 2020-06-16 /pmc/articles/PMC7356760/ /pubmed/32560107 http://dx.doi.org/10.3390/pharmaceutics12060555 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
Kang, Taehee
Park, Chulhun
Meghani, Nileshkumar
Tran, Thao T.D.
Tran, Phuong H.L.
Lee, Beom-Jin
Shear Stress-Dependent Targeting Efficiency Using Self-Assembled Gelatin–Oleic Nanoparticles in a Biomimetic Microfluidic System
title Shear Stress-Dependent Targeting Efficiency Using Self-Assembled Gelatin–Oleic Nanoparticles in a Biomimetic Microfluidic System
title_full Shear Stress-Dependent Targeting Efficiency Using Self-Assembled Gelatin–Oleic Nanoparticles in a Biomimetic Microfluidic System
title_fullStr Shear Stress-Dependent Targeting Efficiency Using Self-Assembled Gelatin–Oleic Nanoparticles in a Biomimetic Microfluidic System
title_full_unstemmed Shear Stress-Dependent Targeting Efficiency Using Self-Assembled Gelatin–Oleic Nanoparticles in a Biomimetic Microfluidic System
title_short Shear Stress-Dependent Targeting Efficiency Using Self-Assembled Gelatin–Oleic Nanoparticles in a Biomimetic Microfluidic System
title_sort shear stress-dependent targeting efficiency using self-assembled gelatin–oleic nanoparticles in a biomimetic microfluidic system
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7356760/
https://www.ncbi.nlm.nih.gov/pubmed/32560107
http://dx.doi.org/10.3390/pharmaceutics12060555
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