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Optimized Polyethylene Glycolylated Polymer–Lipid Hybrid Nanoparticles as a Potential Breast Cancer Treatment

Purpose: The aim of this work is to optimize a polyethylene glycolated (PEGylated) polymer–lipid hybrid nanoparticulate system for the delivery of anastrozole (ANS) to enhance its biopharmaceutical attributes and overall efficacy. Methods: ANS loaded PEGylated polymer–lipid hybrid nanoparticles (PLN...

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Autores principales: Massadeh, Salam, Omer, Mustafa E, Alterawi, Asmaa, Ali, Rizwan, Alanazi, Fayez H, Almutairi, Fares, Almotairi, Wejdan, Alobaidi, Faris F, Alhelal, Khulud, Almutairi, Mansour S, Almalik, Abdulaziz, Obaidat, Aiman A., Alaamery, Manal, Yassin, Alaa Eldeen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7408428/
https://www.ncbi.nlm.nih.gov/pubmed/32679809
http://dx.doi.org/10.3390/pharmaceutics12070666
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author Massadeh, Salam
Omer, Mustafa E
Alterawi, Asmaa
Ali, Rizwan
Alanazi, Fayez H
Almutairi, Fares
Almotairi, Wejdan
Alobaidi, Faris F
Alhelal, Khulud
Almutairi, Mansour S
Almalik, Abdulaziz
Obaidat, Aiman A.
Alaamery, Manal
Yassin, Alaa Eldeen
author_facet Massadeh, Salam
Omer, Mustafa E
Alterawi, Asmaa
Ali, Rizwan
Alanazi, Fayez H
Almutairi, Fares
Almotairi, Wejdan
Alobaidi, Faris F
Alhelal, Khulud
Almutairi, Mansour S
Almalik, Abdulaziz
Obaidat, Aiman A.
Alaamery, Manal
Yassin, Alaa Eldeen
author_sort Massadeh, Salam
collection PubMed
description Purpose: The aim of this work is to optimize a polyethylene glycolated (PEGylated) polymer–lipid hybrid nanoparticulate system for the delivery of anastrozole (ANS) to enhance its biopharmaceutical attributes and overall efficacy. Methods: ANS loaded PEGylated polymer–lipid hybrid nanoparticles (PLNPs) were prepared by a direct emulsification solvent evaporation method. The physical incorporation of PEG was optimized using variable ratios. The produced particles were evaluated to discern their particle size and shape, zeta-potential, entrapment efficiency, and physical stability. The drug-release profiles were studied, and the kinetic model was analyzed. The anticancer activity of the ANS PLNPs on estrogen-positive breast cancer cell lines was determined using flow cytometry. Results: The prepared ANS-PLNPs showed particle sizes in the range of 193.6 ± 2.9 to 218.2 ± 1.9 nm, with good particle size uniformity (i.e., poly-dispersity index of around 0.1). Furthermore, they exhibited relatively low zeta-potential values ranging from −0.50 ± 0.52 to 6.01 ± 4.74. The transmission electron microscopy images showed spherical shape of ANS-PLNPs and the compliance with the sizes were revealed by light scattering. The differential scanning calorimetry DSC patterns of the ANS PLNPs revealed a disappearance of the characteristic sharp melting peak of pure ANS, supporting the incorporation of the drug into the polymeric matrices of the nanoparticles. Flow cytometry showed the apoptosis of MCF-7 cell lines in the presence of ANS-PLNPs. Conclusion: PEGylated polymeric nanoparticles presented a stable encapsulated system with which to incorporate an anticancer drug (ANS) with a high percentage of entrapment efficiency (around 80%), good size uniformity, and induction of apoptosis in MCF-7 cells.
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spelling pubmed-74084282020-08-13 Optimized Polyethylene Glycolylated Polymer–Lipid Hybrid Nanoparticles as a Potential Breast Cancer Treatment Massadeh, Salam Omer, Mustafa E Alterawi, Asmaa Ali, Rizwan Alanazi, Fayez H Almutairi, Fares Almotairi, Wejdan Alobaidi, Faris F Alhelal, Khulud Almutairi, Mansour S Almalik, Abdulaziz Obaidat, Aiman A. Alaamery, Manal Yassin, Alaa Eldeen Pharmaceutics Article Purpose: The aim of this work is to optimize a polyethylene glycolated (PEGylated) polymer–lipid hybrid nanoparticulate system for the delivery of anastrozole (ANS) to enhance its biopharmaceutical attributes and overall efficacy. Methods: ANS loaded PEGylated polymer–lipid hybrid nanoparticles (PLNPs) were prepared by a direct emulsification solvent evaporation method. The physical incorporation of PEG was optimized using variable ratios. The produced particles were evaluated to discern their particle size and shape, zeta-potential, entrapment efficiency, and physical stability. The drug-release profiles were studied, and the kinetic model was analyzed. The anticancer activity of the ANS PLNPs on estrogen-positive breast cancer cell lines was determined using flow cytometry. Results: The prepared ANS-PLNPs showed particle sizes in the range of 193.6 ± 2.9 to 218.2 ± 1.9 nm, with good particle size uniformity (i.e., poly-dispersity index of around 0.1). Furthermore, they exhibited relatively low zeta-potential values ranging from −0.50 ± 0.52 to 6.01 ± 4.74. The transmission electron microscopy images showed spherical shape of ANS-PLNPs and the compliance with the sizes were revealed by light scattering. The differential scanning calorimetry DSC patterns of the ANS PLNPs revealed a disappearance of the characteristic sharp melting peak of pure ANS, supporting the incorporation of the drug into the polymeric matrices of the nanoparticles. Flow cytometry showed the apoptosis of MCF-7 cell lines in the presence of ANS-PLNPs. Conclusion: PEGylated polymeric nanoparticles presented a stable encapsulated system with which to incorporate an anticancer drug (ANS) with a high percentage of entrapment efficiency (around 80%), good size uniformity, and induction of apoptosis in MCF-7 cells. MDPI 2020-07-15 /pmc/articles/PMC7408428/ /pubmed/32679809 http://dx.doi.org/10.3390/pharmaceutics12070666 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
Massadeh, Salam
Omer, Mustafa E
Alterawi, Asmaa
Ali, Rizwan
Alanazi, Fayez H
Almutairi, Fares
Almotairi, Wejdan
Alobaidi, Faris F
Alhelal, Khulud
Almutairi, Mansour S
Almalik, Abdulaziz
Obaidat, Aiman A.
Alaamery, Manal
Yassin, Alaa Eldeen
Optimized Polyethylene Glycolylated Polymer–Lipid Hybrid Nanoparticles as a Potential Breast Cancer Treatment
title Optimized Polyethylene Glycolylated Polymer–Lipid Hybrid Nanoparticles as a Potential Breast Cancer Treatment
title_full Optimized Polyethylene Glycolylated Polymer–Lipid Hybrid Nanoparticles as a Potential Breast Cancer Treatment
title_fullStr Optimized Polyethylene Glycolylated Polymer–Lipid Hybrid Nanoparticles as a Potential Breast Cancer Treatment
title_full_unstemmed Optimized Polyethylene Glycolylated Polymer–Lipid Hybrid Nanoparticles as a Potential Breast Cancer Treatment
title_short Optimized Polyethylene Glycolylated Polymer–Lipid Hybrid Nanoparticles as a Potential Breast Cancer Treatment
title_sort optimized polyethylene glycolylated polymer–lipid hybrid nanoparticles as a potential breast cancer treatment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7408428/
https://www.ncbi.nlm.nih.gov/pubmed/32679809
http://dx.doi.org/10.3390/pharmaceutics12070666
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