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Diosgenin Loaded Polymeric Nanoparticles with Potential Anticancer Efficacy

This study aims to determine the anticancer efficacy of diosgenin encapsulated poly-glycerol malate co-dodecanedioate (PGMD) nanoparticles. Diosgenin loaded PGMD nanoparticles (variants 7:3 and 6:4) were synthesized by the nanoprecipitation method. The synthesis of PGMD nanoparticles was systematica...

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Autores principales: Sharma, Nikita, Singhal, Monisha, Kumari, R. Mankamna, Gupta, Nidhi, Manchanda, Romila, Syed, Asad, Bahkali, Ali H., Nimesh, Surendra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7765552/
https://www.ncbi.nlm.nih.gov/pubmed/33339083
http://dx.doi.org/10.3390/biom10121679
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author Sharma, Nikita
Singhal, Monisha
Kumari, R. Mankamna
Gupta, Nidhi
Manchanda, Romila
Syed, Asad
Bahkali, Ali H.
Nimesh, Surendra
author_facet Sharma, Nikita
Singhal, Monisha
Kumari, R. Mankamna
Gupta, Nidhi
Manchanda, Romila
Syed, Asad
Bahkali, Ali H.
Nimesh, Surendra
author_sort Sharma, Nikita
collection PubMed
description This study aims to determine the anticancer efficacy of diosgenin encapsulated poly-glycerol malate co-dodecanedioate (PGMD) nanoparticles. Diosgenin loaded PGMD nanoparticles (variants 7:3 and 6:4) were synthesized by the nanoprecipitation method. The synthesis of PGMD nanoparticles was systematically optimized employing the Box-Behnken design and taking into account the influence of various independent variables such as concentrations of each PGMD, diosgenin and PF-68 on the responses such as size and PDI of the particles. Mathematical modeling was done using the Quadratic second order modeling method and response surface analysis was undertaken to elucidate the factor-response relationship. The obtained size of PGMD 7:3 and PGMD 6:4 nanoparticles were 133.6 nm and 121.4 nm, respectively, as measured through dynamic light scattering (DLS). The entrapment efficiency was in the range of 77–83%. The in vitro drug release studies showed diffusion and dissolution controlled drug release pattern following Korsmeyer–Peppas kinetic model. Furthermore, in vitro morphological and cytotoxic studies were performed to evaluate the toxicity of synthesized drug loaded nanoparticles in model cell lines. The IC(50) after 48 h was observed to be 27.14 µM, 15.15 µM and 13.91 µM for free diosgenin, PGMD 7:3 and PGMD 6:4 nanoparticles, respectively, when administered in A549 lung carcinoma cell lines.
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spelling pubmed-77655522020-12-27 Diosgenin Loaded Polymeric Nanoparticles with Potential Anticancer Efficacy Sharma, Nikita Singhal, Monisha Kumari, R. Mankamna Gupta, Nidhi Manchanda, Romila Syed, Asad Bahkali, Ali H. Nimesh, Surendra Biomolecules Article This study aims to determine the anticancer efficacy of diosgenin encapsulated poly-glycerol malate co-dodecanedioate (PGMD) nanoparticles. Diosgenin loaded PGMD nanoparticles (variants 7:3 and 6:4) were synthesized by the nanoprecipitation method. The synthesis of PGMD nanoparticles was systematically optimized employing the Box-Behnken design and taking into account the influence of various independent variables such as concentrations of each PGMD, diosgenin and PF-68 on the responses such as size and PDI of the particles. Mathematical modeling was done using the Quadratic second order modeling method and response surface analysis was undertaken to elucidate the factor-response relationship. The obtained size of PGMD 7:3 and PGMD 6:4 nanoparticles were 133.6 nm and 121.4 nm, respectively, as measured through dynamic light scattering (DLS). The entrapment efficiency was in the range of 77–83%. The in vitro drug release studies showed diffusion and dissolution controlled drug release pattern following Korsmeyer–Peppas kinetic model. Furthermore, in vitro morphological and cytotoxic studies were performed to evaluate the toxicity of synthesized drug loaded nanoparticles in model cell lines. The IC(50) after 48 h was observed to be 27.14 µM, 15.15 µM and 13.91 µM for free diosgenin, PGMD 7:3 and PGMD 6:4 nanoparticles, respectively, when administered in A549 lung carcinoma cell lines. MDPI 2020-12-16 /pmc/articles/PMC7765552/ /pubmed/33339083 http://dx.doi.org/10.3390/biom10121679 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
Sharma, Nikita
Singhal, Monisha
Kumari, R. Mankamna
Gupta, Nidhi
Manchanda, Romila
Syed, Asad
Bahkali, Ali H.
Nimesh, Surendra
Diosgenin Loaded Polymeric Nanoparticles with Potential Anticancer Efficacy
title Diosgenin Loaded Polymeric Nanoparticles with Potential Anticancer Efficacy
title_full Diosgenin Loaded Polymeric Nanoparticles with Potential Anticancer Efficacy
title_fullStr Diosgenin Loaded Polymeric Nanoparticles with Potential Anticancer Efficacy
title_full_unstemmed Diosgenin Loaded Polymeric Nanoparticles with Potential Anticancer Efficacy
title_short Diosgenin Loaded Polymeric Nanoparticles with Potential Anticancer Efficacy
title_sort diosgenin loaded polymeric nanoparticles with potential anticancer efficacy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7765552/
https://www.ncbi.nlm.nih.gov/pubmed/33339083
http://dx.doi.org/10.3390/biom10121679
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