A Step-by-Step Optimization Process to Fabricate Narrow Sized Dual Drug Loaded Polymeric Nanoparticles Using Modified Nanoprecipitation Technique

The primary aim of the study was to prepare narrow sized polymeric nanoparticles by implementing few modifications to the conventional nanoprecipitation technique and to evaluate the effect of various process parameters on prepared polymeric nanoparticles. Eudragit E 100 nanoparticles were prepared...

Full description

Bibliographic Details
Main Authors: Moorthi Chidambaram, Kathiresan Krishnasamy
Format: Article
Language:English
Published: Tsinghua University Press 2013-09-01
Series:Nano Biomedicine and Engineering
Subjects:
Online Access:https://www.sciopen.com/article/10.5101/nbe.v5i3.p107-115
_version_ 1827082689412333568
author Moorthi Chidambaram
Kathiresan Krishnasamy
author_facet Moorthi Chidambaram
Kathiresan Krishnasamy
author_sort Moorthi Chidambaram
collection DOAJ
description The primary aim of the study was to prepare narrow sized polymeric nanoparticles by implementing few modifications to the conventional nanoprecipitation technique and to evaluate the effect of various process parameters on prepared polymeric nanoparticles. Eudragit E 100 nanoparticles were prepared by modified nanoprecipitation technique and step-by-step optimization was carried out to evaluate the effect of various process parameters such as organic solvent, polymer concentration, percentage of organic solvent, mode of addition of organic solvent in to aqueous phase, volume of aqueous phase, poloxamer 188 concentration, β-cyclodextrin concentration, temperature generated during sonication process, sonication duration, and drug concentration on the particle size, surface area, distribution width and uniformity of the prepared nanoparticles. The optimized process parameters were implemented to fabricate dual drug loaded Eudragit E 100 nanoparticles which were spherical in shape with mean particle size in the range of 118 to 140 nm, polydispersity index in the range of 0.187 to 0.254 and zeta potential in the range of 16.6 to 28.8 mV. Thus developed modified nanoprecipitation method can be used to fabricate narrow sized polymeric nanoparticles.
first_indexed 2024-03-11T21:45:17Z
format Article
id doaj.art-25dec655eaa440d78c0d4bcdc609443e
institution Directory Open Access Journal
issn 2150-5578
language English
last_indexed 2025-03-20T03:37:14Z
publishDate 2013-09-01
publisher Tsinghua University Press
record_format Article
series Nano Biomedicine and Engineering
spelling doaj.art-25dec655eaa440d78c0d4bcdc609443e2024-10-03T06:23:55ZengTsinghua University PressNano Biomedicine and Engineering2150-55782013-09-015310711510.5101/nbe.v5i3.p107-115A Step-by-Step Optimization Process to Fabricate Narrow Sized Dual Drug Loaded Polymeric Nanoparticles Using Modified Nanoprecipitation TechniqueMoorthi Chidambaram0Kathiresan Krishnasamy1Department of Pharmacy, Annamalai University, Annamalai Nagar - 608 002, Chidambaram, Tamil Nadu, IndiaDepartment of Pharmacy, Annamalai University, Annamalai Nagar - 608 002, Chidambaram, Tamil Nadu, IndiaThe primary aim of the study was to prepare narrow sized polymeric nanoparticles by implementing few modifications to the conventional nanoprecipitation technique and to evaluate the effect of various process parameters on prepared polymeric nanoparticles. Eudragit E 100 nanoparticles were prepared by modified nanoprecipitation technique and step-by-step optimization was carried out to evaluate the effect of various process parameters such as organic solvent, polymer concentration, percentage of organic solvent, mode of addition of organic solvent in to aqueous phase, volume of aqueous phase, poloxamer 188 concentration, β-cyclodextrin concentration, temperature generated during sonication process, sonication duration, and drug concentration on the particle size, surface area, distribution width and uniformity of the prepared nanoparticles. The optimized process parameters were implemented to fabricate dual drug loaded Eudragit E 100 nanoparticles which were spherical in shape with mean particle size in the range of 118 to 140 nm, polydispersity index in the range of 0.187 to 0.254 and zeta potential in the range of 16.6 to 28.8 mV. Thus developed modified nanoprecipitation method can be used to fabricate narrow sized polymeric nanoparticles.https://www.sciopen.com/article/10.5101/nbe.v5i3.p107-115dual drug loaded polymeric nanoparticleseudragit e 100modified nanoprecipitation methodstep-by-step optimization
spellingShingle Moorthi Chidambaram
Kathiresan Krishnasamy
A Step-by-Step Optimization Process to Fabricate Narrow Sized Dual Drug Loaded Polymeric Nanoparticles Using Modified Nanoprecipitation Technique
Nano Biomedicine and Engineering
dual drug loaded polymeric nanoparticles
eudragit e 100
modified nanoprecipitation method
step-by-step optimization
title A Step-by-Step Optimization Process to Fabricate Narrow Sized Dual Drug Loaded Polymeric Nanoparticles Using Modified Nanoprecipitation Technique
title_full A Step-by-Step Optimization Process to Fabricate Narrow Sized Dual Drug Loaded Polymeric Nanoparticles Using Modified Nanoprecipitation Technique
title_fullStr A Step-by-Step Optimization Process to Fabricate Narrow Sized Dual Drug Loaded Polymeric Nanoparticles Using Modified Nanoprecipitation Technique
title_full_unstemmed A Step-by-Step Optimization Process to Fabricate Narrow Sized Dual Drug Loaded Polymeric Nanoparticles Using Modified Nanoprecipitation Technique
title_short A Step-by-Step Optimization Process to Fabricate Narrow Sized Dual Drug Loaded Polymeric Nanoparticles Using Modified Nanoprecipitation Technique
title_sort step by step optimization process to fabricate narrow sized dual drug loaded polymeric nanoparticles using modified nanoprecipitation technique
topic dual drug loaded polymeric nanoparticles
eudragit e 100
modified nanoprecipitation method
step-by-step optimization
url https://www.sciopen.com/article/10.5101/nbe.v5i3.p107-115
work_keys_str_mv AT moorthichidambaram astepbystepoptimizationprocesstofabricatenarrowsizeddualdrugloadedpolymericnanoparticlesusingmodifiednanoprecipitationtechnique
AT kathiresankrishnasamy astepbystepoptimizationprocesstofabricatenarrowsizeddualdrugloadedpolymericnanoparticlesusingmodifiednanoprecipitationtechnique
AT moorthichidambaram stepbystepoptimizationprocesstofabricatenarrowsizeddualdrugloadedpolymericnanoparticlesusingmodifiednanoprecipitationtechnique
AT kathiresankrishnasamy stepbystepoptimizationprocesstofabricatenarrowsizeddualdrugloadedpolymericnanoparticlesusingmodifiednanoprecipitationtechnique