Acoustically enhanced microfluidic mixer to synthesize highly uniform nanodrugs without the addition of stabilizers

Nguyen Hoai An Le,1 Hoang Van Phan,1 Jiaqi Yu,2 Hak-Kim Chan,2 Adrian Neild,1 Tuncay Alan1 1Department of Mechanical and Aerospace Engineering, Monash University, Melbourne, VIC, 2The Advanced Drug Delivery Group, Faculty of Pharmacy, University of Sydney, Sydney, NSW, Australia Background: This a...

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Main Authors: Le NHA, Phan HV, Yu J, Chan HK, Neild A, Alan T
Format: Article
Language:English
Published: Dove Medical Press 2018-03-01
Series:International Journal of Nanomedicine
Subjects:
Online Access:https://www.dovepress.com/acoustically-enhanced-microfluidic-mixer-to-synthesize-highly-uniform--peer-reviewed-article-IJN
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spelling doaj-cf200cdf3ac9418690efed96b04806ba2020-11-24T22:10:00ZengDove Medical PressInternational Journal of Nanomedicine1178-20132018-03-01Volume 131353135937130Acoustically enhanced microfluidic mixer to synthesize highly uniform nanodrugs without the addition of stabilizersLe NHAPhan HVYu JChan HKNeild AAlan TNguyen Hoai An Le,1 Hoang Van Phan,1 Jiaqi Yu,2 Hak-Kim Chan,2 Adrian Neild,1 Tuncay Alan1 1Department of Mechanical and Aerospace Engineering, Monash University, Melbourne, VIC, 2The Advanced Drug Delivery Group, Faculty of Pharmacy, University of Sydney, Sydney, NSW, Australia Background: This article presents an acoustically enhanced microfluidic mixer to generate highly uniform and ultra-fine nanoparticles, offering significant advantages over conventional liquid antisolvent techniques.Methods: The method employed a 3D microfluidic geometry whereby two different phases – solvent and antisolvent – were introduced at either side of a 1 µm thick resonating membrane, which contained a through-hole. The vibration of the membrane rapidly and efficiently mixed the two phases, at the location of the hole, leading to the formation of nanoparticles.Results: The versatility of the device was demonstrated by synthesizing budesonide (a common asthma drug) with a mean diameter of 135.7 nm and a polydispersity index of 0.044.Conclusion: The method offers a 40-fold reduction in the size of synthesized particles combined with a substantial improvement in uniformity, achieved without the need of stabilizers. Keywords: microfluidics, nanodrugs, budesonide, liquid antisolvent methodhttps://www.dovepress.com/acoustically-enhanced-microfluidic-mixer-to-synthesize-highly-uniform--peer-reviewed-article-IJNMicrofluidicsnanodrugsbudesonideliquid-anti-solvent
collection DOAJ
language English
format Article
sources DOAJ
author Le NHA
Phan HV
Yu J
Chan HK
Neild A
Alan T
spellingShingle Le NHA
Phan HV
Yu J
Chan HK
Neild A
Alan T
Acoustically enhanced microfluidic mixer to synthesize highly uniform nanodrugs without the addition of stabilizers
International Journal of Nanomedicine
Microfluidics
nanodrugs
budesonide
liquid-anti-solvent
author_facet Le NHA
Phan HV
Yu J
Chan HK
Neild A
Alan T
author_sort Le NHA
title Acoustically enhanced microfluidic mixer to synthesize highly uniform nanodrugs without the addition of stabilizers
title_short Acoustically enhanced microfluidic mixer to synthesize highly uniform nanodrugs without the addition of stabilizers
title_full Acoustically enhanced microfluidic mixer to synthesize highly uniform nanodrugs without the addition of stabilizers
title_fullStr Acoustically enhanced microfluidic mixer to synthesize highly uniform nanodrugs without the addition of stabilizers
title_full_unstemmed Acoustically enhanced microfluidic mixer to synthesize highly uniform nanodrugs without the addition of stabilizers
title_sort acoustically enhanced microfluidic mixer to synthesize highly uniform nanodrugs without the addition of stabilizers
publisher Dove Medical Press
series International Journal of Nanomedicine
issn 1178-2013
publishDate 2018-03-01
description Nguyen Hoai An Le,1 Hoang Van Phan,1 Jiaqi Yu,2 Hak-Kim Chan,2 Adrian Neild,1 Tuncay Alan1 1Department of Mechanical and Aerospace Engineering, Monash University, Melbourne, VIC, 2The Advanced Drug Delivery Group, Faculty of Pharmacy, University of Sydney, Sydney, NSW, Australia Background: This article presents an acoustically enhanced microfluidic mixer to generate highly uniform and ultra-fine nanoparticles, offering significant advantages over conventional liquid antisolvent techniques.Methods: The method employed a 3D microfluidic geometry whereby two different phases – solvent and antisolvent – were introduced at either side of a 1 µm thick resonating membrane, which contained a through-hole. The vibration of the membrane rapidly and efficiently mixed the two phases, at the location of the hole, leading to the formation of nanoparticles.Results: The versatility of the device was demonstrated by synthesizing budesonide (a common asthma drug) with a mean diameter of 135.7 nm and a polydispersity index of 0.044.Conclusion: The method offers a 40-fold reduction in the size of synthesized particles combined with a substantial improvement in uniformity, achieved without the need of stabilizers. Keywords: microfluidics, nanodrugs, budesonide, liquid antisolvent method
topic Microfluidics
nanodrugs
budesonide
liquid-anti-solvent
url https://www.dovepress.com/acoustically-enhanced-microfluidic-mixer-to-synthesize-highly-uniform--peer-reviewed-article-IJN
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