Surface Response Based Modeling of Liposome Characteristics in a Periodic Disturbance Mixer

Liposomes nanoparticles (LNPs) are vesicles that encapsulate drugs, genes, and imaging labels for advanced delivery applications. Control and tuning liposome physicochemical characteristics such as size, size distribution, and zeta potential are crucial for their functionality. Liposome production u...

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Main Authors: Rubén R. López, Ixchel Ocampo, Luz-María Sánchez, Anas Alazzam, Karl-F. Bergeron, Sergio Camacho-León, Catherine Mounier, Ion Stiharu, Vahé Nerguizian
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Micromachines
Subjects:
Online Access:https://www.mdpi.com/2072-666X/11/3/235
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spelling doaj-dbac3a87ee564918bd9855676bd01e092020-11-25T02:16:10ZengMDPI AGMicromachines2072-666X2020-02-0111323510.3390/mi11030235mi11030235Surface Response Based Modeling of Liposome Characteristics in a Periodic Disturbance MixerRubén R. López0Ixchel Ocampo1Luz-María Sánchez2Anas Alazzam3Karl-F. Bergeron4Sergio Camacho-León5Catherine Mounier6Ion Stiharu7Vahé Nerguizian8Department of Electrical Engineering, École de technologie supérieure, 1100 Notre Dame-West, Montreal, QC H3C 1K3, CanadaSchool of Engineering and Sciences, Tecnológico de Monterrey, Av. Eugenio Garza Sada 2501 Sur, Monterrey 64849, N.L., MexicoDepartment of Engineering, Universidad Autónoma de Querétaro Cerro de las Campanas s/n, Santiago de Querétaro 76010, Qro., MexicoDepartment of Electrical Engineering, École de technologie supérieure, 1100 Notre Dame-West, Montreal, QC H3C 1K3, CanadaDepartment of Biological Sciences, Université du Québec à Montréal, 141 Président-Kennedy, Montreal, QC H2X 1Y4, CanadaSchool of Engineering and Sciences, Tecnológico de Monterrey, Av. Eugenio Garza Sada 2501 Sur, Monterrey 64849, N.L., MexicoDepartment of Biological Sciences, Université du Québec à Montréal, 141 Président-Kennedy, Montreal, QC H2X 1Y4, CanadaDepartment of Mechanical and Industrial Engineering, Concordia University, 1455 de Maisonneuve Blvd. West, Montreal, QC H3G 1M8, CanadaDepartment of Electrical Engineering, École de technologie supérieure, 1100 Notre Dame-West, Montreal, QC H3C 1K3, CanadaLiposomes nanoparticles (LNPs) are vesicles that encapsulate drugs, genes, and imaging labels for advanced delivery applications. Control and tuning liposome physicochemical characteristics such as size, size distribution, and zeta potential are crucial for their functionality. Liposome production using micromixers has shown better control over liposome characteristics compared with classical approaches. In this work, we used our own designed and fabricated Periodic Disturbance Micromixer (PDM). We used Design of Experiments (DoE) and Response Surface Methodology (RSM) to statistically model the relationship between the Total Flow Rate (TFR) and Flow Rate Ratio (FRR) and the resulting liposomes physicochemical characteristics. TFR and FRR effectively control liposome size in the range from 52 nm to 200 nm. In contrast, no significant effect was observed for the TFR on the liposomes Polydispersity Index (PDI); conversely, FRR around 2.6 was found to be a threshold between highly monodisperse and low polydispersed populations. Moreover, it was shown that the zeta potential is independent of TFR and FRR. The developed model presented on the paper enables to pre-establish the experimental conditions under which LNPs would likely be produced within a specified size range. Hence, the model utility was demonstrated by showing that LNPs were produced under such conditions.https://www.mdpi.com/2072-666X/11/3/235micromixersliposomesnanoparticlesmicrofluidicscontinuous-flow synthesis
collection DOAJ
language English
format Article
sources DOAJ
author Rubén R. López
Ixchel Ocampo
Luz-María Sánchez
Anas Alazzam
Karl-F. Bergeron
Sergio Camacho-León
Catherine Mounier
Ion Stiharu
Vahé Nerguizian
spellingShingle Rubén R. López
Ixchel Ocampo
Luz-María Sánchez
Anas Alazzam
Karl-F. Bergeron
Sergio Camacho-León
Catherine Mounier
Ion Stiharu
Vahé Nerguizian
Surface Response Based Modeling of Liposome Characteristics in a Periodic Disturbance Mixer
Micromachines
micromixers
liposomes
nanoparticles
microfluidics
continuous-flow synthesis
author_facet Rubén R. López
Ixchel Ocampo
Luz-María Sánchez
Anas Alazzam
Karl-F. Bergeron
Sergio Camacho-León
Catherine Mounier
Ion Stiharu
Vahé Nerguizian
author_sort Rubén R. López
title Surface Response Based Modeling of Liposome Characteristics in a Periodic Disturbance Mixer
title_short Surface Response Based Modeling of Liposome Characteristics in a Periodic Disturbance Mixer
title_full Surface Response Based Modeling of Liposome Characteristics in a Periodic Disturbance Mixer
title_fullStr Surface Response Based Modeling of Liposome Characteristics in a Periodic Disturbance Mixer
title_full_unstemmed Surface Response Based Modeling of Liposome Characteristics in a Periodic Disturbance Mixer
title_sort surface response based modeling of liposome characteristics in a periodic disturbance mixer
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2020-02-01
description Liposomes nanoparticles (LNPs) are vesicles that encapsulate drugs, genes, and imaging labels for advanced delivery applications. Control and tuning liposome physicochemical characteristics such as size, size distribution, and zeta potential are crucial for their functionality. Liposome production using micromixers has shown better control over liposome characteristics compared with classical approaches. In this work, we used our own designed and fabricated Periodic Disturbance Micromixer (PDM). We used Design of Experiments (DoE) and Response Surface Methodology (RSM) to statistically model the relationship between the Total Flow Rate (TFR) and Flow Rate Ratio (FRR) and the resulting liposomes physicochemical characteristics. TFR and FRR effectively control liposome size in the range from 52 nm to 200 nm. In contrast, no significant effect was observed for the TFR on the liposomes Polydispersity Index (PDI); conversely, FRR around 2.6 was found to be a threshold between highly monodisperse and low polydispersed populations. Moreover, it was shown that the zeta potential is independent of TFR and FRR. The developed model presented on the paper enables to pre-establish the experimental conditions under which LNPs would likely be produced within a specified size range. Hence, the model utility was demonstrated by showing that LNPs were produced under such conditions.
topic micromixers
liposomes
nanoparticles
microfluidics
continuous-flow synthesis
url https://www.mdpi.com/2072-666X/11/3/235
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