Microfluidics for nanomedicines manufacturing: An affordable and low-cost 3D printing approach

被引:60
作者
Tiboni, Mattia [1 ]
Tiboni, Massimiliano [2 ]
Pierro, Alessio [3 ]
Del Papa, Marco [3 ]
Sparaventi, Simone [3 ]
Cespi, Marco [4 ]
Casettari, Luca [1 ]
机构
[1] Univ Urbino Carlo Bo, Dept Biomol Sci, Piazza Rinascimento 6, I-61029 Urbino, PU, Italy
[2] Idrofoglia Srl, R&D Dept, Via Prov 14, I-61026 Lunano, PU, Italy
[3] TechFem Spa, R&D Dept, Via G Toniolo 1-D, I-61032 Fano, PU, Italy
[4] Univ Camerino, Sch Pharm, I-62032 Camerino, MC, Italy
关键词
Fused deposition modeling (FDM); Nanomedicine; Polymeric NPs; Liposomes; Cannabidiol (CBD); Drug delivery systems; Computational fluid dynamics studies (CFD);
D O I
10.1016/j.ijpharm.2021.120464
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
During the last decade, an innovative lab on a chip technology known as microfluidics became popular in the pharmaceutical field to produce nanomedicines in a scalable way. Nevertheless, the predominant barriers for new microfluidics users are access to expensive equipment and device fabrication expertise. 3D printing technology promises to be an enabling new field that helps to overcome these drawbacks expanding the realm of microfluidics. Among 3D printing techniques, fused deposition modeling allows the production of devices with relatively inexpensive materials and printers. In this work, we developed two different microfluidic chips designed to obtain a passive micromixing by a "zigzag" bas-relief and by the presence of "split and recombine" channels. Computational fluid dynamics studies improved the evaluation of the mixing potential. A fused deposition modeling 3D printer was used to print the developed devices with polypropylene as manufacturing material. Then, two different model nanocarriers (i.e., polymeric nanoparticles and liposomes), loading cannabidiol as model drug, were formulated evaluating the influence of manufacturing parameters on the final nanocarrier characteristics with a design of experiments approach (2-level full factorial design). Both the chips showed an effective production of nanocarriers with tunable characteristics and with an efficient drug loading. These polypropylene-based microfluidic chips could represent an affordable and low-cost alternative to common microfluidic devices for the effective manufacturing of nanomedicines (both polymer- and lipid-based) after appropriate tuning of manufacturing parameters.
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页数:12
相关论文
共 35 条
[1]   Mixing performance of unbalanced split and recombine micomixers with circular and rhombic sub-channels [J].
Ansari, Mubashshir Ahmad ;
Kim, Kwang-Yong .
CHEMICAL ENGINEERING JOURNAL, 2010, 162 (02) :760-767
[2]  
Antony J., 2014, Design of Experiments for Engineers and Scientists, V2nd ed., P33, DOI DOI 10.1016/B978-0-08-099417-8.00004-3
[3]   Herbal medicines and phytochemicals for obsessive-compulsive disorder [J].
Ayati, Zahra ;
Sarris, Jerome ;
Chang, Dennis ;
Emami, Seyed A. ;
Rahimi, Roja .
PHYTOTHERAPY RESEARCH, 2020, 34 (08) :1889-1901
[4]   EFFECT OF HASHISH COMPOUNDS ON PHOSPHOLIPID PHASE-TRANSITION [J].
BACH, D ;
RAZ, A ;
GOLDMAN, R .
BIOCHIMICA ET BIOPHYSICA ACTA, 1976, 436 (04) :889-894
[5]   Experimental design and multiple response optimization. Using the desirability function in analytical methods development [J].
Candioti, Luciana Vera ;
De Zan, Maria M. ;
Camara, Maria S. ;
Goicoechea, Hector C. .
TALANTA, 2014, 124 :123-138
[6]   Micromixing Within Microfluidic Devices [J].
Capretto, Lorenzo ;
Cheng, Wei ;
Hill, Martyn ;
Zhang, Xunli .
MICROFLUIDICS: TECHNOLOGIES AND APPLICATIONS, 2011, 304 :27-68
[7]   Lab on a chip [J].
Daw, Rosamund ;
Finkelstein, Joshua .
NATURE, 2006, 442 (7101) :367-367
[8]   Experiments and computations of microfluidic liquid-liquid flow patterns [J].
Desir, Pierre ;
Chen, Tai-Ying ;
Bracconi, Mauro ;
Saha, Basudeb ;
Maestri, Matteo ;
Vlachos, Dionisios G. .
REACTION CHEMISTRY & ENGINEERING, 2020, 5 (01) :39-50
[9]   Volume-of-fluid interface tracking with smoothed surface stress methods for three-dimensional flows [J].
Gueyffier, D ;
Li, J ;
Nadim, A ;
Scardovelli, R ;
Zaleski, S .
JOURNAL OF COMPUTATIONAL PHYSICS, 1999, 152 (02) :423-456
[10]   The Liberalization of Microfluidics: Form 2 Benchtop 3D Printing as an Affordable Alternative to Established Manufacturing Methods [J].
Heidt, Benjamin ;
Rogosic, Renato ;
Bonni, Silvio ;
Passariello-Jansen, Juliette ;
Dimech, David ;
Lowdon, Joseph W. ;
Arreguin-Campos, Rocio ;
Steen Redeker, Erik ;
Eersels, Kasper ;
Dilien, Hanne ;
van Grinsven, Bart ;
Cleij, Thomas J. .
PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE, 2020, 217 (13)