A combined 3D printing/CNC micro-milling method to fabricate a large-scale microfluidic device with the small size 3D architectures: an application for tumor spheroid production.


Journal

Scientific reports
ISSN: 2045-2322
Titre abrégé: Sci Rep
Pays: England
ID NLM: 101563288

Informations de publication

Date de publication:
17 12 2020
Historique:
received: 07 08 2020
accepted: 02 12 2020
entrez: 18 12 2020
pubmed: 19 12 2020
medline: 19 12 2020
Statut: epublish

Résumé

The fabrication of a large-scale microfluidic mold with 3D microstructures for manufacturing of the conical microwell chip using a combined projection micro-stereolithography (PµSL) 3D printing/CNC micro-milling method for tumor spheroid formation is presented. The PµSL technique is known as the most promising method of manufacturing microfluidic chips due to the possibility of creating complex three-dimensional microstructures with high resolution in the range of several micrometers. The purpose of applying the proposed method is to investigate the influence of microwell depths on the formation of tumor spheroids. In the conventional methods, the construction of three-dimensional microstructures and multi-height chips is difficult, time-consuming, and is performed using a multi-step lithography process. Microwell depth is an essential parameter for microwell design since it directly affects the shear stress of the fluid flow and the diffusion of nutrients, respiratory gases, and growth factors. In this study, a chip was made with microwells of different depth varying from 100 to 500 µm. The mold of the microwell section is printed by the lab-made PµSL printer with 6 and 1 µm lateral and vertical resolutions. Other parts of the mold, such as the main chamber and micro-channels, were manufactured using the CNC micro-milling method. Finally, different parts of the master mold were assembled and used for PDMS casting. The proposed technique drastically simplifies the fabrication and rapid prototyping of large-scale microfluidic devices with high-resolution microstructures by combining 3D printing with the CNC micro-milling method.

Identifiants

pubmed: 33335148
doi: 10.1038/s41598-020-79015-5
pii: 10.1038/s41598-020-79015-5
pmc: PMC7747638
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

22171

Références

J Biomed Mater Res A. 2006 May;77(2):396-405
pubmed: 16444679
Annu Rev Anal Chem (Palo Alto Calif). 2020 Jun 12;13(1):45-65
pubmed: 31821017
Sci Rep. 2019 Dec 23;9(1):19692
pubmed: 31873101
Lab Chip. 2015 Jul 21;15(14):3076-85
pubmed: 26088102
Bioeng Transl Med. 2016 Jul 05;1(1):63-81
pubmed: 29313007
Nat Commun. 2018 Jun 22;9(1):2434
pubmed: 29934552
Angew Chem Int Ed Engl. 2016 Mar 14;55(12):3862-81
pubmed: 26854878
Lab Chip. 2014 Jan 21;14(2):424-30
pubmed: 24281262
Lab Chip. 2016 Jul 7;16(13):2450-8
pubmed: 27242064
Biofabrication. 2016 Jun 20;8(2):022001
pubmed: 27321137
Biomaterials. 2015 Sep;62:1-12
pubmed: 26010218
Nat Mater. 2016 Oct;15(10):1100-6
pubmed: 27429209
Biotechnol Bioeng. 2019 Nov;116(11):3041-3052
pubmed: 31294818
Toxicol Mech Methods. 2020 Oct;30(8):590-604
pubmed: 32713235
Biomed Microdevices. 2009 Feb;11(1):129-33
pubmed: 18670885
Sci Rep. 2017 Mar 21;7(1):245
pubmed: 28325895
Anal Chim Acta. 2018 Nov 29;1033:119-127
pubmed: 30172317
Biofabrication. 2017 Nov 30;10(1):015001
pubmed: 29190216
Nat Commun. 2016 May 09;7:11269
pubmed: 27157977
PLoS One. 2019 Jul 25;14(7):e0219834
pubmed: 31344058
Sci Rep. 2016 Feb 15;6:21061
pubmed: 26877244
RSC Adv. 2016 Jan 1;6(11):8980-8991
pubmed: 26998251
Anal Chim Acta. 2015 Oct 22;898:85-92
pubmed: 26526913
Lab Chip. 2016 May 24;16(11):1993-2013
pubmed: 27146365
Biomaterials. 2011 Nov;32(32):8087-96
pubmed: 21813175
Lab Chip. 2015 Jun 7;15(11):2412-8
pubmed: 25900329
Nanomedicine. 2015 Jul;11(5):1153-61
pubmed: 25752856
Small. 2019 Jul;15(28):e1900737
pubmed: 31087503
PLoS One. 2016 Aug 29;11(8):e0161915
pubmed: 27571565
ACS Appl Mater Interfaces. 2014 Jun 11;6(11):8090-7
pubmed: 24773458
Biofabrication. 2017 Aug 14;9(3):035006
pubmed: 28726681
Nat Methods. 2012 Jun 28;9(7):676-82
pubmed: 22743772
J Biosci Bioeng. 2013 Nov;116(5):628-33
pubmed: 23735328
PLoS One. 2016 Aug 11;11(8):e0161026
pubmed: 27513567
Drug Resist Updat. 2020 Jan;48:100658
pubmed: 31678863
Microsyst Nanoeng. 2016 Nov 21;2:16063
pubmed: 31057842
Lab Chip. 2017 Dec 19;18(1):179-189
pubmed: 29211089
Stem Cells Int. 2020 May 14;2020:7082679
pubmed: 32508932
Lab Chip. 2014 Apr 7;14(7):1294-301
pubmed: 24510161
Biofabrication. 2018 Aug 14;10(4):045003
pubmed: 30074487
Biomaterials. 2010 May;31(15):4296-303
pubmed: 20206991
Lab Chip. 2018 Nov 6;18(22):3516-3528
pubmed: 30357219
Biomaterials. 2014 Jul;35(23):6060-8
pubmed: 24797879

Auteurs

Ebrahim Behroodi (E)

Laser and Plasma Research Institute, Shahid Beheshti University, 1983963113, Tehran, Iran.

Hamid Latifi (H)

Laser and Plasma Research Institute, Shahid Beheshti University, 1983963113, Tehran, Iran. latifi@sbu.ac.ir.
Department of Physics, Shahid Beheshti University, 1983963113, Tehran, Iran. latifi@sbu.ac.ir.

Zeinab Bagheri (Z)

Faculty of Life Sciences and Biotechnology, Shahid Beheshti University, 1983963113, Tehran, Iran.

Esra Ermis (E)

Faculty of Life Sciences and Biotechnology, Shahid Beheshti University, 1983963113, Tehran, Iran.

Shabnam Roshani (S)

Faculty of Life Sciences and Biotechnology, Shahid Beheshti University, 1983963113, Tehran, Iran.

Mohammadreza Salehi Moghaddam (M)

Laser and Plasma Research Institute, Shahid Beheshti University, 1983963113, Tehran, Iran.

Classifications MeSH