Literature DB >> 33335148

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.

Ebrahim Behroodi1, Hamid Latifi2,3, Zeinab Bagheri4, Esra Ermis4, Shabnam Roshani4, Mohammadreza Salehi Moghaddam1.   

Abstract

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.

Entities:  

Year:  2020        PMID: 33335148     DOI: 10.1038/s41598-020-79015-5

Source DB:  PubMed          Journal:  Sci Rep        ISSN: 2045-2322            Impact factor:   4.379


  27 in total

1.  PDMS lab-on-a-chip fabrication using 3D printed templates.

Authors:  Germán Comina; Anke Suska; Daniel Filippini
Journal:  Lab Chip       Date:  2013-11-26       Impact factor: 6.799

2.  Multiscale metallic metamaterials.

Authors:  Xiaoyu Zheng; William Smith; Julie Jackson; Bryan Moran; Huachen Cui; Da Chen; Jianchao Ye; Nicholas Fang; Nicholas Rodriguez; Todd Weisgraber; Christopher M Spadaccini
Journal:  Nat Mater       Date:  2016-07-18       Impact factor: 43.841

Review 3.  3D printed microfluidic devices: enablers and barriers.

Authors:  Sidra Waheed; Joan M Cabot; Niall P Macdonald; Trevor Lewis; Rosanne M Guijt; Brett Paull; Michael C Breadmore
Journal:  Lab Chip       Date:  2016-05-24       Impact factor: 6.799

4.  On-chip analysis of carbon dots effect on yeast replicative lifespan.

Authors:  Zeinab Bagheri; Hamide Ehtesabi; Zahra Hallaji; Neda Aminoroaya; Hossein Tavana; Ebrahim Behroodi; Mahban Rahimifard; Mohammad Abdollahi; Hamid Latifi
Journal:  Anal Chim Acta       Date:  2018-05-04       Impact factor: 6.558

5.  Advanced micromachining of concave microwells for long term on-chip culture of multicellular tumor spheroids.

Authors:  Tianqing Liu; Chia-Chi Chien; Luke Parkinson; Benjamin Thierry
Journal:  ACS Appl Mater Interfaces       Date:  2014-05-19       Impact factor: 9.229

6.  Mail-order microfluidics: evaluation of stereolithography for the production of microfluidic devices.

Authors:  Anthony K Au; Wonjae Lee; Albert Folch
Journal:  Lab Chip       Date:  2014-04-07       Impact factor: 6.799

Review 7.  Advanced technological tools to study multidrug resistance in cancer.

Authors:  Luca Andrei; Sandor Kasas; Ignacio Ochoa Garrido; Tijana Stanković; Mónica Suárez Korsnes; Radka Vaclavikova; Yehuda G Assaraf; Milica Pešić
Journal:  Drug Resist Updat       Date:  2019-10-17       Impact factor: 18.500

Review 8.  Microfluidics-based 3D cell culture models: Utility in novel drug discovery and delivery research.

Authors:  Nilesh Gupta; Jeffrey R Liu; Brijeshkumar Patel; Deepak E Solomon; Bhuvaneshwar Vaidya; Vivek Gupta
Journal:  Bioeng Transl Med       Date:  2016-07-05

9.  A compact LED-based projection microstereolithography for producing 3D microstructures.

Authors:  Ebrahim Behroodi; Hamid Latifi; Farhood Najafi
Journal:  Sci Rep       Date:  2019-12-23       Impact factor: 4.379

10.  A microfluidics platform for combinatorial drug screening on cancer biopsies.

Authors:  Federica Eduati; Ramesh Utharala; Dharanija Madhavan; Ulf Peter Neumann; Thomas Longerich; Thorsten Cramer; Julio Saez-Rodriguez; Christoph A Merten
Journal:  Nat Commun       Date:  2018-06-22       Impact factor: 14.919

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  3 in total

Review 1.  3D-bioprinted cancer-on-a-chip: level-up organotypic in vitro models.

Authors:  Maria V Monteiro; Yu Shrike Zhang; Vítor M Gaspar; João F Mano
Journal:  Trends Biotechnol       Date:  2021-09-20       Impact factor: 19.536

2.  PlateFlo - A software-controllable plate-scale perfusion system for culture of adherent cells.

Authors:  Robert Pazdzior; Stefan Kubicek
Journal:  HardwareX       Date:  2021-08-11

3.  Establishment of Colorectal Cancer Organoids in Microfluidic-Based System.

Authors:  Diana Pinho; Denis Santos; Ana Vila; Sandra Carvalho
Journal:  Micromachines (Basel)       Date:  2021-04-28       Impact factor: 2.891

  3 in total

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