Literature DB >> 32490168

High-Precision Stereolithography of Biomicrofluidic Devices.

Alexandra P Kuo1, Nirveek Bhattacharjee1, Yuan-Sheng Lee2, Kurt Castro1, Yong Tae Kim1, Albert Folch1.   

Abstract

Stereolithography (SL) is emerging as an attractive alternative to soft lithography for fabricating microfluidic devices due to its low cost and high design efficiency. Low molecular weight poly(ethylene glycol)diacrylate (MW = 258) (PEG-DA-258) has been used for SL 3D-printing of biocompatible microdevices at submillimeter resolution. However, 3D-printing resins that simultaneously feature high transparency, high biocompatibility, and high resolution are still lacking. It is found that photosensitizer isopropyl thioxanthone can, in a concentration-dependent manner, increase the absorbance of the resin (containing PEG-DA-258 and photoinitator Irgacure-819) by over an order of magnitude. This increase in absorbance allows for SL printing of microdevices at sub pixel resolution with commercially available desktop printers and without compromising transparency or biocompatibility. The assembly-free, rapid (<15 h) 3D-printing of a variety of complex 3D microfluidic devices such as a 3D-fluid router, a passive chaotic micro-mixer, an active micro-mixer with pneumatic microvalves, and high-aspect ratio (37:1) microchannels of single pixel width is demonstrated. These manufacturing capabilities are unavailable in conventional microfluidic rapid prototyping techniques. The low absorption of small hydrophobic molecules and microfluidic labeling of cultured mammalian cells in 3D-printed PEG-DA-258 microdevices is demonstrated, indicating the potential of PEG-DA-based fabrication of cell-based assays, drug discovery, and organ-on-chip platforms.

Entities:  

Keywords:  3D printing; microfluidic; poly(ethylene glycol)diacrylate; rapid prototyping; stereolithography

Year:  2019        PMID: 32490168      PMCID: PMC7266111          DOI: 10.1002/admt.201800395

Source DB:  PubMed          Journal:  Adv Mater Technol


  42 in total

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Journal:  Annu Rev Anal Chem (Palo Alto Calif)       Date:  2012-04-09       Impact factor: 10.745

2.  Quantitative analysis of molecular absorption into PDMS microfluidic channels.

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3.  Reconstituting organ-level lung functions on a chip.

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Journal:  Science       Date:  2010-06-25       Impact factor: 47.728

4.  A digital micro-mirror device-based system for the microfabrication of complex, spatially patterned tissue engineering scaffolds.

Authors:  Yi Lu; Gazell Mapili; Gerry Suhali; Shaochen Chen; Krishnendu Roy
Journal:  J Biomed Mater Res A       Date:  2006-05       Impact factor: 4.396

Review 5.  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

6.  Microfluidic Valves Made From Polymerized Polyethylene Glycol Diacrylate.

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Journal:  Sens Actuators B Chem       Date:  2014-02-01       Impact factor: 7.460

Review 7.  Bioactive modification of poly(ethylene glycol) hydrogels for tissue engineering.

Authors:  Junmin Zhu
Journal:  Biomaterials       Date:  2010-03-19       Impact factor: 12.479

8.  3D-printed Quake-style microvalves and micropumps.

Authors:  Yuan-Sheng Lee; Nirveek Bhattacharjee; Albert Folch
Journal:  Lab Chip       Date:  2018-04-17       Impact factor: 6.799

Review 9.  Biological implications of polydimethylsiloxane-based microfluidic cell culture.

Authors:  Keil J Regehr; Maribella Domenech; Justin T Koepsel; Kristopher C Carver; Stephanie J Ellison-Zelski; William L Murphy; Linda A Schuler; Elaine T Alarid; David J Beebe
Journal:  Lab Chip       Date:  2009-06-04       Impact factor: 6.799

Review 10.  Advances of lab-on-a-chip in isolation, detection and post-processing of circulating tumour cells.

Authors:  Ling Yu; Shu Rui Ng; Yang Xu; Hua Dong; Ying Jun Wang; Chang Ming Li
Journal:  Lab Chip       Date:  2013-06-17       Impact factor: 6.799

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  11 in total

1.  A microfluidic platform for functional testing of cancer drugs on intact tumor slices.

Authors:  A D Rodriguez; L F Horowitz; K Castro; H Kenerson; N Bhattacharjee; G Gandhe; A Raman; R J Monnat; R Yeung; R C Rostomily; A Folch
Journal:  Lab Chip       Date:  2020-04-09       Impact factor: 6.799

2.  Development of a Custom-Made 3D Printing Protocol with Commercial Resins for Manufacturing Microfluidic Devices.

Authors:  Francesc Subirada; Roberto Paoli; Jessica Sierra-Agudelo; Anna Lagunas; Romen Rodriguez-Trujillo; Josep Samitier
Journal:  Polymers (Basel)       Date:  2022-07-21       Impact factor: 4.967

3.  Dual-wavelength volumetric stereolithography of multilevel microfluidic devices.

Authors:  Kaylee A Smith; Sanaz Habibi; Martin P de Beer; Zachary D Pritchard; Mark A Burns
Journal:  Biomicrofluidics       Date:  2022-08-03       Impact factor: 3.258

Review 4.  Emerging Technologies in Multi-Material Bioprinting.

Authors:  Hossein Ravanbakhsh; Vahid Karamzadeh; Guangyu Bao; Luc Mongeau; David Juncker; Yu Shrike Zhang
Journal:  Adv Mater       Date:  2021-10-01       Impact factor: 32.086

5.  Preparation and Characterization of 3D-Printed Biobased Composites Containing Micro- or Nanocrystalline Cellulose.

Authors:  Raphael Palucci Rosa; Giuseppe Rosace; Rossella Arrigo; Giulio Malucelli
Journal:  Polymers (Basel)       Date:  2022-05-05       Impact factor: 4.967

Review 6.  3D Printed Microfluidics.

Authors:  Anna V Nielsen; Michael J Beauchamp; Gregory P Nordin; Adam T Woolley
Journal:  Annu Rev Anal Chem (Palo Alto Calif)       Date:  2019-12-10       Impact factor: 10.745

Review 7.  Can 3D Printing Bring Droplet Microfluidics to Every Lab?-A Systematic Review.

Authors:  Nafisat Gyimah; Ott Scheler; Toomas Rang; Tamas Pardy
Journal:  Micromachines (Basel)       Date:  2021-03-22       Impact factor: 2.891

Review 8.  Fabrication of Microfluidic Devices for Emulsion Formation by Microstereolithography.

Authors:  Max J Männel; Elif Baysak; Julian Thiele
Journal:  Molecules       Date:  2021-05-10       Impact factor: 4.411

9.  Upscaling of pneumatic membrane valves for the integration of 3D cell cultures on chip.

Authors:  Nina Compera; Scott Atwell; Johannes Wirth; Bernhard Wolfrum; Matthias Meier
Journal:  Lab Chip       Date:  2021-06-18       Impact factor: 6.799

10.  Four-Dimensional Stimuli-Responsive Hydrogels Micro-Structured via Femtosecond Laser Additive Manufacturing.

Authors:  Yufeng Tao; Chengchangfeng Lu; Chunsan Deng; Jing Long; Yunpeng Ren; Zijie Dai; Zhaopeng Tong; Xuejiao Wang; Shuai Meng; Wenguang Zhang; Yinuo Xu; Linlin Zhou
Journal:  Micromachines (Basel)       Date:  2021-12-27       Impact factor: 2.891

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