Literature DB >> 29737048

Microfluidics-Enabled Multimaterial Maskless Stereolithographic Bioprinting.

Amir K Miri1,2, Daniel Nieto1,2,3, Luis Iglesias1,2, Hossein Goodarzi Hosseinabadi1,2,4, Sushila Maharjan1,2, Guillermo U Ruiz-Esparza1,2, Parastoo Khoshakhlagh1, Amir Manbachi1,2,5, Mehmet Remzi Dokmeci1,2, Shaochen Chen6,7,8, Su Ryon Shin1,2, Yu Shrike Zhang1,2, Ali Khademhosseini1,2,9,10,11,12,13.   

Abstract

A stereolithography-based bioprinting platform for multimaterial fabrication of heterogeneous hydrogel constructs is presented. Dynamic patterning by a digital micromirror device, synchronized by a moving stage and a microfluidic device containing four on/off pneumatic valves, is used to create 3D constructs. The novel microfluidic device is capable of fast switching between different (cell-loaded) hydrogel bioinks, to achieve layer-by-layer multimaterial bioprinting. Compared to conventional stereolithography-based bioprinters, the system provides the unique advantage of multimaterial fabrication capability at high spatial resolution. To demonstrate the multimaterial capacity of this system, a variety of hydrogel constructs are generated, including those based on poly(ethylene glycol) diacrylate (PEGDA) and gelatin methacryloyl (GelMA). The biocompatibility of this system is validated by introducing cell-laden GelMA into the microfluidic device and fabricating cellularized constructs. A pattern of a PEGDA frame and three different concentrations of GelMA, loaded with vascular endothelial growth factor, are further assessed for its neovascularization potential in a rat model. The proposed system provides a robust platform for bioprinting of high-fidelity multimaterial microstructures on demand for applications in tissue engineering, regenerative medicine, and biosensing, which are otherwise not readily achievable at high speed with conventional stereolithographic biofabrication platforms.
© 2018 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.

Entities:  

Keywords:  bioprinting; digital light prototyping; digital micromirror devices; microfluidics; multimaterials

Mesh:

Substances:

Year:  2018        PMID: 29737048      PMCID: PMC6133710          DOI: 10.1002/adma.201800242

Source DB:  PubMed          Journal:  Adv Mater        ISSN: 0935-9648            Impact factor:   30.849


  24 in total

Review 1.  Computer-aided tissue engineering: overview, scope and challenges.

Authors:  Wei Sun; Andrew Darling; Binil Starly; Jae Nam
Journal:  Biotechnol Appl Biochem       Date:  2004-02       Impact factor: 2.431

2.  A Lindenmayer system-based approach for the design of nutrient delivery networks in tissue constructs.

Authors:  Ozlem Yasar; Shih-Feng Lan; Binil Starly
Journal:  Biofabrication       Date:  2009-12-09       Impact factor: 9.954

3.  Stop-flow lithography to generate cell-laden microgel particles.

Authors:  Priyadarshi Panda; Shamsher Ali; Edward Lo; Bong Geun Chung; T Alan Hatton; Ali Khademhosseini; Patrick S Doyle
Journal:  Lab Chip       Date:  2008-05-22       Impact factor: 6.799

4.  Bioprinting the Cancer Microenvironment.

Authors:  Yu Shrike Zhang; Margaux Duchamp; Rahmi Oklu; Leif W Ellisen; Robert Langer; Ali Khademhosseini
Journal:  ACS Biomater Sci Eng       Date:  2016-06-17

5.  Rapid fabrication of complex 3D extracellular microenvironments by dynamic optical projection stereolithography.

Authors:  A Ping Zhang; Xin Qu; Pranav Soman; Kolin C Hribar; Jin W Lee; Shaochen Chen; Sailing He
Journal:  Adv Mater       Date:  2012-07-12       Impact factor: 30.849

6.  Cell-laden microengineered gelatin methacrylate hydrogels.

Authors:  Jason W Nichol; Sandeep T Koshy; Hojae Bae; Chang M Hwang; Seda Yamanlar; Ali Khademhosseini
Journal:  Biomaterials       Date:  2010-04-24       Impact factor: 12.479

7.  A laser-based technology for fabricating a soda-lime glass based microfluidic device for circulating tumour cell capture.

Authors:  Daniel Nieto; Ramiro Couceiro; Maria Aymerich; Rafael Lopez-Lopez; Miguel Abal; María Teresa Flores-Arias
Journal:  Colloids Surf B Biointerfaces       Date:  2015-07-11       Impact factor: 5.268

8.  Influence of freezing rate on pore structure in freeze-dried collagen-GAG scaffolds.

Authors:  Fergal J O'Brien; Brendan A Harley; Ioannis V Yannas; Lorna Gibson
Journal:  Biomaterials       Date:  2004-03       Impact factor: 12.479

9.  Functionalization, preparation and use of cell-laden gelatin methacryloyl-based hydrogels as modular tissue culture platforms.

Authors:  Daniela Loessner; Christoph Meinert; Elke Kaemmerer; Laure C Martine; Kan Yue; Peter A Levett; Travis J Klein; Ferry P W Melchels; Ali Khademhosseini; Dietmar W Hutmacher
Journal:  Nat Protoc       Date:  2016-03-17       Impact factor: 13.491

10.  Tissue engineered skin substitutes created by laser-assisted bioprinting form skin-like structures in the dorsal skin fold chamber in mice.

Authors:  Stefanie Michael; Heiko Sorg; Claas-Tido Peck; Lothar Koch; Andrea Deiwick; Boris Chichkov; Peter M Vogt; Kerstin Reimers
Journal:  PLoS One       Date:  2013-03-04       Impact factor: 3.240

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  59 in total

Review 1.  Recent Advances in Formulating and Processing Biomaterial Inks for Vat Polymerization-Based 3D Printing.

Authors:  Wanlu Li; Luis S Mille; Juan A Robledo; Tlalli Uribe; Valentin Huerta; Yu Shrike Zhang
Journal:  Adv Healthc Mater       Date:  2020-06-11       Impact factor: 9.933

Review 2.  Enabling Technologies for Personalized and Precision Medicine.

Authors:  Dean Ho; Stephen R Quake; Edward R B McCabe; Wee Joo Chng; Edward K Chow; Xianting Ding; Bruce D Gelb; Geoffrey S Ginsburg; Jason Hassenstab; Chih-Ming Ho; William C Mobley; Garry P Nolan; Steven T Rosen; Patrick Tan; Yun Yen; Ali Zarrinpar
Journal:  Trends Biotechnol       Date:  2020-01-21       Impact factor: 19.536

3.  3D bioprinting for oncology applications.

Authors:  Tingting Liu; Clement Delavaux; Yu Shrike Zhang
Journal:  J 3D Print Med       Date:  2019-05-30

4.  Extrusion and Microfluidic-based Bioprinting to Fabricate Biomimetic Tissues and Organs.

Authors:  Elham Davoodi; Einollah Sarikhani; Hossein Montazerian; Samad Ahadian; Marco Costantini; Wojciech Swieszkowski; Stephanie Willerth; Konrad Walus; Mohammad Mofidfar; Ehsan Toyserkani; Ali Khademhosseini; Nureddin Ashammakhi
Journal:  Adv Mater Technol       Date:  2020-05-26

5.  3D Printed Neural Regeneration Devices.

Authors:  Daeha Joung; Nicolas S Lavoie; Shuang-Zhuang Guo; Sung Hyun Park; Ann M Parr; Michael C McAlpine
Journal:  Adv Funct Mater       Date:  2019-11-08       Impact factor: 18.808

6.  Modulating physical, chemical, and biological properties in 3D printing for tissue engineering applications.

Authors:  Claire Yu; Wei Zhu; Bingjie Sun; Deqing Mei; Maling Gou; Shaochen Chen
Journal:  Appl Phys Rev       Date:  2018-12       Impact factor: 19.162

Review 7.  3D Bioprinting: from Benches to Translational Applications.

Authors:  Marcel Alexander Heinrich; Wanjun Liu; Andrea Jimenez; Jingzhou Yang; Ali Akpek; Xiao Liu; Qingmeng Pi; Xuan Mu; Ning Hu; Raymond Michel Schiffelers; Jai Prakash; Jingwei Xie; Yu Shrike Zhang
Journal:  Small       Date:  2019-04-29       Impact factor: 13.281

Review 8.  Improving Bioprinted Volumetric Tumor Microenvironments In Vitro.

Authors:  Jun Li; Carolina Parra-Cantu; Zongyi Wang; Yu Shrike Zhang
Journal:  Trends Cancer       Date:  2020-07-14

Review 9.  3D Bioprinting of cardiac tissue and cardiac stem cell therapy.

Authors:  Matthew Alonzo; Shweta AnilKumar; Brian Roman; Nishat Tasnim; Binata Joddar
Journal:  Transl Res       Date:  2019-04-20       Impact factor: 7.012

10.  Effective bioprinting resolution in tissue model fabrication.

Authors:  Amir K Miri; Iman Mirzaee; Shabir Hassan; Shirin Mesbah Oskui; Daniel Nieto; Ali Khademhosseini; Yu Shrike Zhang
Journal:  Lab Chip       Date:  2019-05-13       Impact factor: 6.799

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