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AngioPlate – Biofabrication of perfusable complex tissues in multi-well plates with 4D subtractive manufacturing

View ORCID ProfileShravanthi Rajasekar, Dawn S. Y. Lin, Feng Zhang, View ORCID ProfileAlexander Sotra, Alex Boshart, Sergi Clotet-Freixas, Amy Liu, Jeremy A. Hirota, View ORCID ProfileShinichiro Ogawa, Ana Konvalinka, View ORCID ProfileBoyang Zhang
doi: https://doi.org/10.1101/2021.08.13.456244
Shravanthi Rajasekar
1Department of Chemical Engineering, McMaster University, 1280 Main Street West, Hamilton, ON, L8S 4L8, Canada
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  • ORCID record for Shravanthi Rajasekar
Dawn S. Y. Lin
1Department of Chemical Engineering, McMaster University, 1280 Main Street West, Hamilton, ON, L8S 4L8, Canada
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Feng Zhang
2School of Biomedical Engineering, McMaster University, 1280 Main Street West, Hamilton, ON, L8S 4L8, Canada
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Alexander Sotra
1Department of Chemical Engineering, McMaster University, 1280 Main Street West, Hamilton, ON, L8S 4L8, Canada
2School of Biomedical Engineering, McMaster University, 1280 Main Street West, Hamilton, ON, L8S 4L8, Canada
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Alex Boshart
3Advanced Diagnostics, Toronto General Hospital Research Institute, University Health Network, Toronto, Ontario, Canada
4Renal Transplant Program, Soham and Shaila Ajmera Family Transplant Centre, University Health Network, Toronto, Ontario, Canada
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Sergi Clotet-Freixas
3Advanced Diagnostics, Toronto General Hospital Research Institute, University Health Network, Toronto, Ontario, Canada
4Renal Transplant Program, Soham and Shaila Ajmera Family Transplant Centre, University Health Network, Toronto, Ontario, Canada
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Amy Liu
5Faculty of Health Sciences, McMaster University 1280 Main Street West, Hamilton, ON, L8S 4L8, Canada
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Jeremy A. Hirota
2School of Biomedical Engineering, McMaster University, 1280 Main Street West, Hamilton, ON, L8S 4L8, Canada
6Department of Medicine, Division of Respirology, McMaster University, 1200 Main St W Hamilton, ON, L8N 3Z5, Canada
7Firestone Institute for Respiratory Health, St. Joseph’s Hospital, Hamilton, ON, L8N 4A6, Canada
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Shinichiro Ogawa
8McEwen Stem Cell Institute, University Health Network, 101 College St, MaRS Center, Toronto, Ontario, M5G 1L7 Canada
9Department of Laboratory, Medicine and Pathobiology, University of Toronto, 101 College St, MaRS Center, Toronto, Ontario, M5G 1L7 Canada
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Ana Konvalinka
3Advanced Diagnostics, Toronto General Hospital Research Institute, University Health Network, Toronto, Ontario, Canada
4Renal Transplant Program, Soham and Shaila Ajmera Family Transplant Centre, University Health Network, Toronto, Ontario, Canada
9Department of Laboratory, Medicine and Pathobiology, University of Toronto, 101 College St, MaRS Center, Toronto, Ontario, M5G 1L7 Canada
10Department of Medicine, Division of Nephrology, University Health Network, Toronto, Ontario, Canada
11Institute of Medical Science, University of Toronto, Toronto, Ontario, Canada
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Boyang Zhang
1Department of Chemical Engineering, McMaster University, 1280 Main Street West, Hamilton, ON, L8S 4L8, Canada
2School of Biomedical Engineering, McMaster University, 1280 Main Street West, Hamilton, ON, L8S 4L8, Canada
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  • For correspondence: zhangb97@mcmaster.ca
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Abstract

Organ-on-a-chip systems that recapitulate tissue-level functions have been proposed to improve in vitro–in vivo correlation in drug development. Significant progress has been made to control the cellular microenvironment with mechanical stimulation and fluid flow. However, it has been challenging to introduce complex 3D tissue structures due to the physical constraints of microfluidic channels or membranes in organ-on-a-chip systems. Although this problem could be addressed with the integration of 3D bioprinting, it is not an easy task because the two technologies have fundamentally different fabrication processes. Inspired by 4D bioprinting, we develop a 4D subtractive manufacturing technique where a flexible sacrificial material can be patterned on a 2D surface, change shape when exposed to aqueous hydrogel, and subsequently degrade to produce perfusable networks in a natural hydrogel matrix that can be populated with cells. The technique is applied to fabricate organ-specific vascular networks, vascularized kidney proximal tubules, and terminal lung alveoli in a customized 384-well plate and then further scaled to a 24-well plate format to make a large vascular network, vascularized liver tissues, and for integration with ultrasound imaging. This biofabrication method eliminates the physical constraints in organ-on-a-chip systems to incorporate complex ready-to-perfuse tissue structures in an open-well design.

Competing Interest Statement

A PCT application on the technology has been filed by SynoBiotech, Inc. B.Z holds equity in the company.

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. All rights reserved. No reuse allowed without permission.
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Posted August 15, 2021.
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AngioPlate – Biofabrication of perfusable complex tissues in multi-well plates with 4D subtractive manufacturing
Shravanthi Rajasekar, Dawn S. Y. Lin, Feng Zhang, Alexander Sotra, Alex Boshart, Sergi Clotet-Freixas, Amy Liu, Jeremy A. Hirota, Shinichiro Ogawa, Ana Konvalinka, Boyang Zhang
bioRxiv 2021.08.13.456244; doi: https://doi.org/10.1101/2021.08.13.456244
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AngioPlate – Biofabrication of perfusable complex tissues in multi-well plates with 4D subtractive manufacturing
Shravanthi Rajasekar, Dawn S. Y. Lin, Feng Zhang, Alexander Sotra, Alex Boshart, Sergi Clotet-Freixas, Amy Liu, Jeremy A. Hirota, Shinichiro Ogawa, Ana Konvalinka, Boyang Zhang
bioRxiv 2021.08.13.456244; doi: https://doi.org/10.1101/2021.08.13.456244

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