A Functional Human Liver Tissue Model: 3D Bioprinted Co-culture Discoids

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Subramaniam, Vignesh, Abrahan, Carolina, Higgins, Brett R., Chisolm, Steven J., Sweeney, Baleigh, Duraivel, Senthilkumar, Balzano-Nogueira, Leandro, Palmer, Glyn D., Angelini, Thomas E.
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866915208814919680
author Subramaniam, Vignesh
Abrahan, Carolina
Higgins, Brett R.
Chisolm, Steven J.
Sweeney, Baleigh
Duraivel, Senthilkumar
Balzano-Nogueira, Leandro
Palmer, Glyn D.
Angelini, Thomas E.
author_facet Subramaniam, Vignesh
Abrahan, Carolina
Higgins, Brett R.
Chisolm, Steven J.
Sweeney, Baleigh
Duraivel, Senthilkumar
Balzano-Nogueira, Leandro
Palmer, Glyn D.
Angelini, Thomas E.
contents To reduce costs and delays related to developing new and effective drugs, there is a critical need for improved human liver tissue models. Here we describe an approach for 3D bioprinting functional human liver tissue models, in which we fabricate disc-shaped structures (discoids) 200 μm in thickness and 1-3 mm in diameter, embedded in a highly permeable support medium made from packed microgels. We demonstrate that the method is precise, accurate, and scalable; up to 100 tissues per hour can be manufactured with a variability and error in diameter of about 4%. Histologic and immunohistochemical evaluation of printed discs reveal self-organization, cell cohesion, and key liver marker expression. During the course of 3-4 weeks in culture, the tissues stably synthesize albumin and urea at high levels, outperforming spheroid tissue models. We find the tissues express more than 100 genes associated with molecular absorption, distribution, metabolism, and excretion (ADME) at levels within the range of human liver. The liver tissue models exhibit enzymatic formation of metabolites after exposure to multiple test compounds. Together, these results demonstrate the promise of 3D printed discoids for pharmacological and toxicological applications.
format Preprint
id arxiv_https___arxiv_org_abs_2501_00086
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle A Functional Human Liver Tissue Model: 3D Bioprinted Co-culture Discoids
Subramaniam, Vignesh
Abrahan, Carolina
Higgins, Brett R.
Chisolm, Steven J.
Sweeney, Baleigh
Duraivel, Senthilkumar
Balzano-Nogueira, Leandro
Palmer, Glyn D.
Angelini, Thomas E.
Soft Condensed Matter
Biological Physics
Tissues and Organs
To reduce costs and delays related to developing new and effective drugs, there is a critical need for improved human liver tissue models. Here we describe an approach for 3D bioprinting functional human liver tissue models, in which we fabricate disc-shaped structures (discoids) 200 μm in thickness and 1-3 mm in diameter, embedded in a highly permeable support medium made from packed microgels. We demonstrate that the method is precise, accurate, and scalable; up to 100 tissues per hour can be manufactured with a variability and error in diameter of about 4%. Histologic and immunohistochemical evaluation of printed discs reveal self-organization, cell cohesion, and key liver marker expression. During the course of 3-4 weeks in culture, the tissues stably synthesize albumin and urea at high levels, outperforming spheroid tissue models. We find the tissues express more than 100 genes associated with molecular absorption, distribution, metabolism, and excretion (ADME) at levels within the range of human liver. The liver tissue models exhibit enzymatic formation of metabolites after exposure to multiple test compounds. Together, these results demonstrate the promise of 3D printed discoids for pharmacological and toxicological applications.
title A Functional Human Liver Tissue Model: 3D Bioprinted Co-culture Discoids
topic Soft Condensed Matter
Biological Physics
Tissues and Organs
url https://arxiv.org/abs/2501.00086