Non‐Invasive Quality Control of Organoid Cultures Using Mesofluidic CSTR Bioreactors and High‐Content Imaging

Author:

Charles Seleipiri12,Jackson‐Holmes Emily3,Sun Gongchen3,Zhou Ying4,Siciliano Benjamin5,Niu Weibo4,Han Haejun16,Nikitina Arina3,Kemp Melissa L.12,Wen Zhexing4,Lu Hang123ORCID

Affiliation:

1. Interdisciplinary Program in Bioengineering Georgia Institute of Technology 311 Ferst Drive NW Atlanta GA 30332 USA

2. Wallace H. Coulter Department of Biomedical Engineering Georgia Institute of Technology 313 Ferst Drive NW Atlanta GA 30332 USA

3. School of Chemical & Biomolecular Engineering Georgia Institute of Technology 311 Ferst Drive NW Atlanta GA 30332 USA

4. Departments of Psychiatry and Behavioral Sciences, Cell Biology, and Neurology Emory University School of Medicine 615 Michael Street Atlanta GA 30322 USA

5. Graduate Program in Molecular and Systems Pharmacology Laney Graduate School Emory University 615 Michael Street Atlanta GA 30322 USA

6. School of Biological Sciences Georgia Institute of Technology 310 Ferst Drive NW Atlanta GA 30332 USA

Abstract

AbstractHuman brain organoids produce anatomically relevant cellular structures and recapitulate key aspects of in vivo brain function, which holds great potential to model neurological diseases and screen therapeutics. However, the long growth time of 3D systems complicates the culturing of brain organoids and results in heterogeneity across samples hampering their applications. An integrated platform is developed to enable robust and long‐term culturing of 3D brain organoids. A mesofluidic bioreactor device is designed based on a reaction‐diffusion scaling theory, which achieves robust media exchange for sufficient nutrient delivery in long‐term culture. This device is integrated with longitudinal tracking and machine learning‐based classification tools to enable non‐invasive quality control of live organoids. This integrated platform allows for sample pre‐selection for downstream molecular analysis. Transcriptome analyses of organoids revealed that the mesofluidic bioreactor promoted organoid development while reducing cell death. This platform thus offers a generalizable tool to establish reproducible culture standards for 3D cellular systems for a variety of applications beyond brain organoids.

Funder

National Institutes of Health

National Science Foundation

Simons Foundation

Marcus Foundation

Foundation for the National Institutes of Health

Publisher

Wiley

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