Precision Culture Scaling to Establish High‐Throughput Vasculogenesis Models

Author:

Dennison Nicholas R.1,Fusenig Maximilian12ORCID,Grönnert Lisa3,Maitz Manfred F.1,Ramirez Martinez Maria Alejandra1,Wobus Manja1,Freudenberg Uwe1,Bornhäuser Martin2,Friedrichs Jens1,Westenskow Peter D.3,Werner Carsten124ORCID

Affiliation:

1. Leibniz Institute of Polymer Research Dresden Max Bergmann Center of Biomaterials 01069 Dresden Germany

2. Medical Clinic I University Hospital Carl Gustav Carus Technische Universität Dresden 01307 Dresden Germany

3. Ocular Technologies Immunology Infectious Diseases and Ophthalmology Pharmaceutical Research and Early Development Roche Innovation Center Basel F. Hoffmann‐La Roche Ltd. Basel 4070 Switzerland

4. Center for Regenerative Therapies Dresden and Cluster of Excellence Physics of Life Technische Universität Dresden 01307 Dresden Germany

Abstract

AbstractHydrogel‐based 3D cell cultures can recapitulate (patho)physiological phenomena ex vivo. However, due to their complex multifactorial regulation, adapting these tissue and disease models for high‐throughput screening workflows remains challenging. In this study, a new precision culture scaling (PCS‐X) methodology combines statistical techniques (design of experiment and multiple linear regression) with automated, parallelized experiments and analyses to customize hydrogel‐based vasculogenesis cultures using human umbilical vein endothelial cells and retinal microvascular endothelial cells. Variations of cell density, growth factor supplementation, and media composition are systematically explored to induce vasculogenesis in endothelial mono‐ and cocultures with mesenchymal stromal cells or retinal microvascular pericytes in 384‐well plate formats. The developed cultures are shown to respond to vasculogenesis inhibitors in a compound‐ and dose‐dependent manner, demonstrating the scope and power of PCS‐X in creating parallelized tissue and disease models for drug discovery and individualized therapies.

Funder

Deutsche Forschungsgemeinschaft

F. Hoffmann-La Roche

Publisher

Wiley

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