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Development and Evaluation of 3D-Printed Cardiovascular Phantoms for Interventional Planning and Training
Published on: January 18, 2021
A 3D Toolbox to Enhance Physiological Relevance of Human Tissue Models
Nathalie Picollet-D'hahan1, Monika E Dolega1, Lavinia Liguori2
1CEA, BIG, BGE, F-38054 Grenoble, France; University Grenoble-Alpes, F-38000 Grenoble, France; INSERM, U1038, F-38054 Grenoble, France.
Abstract:
We discuss the current challenges and future prospects of flow-based organoid models and 3D self-assembling scaffolds. The existing paradigm of 3D culture suffers from a lack of control over organoid size and shape; can be an obstacle for cell harvesting and extended cellular and molecular analysis; and does not provide access to the function of exocrine glands. Moreover, existing organ-on-chip models are mostly composed of 2D extracellular matrix (ECM)-coated elastomeric membranes that do not mimic real organ architectures. A new comprehensive 3D toolbox for cell biology has emerged to address some of these issues. Advances in microfabrication and cell-culturing approaches enable the engineering of sophisticated models that mimic organ 3D architectures and physiological conditions, while supporting flow-based drug screening and secretomics-based diagnosis.
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