Rapid model-guided design of organ-scale synthetic vasculature for biomanufacturing.
basic_science · Level V
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- Record sourced from PubMed, PMID 40504910.
- Also identified by DOI 10.1126/science.adj6152 and PMC identifier 12490288.
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Abstract
Our ability to produce human-scale biomanufactured organs is limited by inadequate vascularization and perfusion. For arbitrarily complex geometries, designing and printing vasculature capable of adequate perfusion poses a major hurdle. We introduce a model-driven design platform that demonstrates rapid synthetic vascular model generation alongside multifidelity computational fluid dynamics simulations and three-dimensional bioprinting. Key algorithmic advances accelerate vascular generation 230-fold and enable application to arbitrarily complex shapes. We demonstrate that organ-scale vascular network models can be generated and used to computationally vascularize >200 engineered and anatomic models. Synthetic vascular perfusion improves cell viability in fabricated living-tissue constructs. This platform enables the rapid, scalable vascular model generation and fluid physics analysis for biomanufactured tissues that are necessary for future scale-up and production.
Medical subject headings
- Tissue Engineering
- Bioprinting
- Blood Vessels