Cargando…

Rapid model-guided design of organ-scale synthetic vasculature for biomanufacturing

Our ability to produce human-scale bio-manufactured organs is critically limited by the need for vascularization and perfusion. For tissues of variable size and shape, including arbitrarily complex geometries, designing and printing vasculature capable of adequate perfusion has posed a major hurdle....

Descripción completa

Detalles Bibliográficos
Autores principales: Sexton, Zachary A., Hudson, Andrew R., Herrmann, Jessica E., Shiwarski, Dan J., Pham, Jonathan, Szafron, Jason M., Wu, Sean M., Skylar-Scott, Mark, Feinberg, Adam W., Marsden, Alison
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cornell University 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10462165/
https://www.ncbi.nlm.nih.gov/pubmed/37645046
_version_ 1785098000206397440
author Sexton, Zachary A.
Hudson, Andrew R.
Herrmann, Jessica E.
Shiwarski, Dan J.
Pham, Jonathan
Szafron, Jason M.
Wu, Sean M.
Skylar-Scott, Mark
Feinberg, Adam W.
Marsden, Alison
author_facet Sexton, Zachary A.
Hudson, Andrew R.
Herrmann, Jessica E.
Shiwarski, Dan J.
Pham, Jonathan
Szafron, Jason M.
Wu, Sean M.
Skylar-Scott, Mark
Feinberg, Adam W.
Marsden, Alison
author_sort Sexton, Zachary A.
collection PubMed
description Our ability to produce human-scale bio-manufactured organs is critically limited by the need for vascularization and perfusion. For tissues of variable size and shape, including arbitrarily complex geometries, designing and printing vasculature capable of adequate perfusion has posed a major hurdle. Here, we introduce a model-driven design pipeline combining accelerated optimization methods for fast synthetic vascular tree generation and computational hemodynamics models. We demonstrate rapid generation, simulation, and 3D printing of synthetic vasculature in complex geometries, from small tissue constructs to organ scale networks. We introduce key algorithmic advances that all together accelerate synthetic vascular generation by more than 230 -fold compared to standard methods and enable their use in arbitrarily complex shapes through localized implicit functions. Furthermore, we provide techniques for joining vascular trees into watertight networks suitable for hemodynamic CFD and 3D fabrication. We demonstrate that organ-scale vascular network models can be generated in silico within minutes and can be used to perfuse engineered and anatomic models including a bioreactor, annulus, bi-ventricular heart, and gyrus. We further show that this flexible pipeline can be applied to two common modes of bioprinting with free-form reversible embedding of suspended hydrogels and writing into soft matter. Our synthetic vascular tree generation pipeline enables rapid, scalable vascular model generation and fluid analysis for bio-manufactured tissues necessary for future scale up and production.
format Online
Article
Text
id pubmed-10462165
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Cornell University
record_format MEDLINE/PubMed
spelling pubmed-104621652023-08-29 Rapid model-guided design of organ-scale synthetic vasculature for biomanufacturing Sexton, Zachary A. Hudson, Andrew R. Herrmann, Jessica E. Shiwarski, Dan J. Pham, Jonathan Szafron, Jason M. Wu, Sean M. Skylar-Scott, Mark Feinberg, Adam W. Marsden, Alison ArXiv Article Our ability to produce human-scale bio-manufactured organs is critically limited by the need for vascularization and perfusion. For tissues of variable size and shape, including arbitrarily complex geometries, designing and printing vasculature capable of adequate perfusion has posed a major hurdle. Here, we introduce a model-driven design pipeline combining accelerated optimization methods for fast synthetic vascular tree generation and computational hemodynamics models. We demonstrate rapid generation, simulation, and 3D printing of synthetic vasculature in complex geometries, from small tissue constructs to organ scale networks. We introduce key algorithmic advances that all together accelerate synthetic vascular generation by more than 230 -fold compared to standard methods and enable their use in arbitrarily complex shapes through localized implicit functions. Furthermore, we provide techniques for joining vascular trees into watertight networks suitable for hemodynamic CFD and 3D fabrication. We demonstrate that organ-scale vascular network models can be generated in silico within minutes and can be used to perfuse engineered and anatomic models including a bioreactor, annulus, bi-ventricular heart, and gyrus. We further show that this flexible pipeline can be applied to two common modes of bioprinting with free-form reversible embedding of suspended hydrogels and writing into soft matter. Our synthetic vascular tree generation pipeline enables rapid, scalable vascular model generation and fluid analysis for bio-manufactured tissues necessary for future scale up and production. Cornell University 2023-08-15 /pmc/articles/PMC10462165/ /pubmed/37645046 Text en https://creativecommons.org/licenses/by-nc-sa/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International License (https://creativecommons.org/licenses/by-nc-sa/4.0/) , which allows reusers to distribute, remix, adapt, and build upon the material in any medium or format for noncommercial purposes only, and only so long as attribution is given to the creator. If you remix, adapt, or build upon the material, you must license the modified material under identical terms.
spellingShingle Article
Sexton, Zachary A.
Hudson, Andrew R.
Herrmann, Jessica E.
Shiwarski, Dan J.
Pham, Jonathan
Szafron, Jason M.
Wu, Sean M.
Skylar-Scott, Mark
Feinberg, Adam W.
Marsden, Alison
Rapid model-guided design of organ-scale synthetic vasculature for biomanufacturing
title Rapid model-guided design of organ-scale synthetic vasculature for biomanufacturing
title_full Rapid model-guided design of organ-scale synthetic vasculature for biomanufacturing
title_fullStr Rapid model-guided design of organ-scale synthetic vasculature for biomanufacturing
title_full_unstemmed Rapid model-guided design of organ-scale synthetic vasculature for biomanufacturing
title_short Rapid model-guided design of organ-scale synthetic vasculature for biomanufacturing
title_sort rapid model-guided design of organ-scale synthetic vasculature for biomanufacturing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10462165/
https://www.ncbi.nlm.nih.gov/pubmed/37645046
work_keys_str_mv AT sextonzacharya rapidmodelguideddesignoforganscalesyntheticvasculatureforbiomanufacturing
AT hudsonandrewr rapidmodelguideddesignoforganscalesyntheticvasculatureforbiomanufacturing
AT herrmannjessicae rapidmodelguideddesignoforganscalesyntheticvasculatureforbiomanufacturing
AT shiwarskidanj rapidmodelguideddesignoforganscalesyntheticvasculatureforbiomanufacturing
AT phamjonathan rapidmodelguideddesignoforganscalesyntheticvasculatureforbiomanufacturing
AT szafronjasonm rapidmodelguideddesignoforganscalesyntheticvasculatureforbiomanufacturing
AT wuseanm rapidmodelguideddesignoforganscalesyntheticvasculatureforbiomanufacturing
AT skylarscottmark rapidmodelguideddesignoforganscalesyntheticvasculatureforbiomanufacturing
AT feinbergadamw rapidmodelguideddesignoforganscalesyntheticvasculatureforbiomanufacturing
AT marsdenalison rapidmodelguideddesignoforganscalesyntheticvasculatureforbiomanufacturing