A Biocompatible Endothelial Cell Delivery System for in Vitro Tissue Engineering

Engineering solid tissues, including cardiac muscle, requires the inclusion of a microvasculature. Prevascularization in vitro will likely be dependent upon coculturing parenchymal cells with vascular cells, on a matrix that is sufficiently porous to allow microvessel formation. In this study, we ex...

Full description

Bibliographic Details
Main Authors: Eun Jung Lee, Gordana Vunjak-Novakovic, Yadong Wang, Laura E. Niklason M.D., Ph.D.
Format: Article
Language:English
Published: SAGE Publishing 2009-07-01
Series:Cell Transplantation
Online Access:https://doi.org/10.3727/096368909X470919
id doaj-efbdd3d283834ccb828da823c06a15f0
record_format Article
spelling doaj-efbdd3d283834ccb828da823c06a15f02020-11-25T02:54:29ZengSAGE PublishingCell Transplantation0963-68971555-38922009-07-011810.3727/096368909X470919A Biocompatible Endothelial Cell Delivery System for in Vitro Tissue EngineeringEun Jung Lee0Gordana Vunjak-Novakovic1Yadong Wang2Laura E. Niklason M.D., Ph.D.3Department of Anesthesiology, Yale University, New Haven, CT, USADepartment of Biomedical Engineering, Columbia University, New York, NY, USADepartment of Bioengineering, University of Pittsburgh, Pittsburgh, PA, USADepartment of Anesthesiology, Yale University, New Haven, CT, USAEngineering solid tissues, including cardiac muscle, requires the inclusion of a microvasculature. Prevascularization in vitro will likely be dependent upon coculturing parenchymal cells with vascular cells, on a matrix that is sufficiently porous to allow microvessel formation. In this study, we examined the behavior and function of endothelial cells on a highly porous elastomeric 3D poly(glycerol sebacate) (PGS) scaffold, to provide a flexible and biocompatible endothelial cell delivery system for developing cardiac engineered tissues with neovascularization potential. Both static and perfusion cell seeding methods were used, and the effects of surface treatment of the scaffold with various extracellular matrix components were examined. Endothelial cell adhesion and phenotype on the PGS scaffold under various flow conditions were also determined. Surface coating with laminin markedly improved the endothelial cell adhesion, survival, and proliferation. The anticoagulant phenotype of adhered endothelial cells was further regulated by the application of flow through regulation of nitric oxide expression. By providing a highly porous scaffolding that contains endothelium with anticoagulant properties, the endothelial cell-seeded PGS scaffold could provide a new basis for subsequent coculture studies with various cell types to develop complex engineered tissue constructs with vascularization capacity.https://doi.org/10.3727/096368909X470919
collection DOAJ
language English
format Article
sources DOAJ
author Eun Jung Lee
Gordana Vunjak-Novakovic
Yadong Wang
Laura E. Niklason M.D., Ph.D.
spellingShingle Eun Jung Lee
Gordana Vunjak-Novakovic
Yadong Wang
Laura E. Niklason M.D., Ph.D.
A Biocompatible Endothelial Cell Delivery System for in Vitro Tissue Engineering
Cell Transplantation
author_facet Eun Jung Lee
Gordana Vunjak-Novakovic
Yadong Wang
Laura E. Niklason M.D., Ph.D.
author_sort Eun Jung Lee
title A Biocompatible Endothelial Cell Delivery System for in Vitro Tissue Engineering
title_short A Biocompatible Endothelial Cell Delivery System for in Vitro Tissue Engineering
title_full A Biocompatible Endothelial Cell Delivery System for in Vitro Tissue Engineering
title_fullStr A Biocompatible Endothelial Cell Delivery System for in Vitro Tissue Engineering
title_full_unstemmed A Biocompatible Endothelial Cell Delivery System for in Vitro Tissue Engineering
title_sort biocompatible endothelial cell delivery system for in vitro tissue engineering
publisher SAGE Publishing
series Cell Transplantation
issn 0963-6897
1555-3892
publishDate 2009-07-01
description Engineering solid tissues, including cardiac muscle, requires the inclusion of a microvasculature. Prevascularization in vitro will likely be dependent upon coculturing parenchymal cells with vascular cells, on a matrix that is sufficiently porous to allow microvessel formation. In this study, we examined the behavior and function of endothelial cells on a highly porous elastomeric 3D poly(glycerol sebacate) (PGS) scaffold, to provide a flexible and biocompatible endothelial cell delivery system for developing cardiac engineered tissues with neovascularization potential. Both static and perfusion cell seeding methods were used, and the effects of surface treatment of the scaffold with various extracellular matrix components were examined. Endothelial cell adhesion and phenotype on the PGS scaffold under various flow conditions were also determined. Surface coating with laminin markedly improved the endothelial cell adhesion, survival, and proliferation. The anticoagulant phenotype of adhered endothelial cells was further regulated by the application of flow through regulation of nitric oxide expression. By providing a highly porous scaffolding that contains endothelium with anticoagulant properties, the endothelial cell-seeded PGS scaffold could provide a new basis for subsequent coculture studies with various cell types to develop complex engineered tissue constructs with vascularization capacity.
url https://doi.org/10.3727/096368909X470919
work_keys_str_mv AT eunjunglee abiocompatibleendothelialcelldeliverysystemforinvitrotissueengineering
AT gordanavunjaknovakovic abiocompatibleendothelialcelldeliverysystemforinvitrotissueengineering
AT yadongwang abiocompatibleendothelialcelldeliverysystemforinvitrotissueengineering
AT lauraeniklasonmdphd abiocompatibleendothelialcelldeliverysystemforinvitrotissueengineering
AT eunjunglee biocompatibleendothelialcelldeliverysystemforinvitrotissueengineering
AT gordanavunjaknovakovic biocompatibleendothelialcelldeliverysystemforinvitrotissueengineering
AT yadongwang biocompatibleendothelialcelldeliverysystemforinvitrotissueengineering
AT lauraeniklasonmdphd biocompatibleendothelialcelldeliverysystemforinvitrotissueengineering
_version_ 1724720804137009152