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Dynamic, Nondestructive Imaging of a Bioengineered Vascular Graft Endothelium

Bioengineering of vascular grafts holds great potential to address the shortcomings associated with autologous and conventional synthetic vascular grafts used for small diameter grafting procedures. Lumen endothelialization of bioengineered vascular grafts is essential to provide an antithrombogenic...

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Autores principales: Whited, Bryce M., Hofmann, Matthias C., Lu, Peng, Xu, Yong, Rylander, Christopher G., Wang, Ge, Sapoznik, Etai, Criswell, Tracy, Lee, Sang Jin, Soker, Shay, Rylander, Marissa Nichole
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3621659/
https://www.ncbi.nlm.nih.gov/pubmed/23585885
http://dx.doi.org/10.1371/journal.pone.0061275
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author Whited, Bryce M.
Hofmann, Matthias C.
Lu, Peng
Xu, Yong
Rylander, Christopher G.
Wang, Ge
Sapoznik, Etai
Criswell, Tracy
Lee, Sang Jin
Soker, Shay
Rylander, Marissa Nichole
author_facet Whited, Bryce M.
Hofmann, Matthias C.
Lu, Peng
Xu, Yong
Rylander, Christopher G.
Wang, Ge
Sapoznik, Etai
Criswell, Tracy
Lee, Sang Jin
Soker, Shay
Rylander, Marissa Nichole
author_sort Whited, Bryce M.
collection PubMed
description Bioengineering of vascular grafts holds great potential to address the shortcomings associated with autologous and conventional synthetic vascular grafts used for small diameter grafting procedures. Lumen endothelialization of bioengineered vascular grafts is essential to provide an antithrombogenic graft surface to ensure long-term patency after implantation. Conventional methods used to assess endothelialization in vitro typically involve periodic harvesting of the graft for histological sectioning and staining of the lumen. Endpoint testing methods such as these are effective but do not provide real-time information of endothelial cells in their intact microenvironment, rather only a single time point measurement of endothelium development. Therefore, nondestructive methods are needed to provide dynamic information of graft endothelialization and endothelium maturation in vitro. To address this need, we have developed a nondestructive fiber optic based (FOB) imaging method that is capable of dynamic assessment of graft endothelialization without disturbing the graft housed in a bioreactor. In this study we demonstrate the capability of the FOB imaging method to quantify electrospun vascular graft endothelialization, EC detachment, and apoptosis in a nondestructive manner. The electrospun scaffold fiber diameter of the graft lumen was systematically varied and the FOB imaging system was used to noninvasively quantify the affect of topography on graft endothelialization over a 7-day period. Additionally, results demonstrated that the FOB imaging method had a greater imaging penetration depth than that of two-photon microscopy. This imaging method is a powerful tool to optimize vascular grafts and bioreactor conditions in vitro, and can be further adapted to monitor endothelium maturation and response to fluid flow bioreactor preconditioning.
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spelling pubmed-36216592013-04-12 Dynamic, Nondestructive Imaging of a Bioengineered Vascular Graft Endothelium Whited, Bryce M. Hofmann, Matthias C. Lu, Peng Xu, Yong Rylander, Christopher G. Wang, Ge Sapoznik, Etai Criswell, Tracy Lee, Sang Jin Soker, Shay Rylander, Marissa Nichole PLoS One Research Article Bioengineering of vascular grafts holds great potential to address the shortcomings associated with autologous and conventional synthetic vascular grafts used for small diameter grafting procedures. Lumen endothelialization of bioengineered vascular grafts is essential to provide an antithrombogenic graft surface to ensure long-term patency after implantation. Conventional methods used to assess endothelialization in vitro typically involve periodic harvesting of the graft for histological sectioning and staining of the lumen. Endpoint testing methods such as these are effective but do not provide real-time information of endothelial cells in their intact microenvironment, rather only a single time point measurement of endothelium development. Therefore, nondestructive methods are needed to provide dynamic information of graft endothelialization and endothelium maturation in vitro. To address this need, we have developed a nondestructive fiber optic based (FOB) imaging method that is capable of dynamic assessment of graft endothelialization without disturbing the graft housed in a bioreactor. In this study we demonstrate the capability of the FOB imaging method to quantify electrospun vascular graft endothelialization, EC detachment, and apoptosis in a nondestructive manner. The electrospun scaffold fiber diameter of the graft lumen was systematically varied and the FOB imaging system was used to noninvasively quantify the affect of topography on graft endothelialization over a 7-day period. Additionally, results demonstrated that the FOB imaging method had a greater imaging penetration depth than that of two-photon microscopy. This imaging method is a powerful tool to optimize vascular grafts and bioreactor conditions in vitro, and can be further adapted to monitor endothelium maturation and response to fluid flow bioreactor preconditioning. Public Library of Science 2013-04-09 /pmc/articles/PMC3621659/ /pubmed/23585885 http://dx.doi.org/10.1371/journal.pone.0061275 Text en © 2013 Whited et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Whited, Bryce M.
Hofmann, Matthias C.
Lu, Peng
Xu, Yong
Rylander, Christopher G.
Wang, Ge
Sapoznik, Etai
Criswell, Tracy
Lee, Sang Jin
Soker, Shay
Rylander, Marissa Nichole
Dynamic, Nondestructive Imaging of a Bioengineered Vascular Graft Endothelium
title Dynamic, Nondestructive Imaging of a Bioengineered Vascular Graft Endothelium
title_full Dynamic, Nondestructive Imaging of a Bioengineered Vascular Graft Endothelium
title_fullStr Dynamic, Nondestructive Imaging of a Bioengineered Vascular Graft Endothelium
title_full_unstemmed Dynamic, Nondestructive Imaging of a Bioengineered Vascular Graft Endothelium
title_short Dynamic, Nondestructive Imaging of a Bioengineered Vascular Graft Endothelium
title_sort dynamic, nondestructive imaging of a bioengineered vascular graft endothelium
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3621659/
https://www.ncbi.nlm.nih.gov/pubmed/23585885
http://dx.doi.org/10.1371/journal.pone.0061275
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