Design of Biomimetic Vascular Grafts with Magnetic Endothelial Patterning

The development of small diameter vascular grafts with a controlled pluricellular organization is still needed for effective vascular tissue engineering. Here, we describe a technological approach combining a tubular scaffold and magnetically labeled cells to create a pluricellular and organized vas...

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Main Authors: Delphine Fayol, Catherine Le Visage, Julia Ino, Florence Gazeau, Didier Letourneur, Claire Wilhelm
Format: Article
Language:English
Published: SAGE Publishing 2013-11-01
Series:Cell Transplantation
Online Access:https://doi.org/10.3727/096368912X661300
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spelling doaj-8e482a4d4c6945b2b4ba7ee6002dd9642020-11-25T02:22:15ZengSAGE PublishingCell Transplantation0963-68971555-38922013-11-012210.3727/096368912X661300Design of Biomimetic Vascular Grafts with Magnetic Endothelial PatterningDelphine Fayol0Catherine Le Visage1Julia Ino2Florence Gazeau3Didier Letourneur4Claire Wilhelm5 Laboratoire Matière et Systèmes Complexes (MSC), UMR 7057 CNRS and Université Paris Diderot, Paris, France Inserm, U698, Bio-ingénierie Cardiovasculaire, Université Paris Diderot, CHU X. Bichat, Paris, France Inserm, U698, Bio-ingénierie Cardiovasculaire, Université Paris Diderot, CHU X. Bichat, Paris, France Laboratoire Matière et Systèmes Complexes (MSC), UMR 7057 CNRS and Université Paris Diderot, Paris, France Inserm, U698, Bio-ingénierie Cardiovasculaire, Université Paris Diderot, CHU X. Bichat, Paris, France Laboratoire Matière et Systèmes Complexes (MSC), UMR 7057 CNRS and Université Paris Diderot, Paris, FranceThe development of small diameter vascular grafts with a controlled pluricellular organization is still needed for effective vascular tissue engineering. Here, we describe a technological approach combining a tubular scaffold and magnetically labeled cells to create a pluricellular and organized vascular graft, the endothelialization of which could be monitored by MRI prior to transplantation. A novel type of scaffold was developed with a tubular geometry and a porous bulk structure enabling the seeding of cells in the scaffold pores. A homogeneous distribution of human mesenchymal stem cells in the macroporous structure was obtained by seeding the freeze-dried scaffold with the cell suspension. The efficient covering of the luminal surface of the tube was then made possible thanks to the implementation of a magnetic-based patterning technique. Human endothelial cells or endothelial progenitors were magnetically labeled with iron oxide nanoparticles and successfully attracted to the 2-mm lumen where they attached and formed a continuous endothelium. The combination of imaging modalities [fluorescence imaging, histology, and 3D magnetic resonance imaging (MRI)] evidenced the integrity of the vascular construct. In particular, the observation of different cell organizations in a vascular scaffold within the range of resolution of single cells by 4.7 T MRI is reported.https://doi.org/10.3727/096368912X661300
collection DOAJ
language English
format Article
sources DOAJ
author Delphine Fayol
Catherine Le Visage
Julia Ino
Florence Gazeau
Didier Letourneur
Claire Wilhelm
spellingShingle Delphine Fayol
Catherine Le Visage
Julia Ino
Florence Gazeau
Didier Letourneur
Claire Wilhelm
Design of Biomimetic Vascular Grafts with Magnetic Endothelial Patterning
Cell Transplantation
author_facet Delphine Fayol
Catherine Le Visage
Julia Ino
Florence Gazeau
Didier Letourneur
Claire Wilhelm
author_sort Delphine Fayol
title Design of Biomimetic Vascular Grafts with Magnetic Endothelial Patterning
title_short Design of Biomimetic Vascular Grafts with Magnetic Endothelial Patterning
title_full Design of Biomimetic Vascular Grafts with Magnetic Endothelial Patterning
title_fullStr Design of Biomimetic Vascular Grafts with Magnetic Endothelial Patterning
title_full_unstemmed Design of Biomimetic Vascular Grafts with Magnetic Endothelial Patterning
title_sort design of biomimetic vascular grafts with magnetic endothelial patterning
publisher SAGE Publishing
series Cell Transplantation
issn 0963-6897
1555-3892
publishDate 2013-11-01
description The development of small diameter vascular grafts with a controlled pluricellular organization is still needed for effective vascular tissue engineering. Here, we describe a technological approach combining a tubular scaffold and magnetically labeled cells to create a pluricellular and organized vascular graft, the endothelialization of which could be monitored by MRI prior to transplantation. A novel type of scaffold was developed with a tubular geometry and a porous bulk structure enabling the seeding of cells in the scaffold pores. A homogeneous distribution of human mesenchymal stem cells in the macroporous structure was obtained by seeding the freeze-dried scaffold with the cell suspension. The efficient covering of the luminal surface of the tube was then made possible thanks to the implementation of a magnetic-based patterning technique. Human endothelial cells or endothelial progenitors were magnetically labeled with iron oxide nanoparticles and successfully attracted to the 2-mm lumen where they attached and formed a continuous endothelium. The combination of imaging modalities [fluorescence imaging, histology, and 3D magnetic resonance imaging (MRI)] evidenced the integrity of the vascular construct. In particular, the observation of different cell organizations in a vascular scaffold within the range of resolution of single cells by 4.7 T MRI is reported.
url https://doi.org/10.3727/096368912X661300
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