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Vascular bioengineering of scaffolds derived from human discarded transplant kidneys using human pluripotent stem cell–derived endothelium

The bioengineering of a replacement kidney has been proposed as an approach to address the growing shortage of donor kidneys for the treatment of chronic kidney disease. One approach being investigated is the recellularization of kidney scaffolds. In this study, we present several key advances towar...

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Autores principales: Leuning, Daniëlle G., Witjas, Franca M. R., Maanaoui, Mehdi, de Graaf, Annemarie M. A., Lievers, Ellen, Geuens, Thomas, Avramut, Christina M., Wiersma, Loes E., van den Berg, Cathelijne W., Sol, Wendy M. P. J., de Boer, Hetty, Wang, Gangqi, LaPointe, Vanessa L. S., van der Vlag, Johan, van Kooten, Cees, van den Berg, Bernard M., Little, Melissa H., Engelse, Marten A., Rabelink, Ton J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6590331/
https://www.ncbi.nlm.nih.gov/pubmed/30506641
http://dx.doi.org/10.1111/ajt.15200
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author Leuning, Daniëlle G.
Witjas, Franca M. R.
Maanaoui, Mehdi
de Graaf, Annemarie M. A.
Lievers, Ellen
Geuens, Thomas
Avramut, Christina M.
Wiersma, Loes E.
van den Berg, Cathelijne W.
Sol, Wendy M. P. J.
de Boer, Hetty
Wang, Gangqi
LaPointe, Vanessa L. S.
van der Vlag, Johan
van Kooten, Cees
van den Berg, Bernard M.
Little, Melissa H.
Engelse, Marten A.
Rabelink, Ton J.
author_facet Leuning, Daniëlle G.
Witjas, Franca M. R.
Maanaoui, Mehdi
de Graaf, Annemarie M. A.
Lievers, Ellen
Geuens, Thomas
Avramut, Christina M.
Wiersma, Loes E.
van den Berg, Cathelijne W.
Sol, Wendy M. P. J.
de Boer, Hetty
Wang, Gangqi
LaPointe, Vanessa L. S.
van der Vlag, Johan
van Kooten, Cees
van den Berg, Bernard M.
Little, Melissa H.
Engelse, Marten A.
Rabelink, Ton J.
author_sort Leuning, Daniëlle G.
collection PubMed
description The bioengineering of a replacement kidney has been proposed as an approach to address the growing shortage of donor kidneys for the treatment of chronic kidney disease. One approach being investigated is the recellularization of kidney scaffolds. In this study, we present several key advances toward successful re‐endothelialization of whole kidney matrix scaffolds from both rodents and humans. Based on the presence of preserved glycosoaminoglycans within the decelullarized kidney scaffold, we show improved localization of delivered endothelial cells after preloading of the vascular matrix with vascular endothelial growth factor and angiopoietin 1. Using a novel simultaneous arteriovenous delivery system, we report the complete re‐endothelialization of the kidney vasculature, including the glomerular and peritubular capillaries, using human inducible pluripotent stem cell –derived endothelial cells. Using this source of endothelial cells, it was possible to generate sufficient endothelial cells to recellularize an entire human kidney scaffold, achieving efficient cell delivery, adherence, and endothelial cell proliferation and survival. Moreover, human re‐endothelialized scaffold could, in contrast to the non‐re‐endothelialized human scaffold, be fully perfused with whole blood. These major advances move the field closer to a human bioengineered kidney.
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spelling pubmed-65903312019-07-08 Vascular bioengineering of scaffolds derived from human discarded transplant kidneys using human pluripotent stem cell–derived endothelium Leuning, Daniëlle G. Witjas, Franca M. R. Maanaoui, Mehdi de Graaf, Annemarie M. A. Lievers, Ellen Geuens, Thomas Avramut, Christina M. Wiersma, Loes E. van den Berg, Cathelijne W. Sol, Wendy M. P. J. de Boer, Hetty Wang, Gangqi LaPointe, Vanessa L. S. van der Vlag, Johan van Kooten, Cees van den Berg, Bernard M. Little, Melissa H. Engelse, Marten A. Rabelink, Ton J. Am J Transplant ORIGINAL ARTICLES The bioengineering of a replacement kidney has been proposed as an approach to address the growing shortage of donor kidneys for the treatment of chronic kidney disease. One approach being investigated is the recellularization of kidney scaffolds. In this study, we present several key advances toward successful re‐endothelialization of whole kidney matrix scaffolds from both rodents and humans. Based on the presence of preserved glycosoaminoglycans within the decelullarized kidney scaffold, we show improved localization of delivered endothelial cells after preloading of the vascular matrix with vascular endothelial growth factor and angiopoietin 1. Using a novel simultaneous arteriovenous delivery system, we report the complete re‐endothelialization of the kidney vasculature, including the glomerular and peritubular capillaries, using human inducible pluripotent stem cell –derived endothelial cells. Using this source of endothelial cells, it was possible to generate sufficient endothelial cells to recellularize an entire human kidney scaffold, achieving efficient cell delivery, adherence, and endothelial cell proliferation and survival. Moreover, human re‐endothelialized scaffold could, in contrast to the non‐re‐endothelialized human scaffold, be fully perfused with whole blood. These major advances move the field closer to a human bioengineered kidney. John Wiley and Sons Inc. 2019-01-10 2019-05 /pmc/articles/PMC6590331/ /pubmed/30506641 http://dx.doi.org/10.1111/ajt.15200 Text en © 2018 The Authors American Journal of Transplantation published by Wiley Periodicals, Inc. on behalf of The American Society of Transplantation and the American Society of Transplant Surgeons This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle ORIGINAL ARTICLES
Leuning, Daniëlle G.
Witjas, Franca M. R.
Maanaoui, Mehdi
de Graaf, Annemarie M. A.
Lievers, Ellen
Geuens, Thomas
Avramut, Christina M.
Wiersma, Loes E.
van den Berg, Cathelijne W.
Sol, Wendy M. P. J.
de Boer, Hetty
Wang, Gangqi
LaPointe, Vanessa L. S.
van der Vlag, Johan
van Kooten, Cees
van den Berg, Bernard M.
Little, Melissa H.
Engelse, Marten A.
Rabelink, Ton J.
Vascular bioengineering of scaffolds derived from human discarded transplant kidneys using human pluripotent stem cell–derived endothelium
title Vascular bioengineering of scaffolds derived from human discarded transplant kidneys using human pluripotent stem cell–derived endothelium
title_full Vascular bioengineering of scaffolds derived from human discarded transplant kidneys using human pluripotent stem cell–derived endothelium
title_fullStr Vascular bioengineering of scaffolds derived from human discarded transplant kidneys using human pluripotent stem cell–derived endothelium
title_full_unstemmed Vascular bioengineering of scaffolds derived from human discarded transplant kidneys using human pluripotent stem cell–derived endothelium
title_short Vascular bioengineering of scaffolds derived from human discarded transplant kidneys using human pluripotent stem cell–derived endothelium
title_sort vascular bioengineering of scaffolds derived from human discarded transplant kidneys using human pluripotent stem cell–derived endothelium
topic ORIGINAL ARTICLES
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6590331/
https://www.ncbi.nlm.nih.gov/pubmed/30506641
http://dx.doi.org/10.1111/ajt.15200
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