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Temporal changes guided by mesenchymal stem cells on a 3D microgel platform enhance angiogenesis in vivo at a low-cell dose

Therapeutic factors secreted by mesenchymal stem cells (MSCs) promote angiogenesis in vivo. However, delivery of MSCs in the absence of a cytoprotective environment offers limited efficacy due to low cell retention, poor graft survival, and the nonmaintenance of a physiologically relevant dose of gr...

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Autores principales: Thomas, Dilip, Marsico, Grazia, Mohd Isa, Isma Liza, Thirumaran, Arun, Chen, Xizhe, Lukasz, Bartlomiej, Fontana, Gianluca, Rodriguez, Brian, Marchetti-Deschmann, Martina, O’Brien, Timothy, Pandit, Abhay
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7430977/
https://www.ncbi.nlm.nih.gov/pubmed/32709748
http://dx.doi.org/10.1073/pnas.2008245117
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author Thomas, Dilip
Marsico, Grazia
Mohd Isa, Isma Liza
Thirumaran, Arun
Chen, Xizhe
Lukasz, Bartlomiej
Fontana, Gianluca
Rodriguez, Brian
Marchetti-Deschmann, Martina
O’Brien, Timothy
Pandit, Abhay
author_facet Thomas, Dilip
Marsico, Grazia
Mohd Isa, Isma Liza
Thirumaran, Arun
Chen, Xizhe
Lukasz, Bartlomiej
Fontana, Gianluca
Rodriguez, Brian
Marchetti-Deschmann, Martina
O’Brien, Timothy
Pandit, Abhay
author_sort Thomas, Dilip
collection PubMed
description Therapeutic factors secreted by mesenchymal stem cells (MSCs) promote angiogenesis in vivo. However, delivery of MSCs in the absence of a cytoprotective environment offers limited efficacy due to low cell retention, poor graft survival, and the nonmaintenance of a physiologically relevant dose of growth factors at the injury site. The delivery of stem cells on an extracellular matrix (ECM)-based platform alters cell behavior, including migration, proliferation, and paracrine activity, which are essential for angiogenesis. We demonstrate the biophysical and biochemical effects of preconditioning human MSCs (hMSCs) for 96 h on a three-dimensional (3D) ECM-based microgel platform. By altering the macromolecular concentration surrounding cells in the microgels, the proangiogenic phenotype of hMSCs can be tuned in a controlled manner through cell-driven changes in extracellular stiffness and “outside-in” integrin signaling. The softest microgels were tested at a low cell dose (5 × 10(4) cells) in a preclinical hindlimb ischemia model showing accelerated formation of new blood vessels with a reduced inflammatory response impeding progression of tissue damage. Molecular analysis revealed that several key mediators of angiogenesis were up-regulated in the low-cell-dose microgel group, providing a mechanistic insight of pathways modulated in vivo. Our research adds to current knowledge in cell-encapsulation strategies by highlighting the importance of preconditioning or priming the capacity of biomaterials through cell–material interactions. Obtaining therapeutic efficacy at a low cell dose in the microgel platform is a promising clinical route that would aid faster tissue repair and reperfusion in “no-option” patients suffering from peripheral arterial diseases, such as critical limb ischemia (CLI).
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spelling pubmed-74309772020-08-27 Temporal changes guided by mesenchymal stem cells on a 3D microgel platform enhance angiogenesis in vivo at a low-cell dose Thomas, Dilip Marsico, Grazia Mohd Isa, Isma Liza Thirumaran, Arun Chen, Xizhe Lukasz, Bartlomiej Fontana, Gianluca Rodriguez, Brian Marchetti-Deschmann, Martina O’Brien, Timothy Pandit, Abhay Proc Natl Acad Sci U S A Physical Sciences Therapeutic factors secreted by mesenchymal stem cells (MSCs) promote angiogenesis in vivo. However, delivery of MSCs in the absence of a cytoprotective environment offers limited efficacy due to low cell retention, poor graft survival, and the nonmaintenance of a physiologically relevant dose of growth factors at the injury site. The delivery of stem cells on an extracellular matrix (ECM)-based platform alters cell behavior, including migration, proliferation, and paracrine activity, which are essential for angiogenesis. We demonstrate the biophysical and biochemical effects of preconditioning human MSCs (hMSCs) for 96 h on a three-dimensional (3D) ECM-based microgel platform. By altering the macromolecular concentration surrounding cells in the microgels, the proangiogenic phenotype of hMSCs can be tuned in a controlled manner through cell-driven changes in extracellular stiffness and “outside-in” integrin signaling. The softest microgels were tested at a low cell dose (5 × 10(4) cells) in a preclinical hindlimb ischemia model showing accelerated formation of new blood vessels with a reduced inflammatory response impeding progression of tissue damage. Molecular analysis revealed that several key mediators of angiogenesis were up-regulated in the low-cell-dose microgel group, providing a mechanistic insight of pathways modulated in vivo. Our research adds to current knowledge in cell-encapsulation strategies by highlighting the importance of preconditioning or priming the capacity of biomaterials through cell–material interactions. Obtaining therapeutic efficacy at a low cell dose in the microgel platform is a promising clinical route that would aid faster tissue repair and reperfusion in “no-option” patients suffering from peripheral arterial diseases, such as critical limb ischemia (CLI). National Academy of Sciences 2020-08-11 2020-07-24 /pmc/articles/PMC7430977/ /pubmed/32709748 http://dx.doi.org/10.1073/pnas.2008245117 Text en Copyright © 2020 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Physical Sciences
Thomas, Dilip
Marsico, Grazia
Mohd Isa, Isma Liza
Thirumaran, Arun
Chen, Xizhe
Lukasz, Bartlomiej
Fontana, Gianluca
Rodriguez, Brian
Marchetti-Deschmann, Martina
O’Brien, Timothy
Pandit, Abhay
Temporal changes guided by mesenchymal stem cells on a 3D microgel platform enhance angiogenesis in vivo at a low-cell dose
title Temporal changes guided by mesenchymal stem cells on a 3D microgel platform enhance angiogenesis in vivo at a low-cell dose
title_full Temporal changes guided by mesenchymal stem cells on a 3D microgel platform enhance angiogenesis in vivo at a low-cell dose
title_fullStr Temporal changes guided by mesenchymal stem cells on a 3D microgel platform enhance angiogenesis in vivo at a low-cell dose
title_full_unstemmed Temporal changes guided by mesenchymal stem cells on a 3D microgel platform enhance angiogenesis in vivo at a low-cell dose
title_short Temporal changes guided by mesenchymal stem cells on a 3D microgel platform enhance angiogenesis in vivo at a low-cell dose
title_sort temporal changes guided by mesenchymal stem cells on a 3d microgel platform enhance angiogenesis in vivo at a low-cell dose
topic Physical Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7430977/
https://www.ncbi.nlm.nih.gov/pubmed/32709748
http://dx.doi.org/10.1073/pnas.2008245117
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