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Delivery of Human Adipose Stem Cells Spheroids into Lockyballs

Adipose stem cells (ASCs) spheroids show enhanced regenerative effects compared to single cells. Also, spheroids have been recently introduced as building blocks in directed self-assembly strategy. Recent efforts aim to improve long-term cell retention and integration by the use of microencapsulatio...

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Autores principales: Silva, Karina R., Rezende, Rodrigo A., Pereira, Frederico D. A. S., Gruber, Peter, Stuart, Mellannie P., Ovsianikov, Aleksandr, Brakke, Ken, Kasyanov, Vladimir, da Silva, Jorge V. L., Granjeiro, José M., Baptista, Leandra S., Mironov, Vladimir
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5102388/
https://www.ncbi.nlm.nih.gov/pubmed/27829016
http://dx.doi.org/10.1371/journal.pone.0166073
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author Silva, Karina R.
Rezende, Rodrigo A.
Pereira, Frederico D. A. S.
Gruber, Peter
Stuart, Mellannie P.
Ovsianikov, Aleksandr
Brakke, Ken
Kasyanov, Vladimir
da Silva, Jorge V. L.
Granjeiro, José M.
Baptista, Leandra S.
Mironov, Vladimir
author_facet Silva, Karina R.
Rezende, Rodrigo A.
Pereira, Frederico D. A. S.
Gruber, Peter
Stuart, Mellannie P.
Ovsianikov, Aleksandr
Brakke, Ken
Kasyanov, Vladimir
da Silva, Jorge V. L.
Granjeiro, José M.
Baptista, Leandra S.
Mironov, Vladimir
author_sort Silva, Karina R.
collection PubMed
description Adipose stem cells (ASCs) spheroids show enhanced regenerative effects compared to single cells. Also, spheroids have been recently introduced as building blocks in directed self-assembly strategy. Recent efforts aim to improve long-term cell retention and integration by the use of microencapsulation delivery systems that can rapidly integrate in the implantation site. Interlockable solid synthetic microscaffolds, so called lockyballs, were recently designed with hooks and loops to enhance cell retention and integration at the implantation site as well as to support spheroids aggregation after transplantation. Here we present an efficient methodology for human ASCs spheroids biofabrication and lockyballs cellularization using micro-molded non-adhesive agarose hydrogel. Lockyballs were produced using two-photon polymerization with an estimated mechanical strength. The Young’s modulus was calculated at level 0.1362 +/-0.009 MPa. Interlocking in vitro test demonstrates high level of loading induced interlockability of fabricated lockyballs. Diameter measurements and elongation coefficient calculation revealed that human ASCs spheroids biofabricated in resections of micro-molded non-adhesive hydrogel had a more regular size distribution and shape than spheroids biofabricated in hanging drops. Cellularization of lockyballs using human ASCs spheroids did not alter the level of cells viability (p › 0,999) and gene fold expression for SOX-9 and RUNX2 (p › 0,195). The biofabrication of ASCs spheroids into lockyballs represents an innovative strategy in regenerative medicine, which combines solid scaffold-based and directed self-assembly approaches, fostering opportunities for rapid in situ biofabrication of 3D building-blocks.
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spelling pubmed-51023882016-11-18 Delivery of Human Adipose Stem Cells Spheroids into Lockyballs Silva, Karina R. Rezende, Rodrigo A. Pereira, Frederico D. A. S. Gruber, Peter Stuart, Mellannie P. Ovsianikov, Aleksandr Brakke, Ken Kasyanov, Vladimir da Silva, Jorge V. L. Granjeiro, José M. Baptista, Leandra S. Mironov, Vladimir PLoS One Research Article Adipose stem cells (ASCs) spheroids show enhanced regenerative effects compared to single cells. Also, spheroids have been recently introduced as building blocks in directed self-assembly strategy. Recent efforts aim to improve long-term cell retention and integration by the use of microencapsulation delivery systems that can rapidly integrate in the implantation site. Interlockable solid synthetic microscaffolds, so called lockyballs, were recently designed with hooks and loops to enhance cell retention and integration at the implantation site as well as to support spheroids aggregation after transplantation. Here we present an efficient methodology for human ASCs spheroids biofabrication and lockyballs cellularization using micro-molded non-adhesive agarose hydrogel. Lockyballs were produced using two-photon polymerization with an estimated mechanical strength. The Young’s modulus was calculated at level 0.1362 +/-0.009 MPa. Interlocking in vitro test demonstrates high level of loading induced interlockability of fabricated lockyballs. Diameter measurements and elongation coefficient calculation revealed that human ASCs spheroids biofabricated in resections of micro-molded non-adhesive hydrogel had a more regular size distribution and shape than spheroids biofabricated in hanging drops. Cellularization of lockyballs using human ASCs spheroids did not alter the level of cells viability (p › 0,999) and gene fold expression for SOX-9 and RUNX2 (p › 0,195). The biofabrication of ASCs spheroids into lockyballs represents an innovative strategy in regenerative medicine, which combines solid scaffold-based and directed self-assembly approaches, fostering opportunities for rapid in situ biofabrication of 3D building-blocks. Public Library of Science 2016-11-09 /pmc/articles/PMC5102388/ /pubmed/27829016 http://dx.doi.org/10.1371/journal.pone.0166073 Text en © 2016 Silva 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Silva, Karina R.
Rezende, Rodrigo A.
Pereira, Frederico D. A. S.
Gruber, Peter
Stuart, Mellannie P.
Ovsianikov, Aleksandr
Brakke, Ken
Kasyanov, Vladimir
da Silva, Jorge V. L.
Granjeiro, José M.
Baptista, Leandra S.
Mironov, Vladimir
Delivery of Human Adipose Stem Cells Spheroids into Lockyballs
title Delivery of Human Adipose Stem Cells Spheroids into Lockyballs
title_full Delivery of Human Adipose Stem Cells Spheroids into Lockyballs
title_fullStr Delivery of Human Adipose Stem Cells Spheroids into Lockyballs
title_full_unstemmed Delivery of Human Adipose Stem Cells Spheroids into Lockyballs
title_short Delivery of Human Adipose Stem Cells Spheroids into Lockyballs
title_sort delivery of human adipose stem cells spheroids into lockyballs
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5102388/
https://www.ncbi.nlm.nih.gov/pubmed/27829016
http://dx.doi.org/10.1371/journal.pone.0166073
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