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Targeted Integration of Inducible Caspase-9 in Human iPSCs Allows Efficient in vitro Clearance of iPSCs and iPSC-Macrophages

Induced pluripotent stem cells (iPSCs) offer great promise for the field of regenerative medicine, and iPSC-derived cells have already been applied in clinical practice. However, potential contamination of effector cells with residual pluripotent cells (e.g., teratoma-initiating cells) or effector c...

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Autores principales: Lipus, Alexandra, Janosz, Ewa, Ackermann, Mania, Hetzel, Miriam, Dahlke, Julia, Buchegger, Theresa, Wunderlich, Stephanie, Martin, Ulrich, Cathomen, Toni, Schambach, Axel, Moritz, Thomas, Lachmann, Nico
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7177583/
https://www.ncbi.nlm.nih.gov/pubmed/32260086
http://dx.doi.org/10.3390/ijms21072481
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author Lipus, Alexandra
Janosz, Ewa
Ackermann, Mania
Hetzel, Miriam
Dahlke, Julia
Buchegger, Theresa
Wunderlich, Stephanie
Martin, Ulrich
Cathomen, Toni
Schambach, Axel
Moritz, Thomas
Lachmann, Nico
author_facet Lipus, Alexandra
Janosz, Ewa
Ackermann, Mania
Hetzel, Miriam
Dahlke, Julia
Buchegger, Theresa
Wunderlich, Stephanie
Martin, Ulrich
Cathomen, Toni
Schambach, Axel
Moritz, Thomas
Lachmann, Nico
author_sort Lipus, Alexandra
collection PubMed
description Induced pluripotent stem cells (iPSCs) offer great promise for the field of regenerative medicine, and iPSC-derived cells have already been applied in clinical practice. However, potential contamination of effector cells with residual pluripotent cells (e.g., teratoma-initiating cells) or effector cell-associated side effects may limit this approach. This also holds true for iPSC-derived hematopoietic cells. Given the therapeutic benefit of macrophages in different disease entities and the feasibility to derive macrophages from human iPSCs, we established human iPSCs harboring the inducible Caspase-9 (iCasp9) suicide safety switch utilizing transcription activator-like effector nuclease (TALEN)-based designer nuclease technology. Mono- or bi-allelic integration of the iCasp9 gene cassette into the AAVS1 locus showed no effect on the pluripotency of human iPSCs and did not interfere with their differentiation towards macrophages. In both, iCasp9-mono and iCasp9-bi-allelic clones, concentrations of 0.1 nM AP20187 were sufficient to induce apoptosis in more than 98% of iPSCs and their progeny—macrophages. Thus, here we provide evidence that the introduction of the iCasp9 suicide gene into the AAVS1 locus enables the effective clearance of human iPSCs and thereof derived macrophages.
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spelling pubmed-71775832020-04-28 Targeted Integration of Inducible Caspase-9 in Human iPSCs Allows Efficient in vitro Clearance of iPSCs and iPSC-Macrophages Lipus, Alexandra Janosz, Ewa Ackermann, Mania Hetzel, Miriam Dahlke, Julia Buchegger, Theresa Wunderlich, Stephanie Martin, Ulrich Cathomen, Toni Schambach, Axel Moritz, Thomas Lachmann, Nico Int J Mol Sci Article Induced pluripotent stem cells (iPSCs) offer great promise for the field of regenerative medicine, and iPSC-derived cells have already been applied in clinical practice. However, potential contamination of effector cells with residual pluripotent cells (e.g., teratoma-initiating cells) or effector cell-associated side effects may limit this approach. This also holds true for iPSC-derived hematopoietic cells. Given the therapeutic benefit of macrophages in different disease entities and the feasibility to derive macrophages from human iPSCs, we established human iPSCs harboring the inducible Caspase-9 (iCasp9) suicide safety switch utilizing transcription activator-like effector nuclease (TALEN)-based designer nuclease technology. Mono- or bi-allelic integration of the iCasp9 gene cassette into the AAVS1 locus showed no effect on the pluripotency of human iPSCs and did not interfere with their differentiation towards macrophages. In both, iCasp9-mono and iCasp9-bi-allelic clones, concentrations of 0.1 nM AP20187 were sufficient to induce apoptosis in more than 98% of iPSCs and their progeny—macrophages. Thus, here we provide evidence that the introduction of the iCasp9 suicide gene into the AAVS1 locus enables the effective clearance of human iPSCs and thereof derived macrophages. MDPI 2020-04-03 /pmc/articles/PMC7177583/ /pubmed/32260086 http://dx.doi.org/10.3390/ijms21072481 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lipus, Alexandra
Janosz, Ewa
Ackermann, Mania
Hetzel, Miriam
Dahlke, Julia
Buchegger, Theresa
Wunderlich, Stephanie
Martin, Ulrich
Cathomen, Toni
Schambach, Axel
Moritz, Thomas
Lachmann, Nico
Targeted Integration of Inducible Caspase-9 in Human iPSCs Allows Efficient in vitro Clearance of iPSCs and iPSC-Macrophages
title Targeted Integration of Inducible Caspase-9 in Human iPSCs Allows Efficient in vitro Clearance of iPSCs and iPSC-Macrophages
title_full Targeted Integration of Inducible Caspase-9 in Human iPSCs Allows Efficient in vitro Clearance of iPSCs and iPSC-Macrophages
title_fullStr Targeted Integration of Inducible Caspase-9 in Human iPSCs Allows Efficient in vitro Clearance of iPSCs and iPSC-Macrophages
title_full_unstemmed Targeted Integration of Inducible Caspase-9 in Human iPSCs Allows Efficient in vitro Clearance of iPSCs and iPSC-Macrophages
title_short Targeted Integration of Inducible Caspase-9 in Human iPSCs Allows Efficient in vitro Clearance of iPSCs and iPSC-Macrophages
title_sort targeted integration of inducible caspase-9 in human ipscs allows efficient in vitro clearance of ipscs and ipsc-macrophages
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7177583/
https://www.ncbi.nlm.nih.gov/pubmed/32260086
http://dx.doi.org/10.3390/ijms21072481
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