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Acquisition of chromosome 1q duplication in parental and genome‐edited human‐induced pluripotent stem cell‐derived neural stem cells results in their higher proliferation rate in vitro and in vivo

OBJECTIVES: Genetic engineering of human‐induced pluripotent stem cell‐derived neural stem cells (hiPSC‐NSC) may increase the risk of genomic aberrations. Therefore, we asked whether genetic modification of hiPSC‐NSCs exacerbates chromosomal abnormalities that may occur during passaging and whether...

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Autores principales: Mehrjardi, Narges Zare, Molcanyi, Marek, Hatay, Firuze Fulya, Timmer, Marco, Shahbazi, Ebrahim, Ackermann, Justus P., Herms, Stefan, Heilmann‐Heimbach, Stefanie, Wunderlich, Thomas F., Prochnow, Nora, Haghikia, Aiden, Lampert, Angelika, Hescheler, Jürgen, Neugebauer, Edmund A. M., Baharvand, Hossein, Šarić, Tomo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7574866/
https://www.ncbi.nlm.nih.gov/pubmed/32918782
http://dx.doi.org/10.1111/cpr.12892
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author Mehrjardi, Narges Zare
Molcanyi, Marek
Hatay, Firuze Fulya
Timmer, Marco
Shahbazi, Ebrahim
Ackermann, Justus P.
Herms, Stefan
Heilmann‐Heimbach, Stefanie
Wunderlich, Thomas F.
Prochnow, Nora
Haghikia, Aiden
Lampert, Angelika
Hescheler, Jürgen
Neugebauer, Edmund A. M.
Baharvand, Hossein
Šarić, Tomo
author_facet Mehrjardi, Narges Zare
Molcanyi, Marek
Hatay, Firuze Fulya
Timmer, Marco
Shahbazi, Ebrahim
Ackermann, Justus P.
Herms, Stefan
Heilmann‐Heimbach, Stefanie
Wunderlich, Thomas F.
Prochnow, Nora
Haghikia, Aiden
Lampert, Angelika
Hescheler, Jürgen
Neugebauer, Edmund A. M.
Baharvand, Hossein
Šarić, Tomo
author_sort Mehrjardi, Narges Zare
collection PubMed
description OBJECTIVES: Genetic engineering of human‐induced pluripotent stem cell‐derived neural stem cells (hiPSC‐NSC) may increase the risk of genomic aberrations. Therefore, we asked whether genetic modification of hiPSC‐NSCs exacerbates chromosomal abnormalities that may occur during passaging and whether they may cause any functional perturbations in NSCs in vitro and in vivo. MATERIALS AND METHODS: The transgenic cassette was inserted into the AAVS1 locus, and the genetic integrity of zinc‐finger nuclease (ZFN)‐modified hiPSC‐NSCs was assessed by the SNP‐based karyotyping. The hiPSC‐NSC proliferation was assessed in vitro by the EdU incorporation assay and in vivo by staining of brain slices with Ki‐67 antibody at 2 and 8 weeks after transplantation of ZFN‐NSCs with and without chromosomal aberration into the striatum of immunodeficient rats. RESULTS: During early passages, no chromosomal abnormalities were detected in unmodified or ZFN‐modified hiPSC‐NSCs. However, at higher passages both cell populations acquired duplication of the entire long arm of chromosome 1, dup(1)q. ZNF‐NSCs carrying dup(1)q exhibited higher proliferation rate than karyotypically intact cells, which was partly mediated by increased expression of AKT3 located on Chr1q. Compared to karyotypically normal ZNF‐NSCs, cells with dup(1)q also exhibited increased proliferation in vivo 2 weeks, but not 2 months, after transplantation. CONCLUSIONS: These results demonstrate that, independently of ZFN‐editing, hiPSC‐NSCs have a propensity for acquiring dup(1)q and this aberration results in increased proliferation which might compromise downstream hiPSC‐NSC applications.
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spelling pubmed-75748662020-10-23 Acquisition of chromosome 1q duplication in parental and genome‐edited human‐induced pluripotent stem cell‐derived neural stem cells results in their higher proliferation rate in vitro and in vivo Mehrjardi, Narges Zare Molcanyi, Marek Hatay, Firuze Fulya Timmer, Marco Shahbazi, Ebrahim Ackermann, Justus P. Herms, Stefan Heilmann‐Heimbach, Stefanie Wunderlich, Thomas F. Prochnow, Nora Haghikia, Aiden Lampert, Angelika Hescheler, Jürgen Neugebauer, Edmund A. M. Baharvand, Hossein Šarić, Tomo Cell Prolif Original Articles OBJECTIVES: Genetic engineering of human‐induced pluripotent stem cell‐derived neural stem cells (hiPSC‐NSC) may increase the risk of genomic aberrations. Therefore, we asked whether genetic modification of hiPSC‐NSCs exacerbates chromosomal abnormalities that may occur during passaging and whether they may cause any functional perturbations in NSCs in vitro and in vivo. MATERIALS AND METHODS: The transgenic cassette was inserted into the AAVS1 locus, and the genetic integrity of zinc‐finger nuclease (ZFN)‐modified hiPSC‐NSCs was assessed by the SNP‐based karyotyping. The hiPSC‐NSC proliferation was assessed in vitro by the EdU incorporation assay and in vivo by staining of brain slices with Ki‐67 antibody at 2 and 8 weeks after transplantation of ZFN‐NSCs with and without chromosomal aberration into the striatum of immunodeficient rats. RESULTS: During early passages, no chromosomal abnormalities were detected in unmodified or ZFN‐modified hiPSC‐NSCs. However, at higher passages both cell populations acquired duplication of the entire long arm of chromosome 1, dup(1)q. ZNF‐NSCs carrying dup(1)q exhibited higher proliferation rate than karyotypically intact cells, which was partly mediated by increased expression of AKT3 located on Chr1q. Compared to karyotypically normal ZNF‐NSCs, cells with dup(1)q also exhibited increased proliferation in vivo 2 weeks, but not 2 months, after transplantation. CONCLUSIONS: These results demonstrate that, independently of ZFN‐editing, hiPSC‐NSCs have a propensity for acquiring dup(1)q and this aberration results in increased proliferation which might compromise downstream hiPSC‐NSC applications. John Wiley and Sons Inc. 2020-09-12 /pmc/articles/PMC7574866/ /pubmed/32918782 http://dx.doi.org/10.1111/cpr.12892 Text en © 2020 The Authors. Cell Proliferation Published by John Wiley & Sons Ltd. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Mehrjardi, Narges Zare
Molcanyi, Marek
Hatay, Firuze Fulya
Timmer, Marco
Shahbazi, Ebrahim
Ackermann, Justus P.
Herms, Stefan
Heilmann‐Heimbach, Stefanie
Wunderlich, Thomas F.
Prochnow, Nora
Haghikia, Aiden
Lampert, Angelika
Hescheler, Jürgen
Neugebauer, Edmund A. M.
Baharvand, Hossein
Šarić, Tomo
Acquisition of chromosome 1q duplication in parental and genome‐edited human‐induced pluripotent stem cell‐derived neural stem cells results in their higher proliferation rate in vitro and in vivo
title Acquisition of chromosome 1q duplication in parental and genome‐edited human‐induced pluripotent stem cell‐derived neural stem cells results in their higher proliferation rate in vitro and in vivo
title_full Acquisition of chromosome 1q duplication in parental and genome‐edited human‐induced pluripotent stem cell‐derived neural stem cells results in their higher proliferation rate in vitro and in vivo
title_fullStr Acquisition of chromosome 1q duplication in parental and genome‐edited human‐induced pluripotent stem cell‐derived neural stem cells results in their higher proliferation rate in vitro and in vivo
title_full_unstemmed Acquisition of chromosome 1q duplication in parental and genome‐edited human‐induced pluripotent stem cell‐derived neural stem cells results in their higher proliferation rate in vitro and in vivo
title_short Acquisition of chromosome 1q duplication in parental and genome‐edited human‐induced pluripotent stem cell‐derived neural stem cells results in their higher proliferation rate in vitro and in vivo
title_sort acquisition of chromosome 1q duplication in parental and genome‐edited human‐induced pluripotent stem cell‐derived neural stem cells results in their higher proliferation rate in vitro and in vivo
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7574866/
https://www.ncbi.nlm.nih.gov/pubmed/32918782
http://dx.doi.org/10.1111/cpr.12892
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