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Production of Human Neurogenin 2-Inducible Neurons in a Three-Dimensional Suspension Bioreactor.
Wihan, Jeanette; Karnatz, Isabell; Sébastien, Isabelle; Kettenhofen, Ralf; Schmid, Benjamin; Clausen, Christian; Fischer, Benjamin; Steeg, Rachel; Zimmermann, Heiko; Neubauer, Julia C.
Afiliação
  • Wihan J; Fraunhofer Project Center for Stem Cell Process Engineering, Fraunhofer Institute for Biomedical Engineering IBMT.
  • Karnatz I; Fraunhofer Project Center for Stem Cell Process Engineering, Fraunhofer Institute for Biomedical Engineering IBMT.
  • Sébastien I; Fraunhofer Project Center for Stem Cell Process Engineering, Fraunhofer Institute for Biomedical Engineering IBMT.
  • Kettenhofen R; Fraunhofer Project Center for Stem Cell Process Engineering, Fraunhofer Institute for Biomedical Engineering IBMT.
  • Schmid B; Bioneer A/S.
  • Clausen C; Bioneer A/S.
  • Fischer B; Fraunhofer Project Center for Stem Cell Process Engineering, Fraunhofer Institute for Biomedical Engineering IBMT.
  • Steeg R; Fraunhofer UK Research Ltd, Technology and Innovation Centre.
  • Zimmermann H; Fraunhofer Project Center for Stem Cell Process Engineering, Fraunhofer Institute for Biomedical Engineering IBMT; Fraunhofer Institute for Biomedical Engineering IBMT; Department of Molecular and Cellular Biotechnology, Saarland University; Facultad de Ciencias del Mar, Universidad Católica del Nor
  • Neubauer JC; Fraunhofer Project Center for Stem Cell Process Engineering, Fraunhofer Institute for Biomedical Engineering IBMT; Fraunhofer Institute for Biomedical Engineering IBMT; julia.neubauer@ibmt.fraunhofer.de.
J Vis Exp ; (193)2023 03 17.
Article em En | MEDLINE | ID: mdl-37010312
ABSTRACT
The derivation of neuronal lineage cells from human induced pluripotent stem cells (hiPSCs) marked a milestone in brain research. Since their first advent, protocols have been continuously optimized and are now widely used in research and drug development. However, the very long duration of these conventional differentiation and maturation protocols and the increasing demand for high-quality hiPSCs and their neural derivatives raise the need for the adoption, optimization, and standardization of these protocols to large-scale production. This work presents a fast and efficient protocol for the differentiation of genetically modified, doxycycline-inducible neurogenin 2 (iNGN2)-expressing hiPSCs into neurons using a benchtop three-dimensional (3D) suspension bioreactor. In brief, single-cell suspensions of iNGN2-hiPSCs were allowed to form aggregates within 24 h, and neuronal lineage commitment was induced by the addition of doxycycline. Aggregates were dissociated after 2 days of induction and cells were either cryopreserved or replated for terminal maturation. The generated iNGN2 neurons expressed classical neuronal markers early on and formed complex neuritic networks within 1 week after replating, indicating an increasing maturity of neuronal cultures. In summary, a detailed step-by-step protocol for the fast generation of hiPSC-derived neurons in a 3D environment is provided that holds great potential as a starting point for disease modeling, phenotypic high-throughput drug screenings, and large-scale toxicity testing.
Assuntos

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Células-Tronco Pluripotentes Induzidas Limite: Humans Idioma: En Revista: J Vis Exp Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Células-Tronco Pluripotentes Induzidas Limite: Humans Idioma: En Revista: J Vis Exp Ano de publicação: 2023 Tipo de documento: Article