Derivation of Sendai-Virus-Reprogrammed Human iPSCs-Neuronal Precursors: In Vitro and In Vivo Post-grafting Safety Characterization

Author:

Shigyo Michiko1,Kobayashi Yoshiomi12,Platoshyn Oleksandr1,Marsala Silvia1,Kato Jr Tomohisa34,Takamura Naoki3,Yoshida Kenji3,Kishino Akiyoshi3,Bravo-Hernandez Mariana1,Juhas Stefan5,Juhasova Jana5,Studenovska Hana6,Proks Vladimir6,Ciacci Joseph D.7,Marsala Martin1ORCID

Affiliation:

1. Department of Anesthesiology, School of Medicine, University of California, San Diego, La Jolla, CA, USA

2. Murayama Medical Center, Department of Orthopaedic Surgery, Tokyo, Japan

3. Regenerative & Cellular Medicine Kobe Center, Sumitomo Dainippon Pharma Co., Ltd., Kobe, Japan

4. Division of Stem Cell Medicine, Department of Advanced Medicine, Medical Research Institute, Kanazawa Medical University, Uchinada, Japan

5. Institute of Animal Physiology and Genetics AS CR, v.v.i., Liběchov, Czech Republic

6. Department of Biomaterials and Bioanalogous System, Institute of Macromolecular Chemistry, Czech Academy of Sciences, Prague, Czech Republic

7. Department of Neurosurgery, School of Medicine, University of California, San Diego, La Jolla, CA, USA

Abstract

The critical requirements in developing clinical-grade human-induced pluripotent stem cells–derived neural precursors (hiPSCs-NPCs) are defined by expandability, genetic stability, predictable in vivo post-grafting differentiation, and acceptable safety profile. Here, we report on the use of manual-selection protocol for generating expandable and stable human NPCs from induced pluripotent stem cells. The hiPSCs were generated by the reprogramming of peripheral blood mononuclear cells with Sendai-virus (SeV) vector encoding Yamanaka factors. After induction of neural rosettes, morphologically defined NPC colonies were manually harvested, re-plated, and expanded for up to 20 passages. Established NPCs showed normal karyotype, expression of typical NPCs markers at the proliferative stage, and ability to generate functional, calcium oscillating GABAergic or glutamatergic neurons after in vitro differentiation. Grafted NPCs into the striatum or spinal cord of immunodeficient rats showed progressive maturation and expression of early and late human-specific neuronal and glial markers at 2 or 6 months post-grafting. No tumor formation was seen in NPCs-grafted brain or spinal cord samples. These data demonstrate the effective use of in vitro manual-selection protocol to generate safe and expandable NPCs from hiPSCs cells. This protocol has the potential to be used to generate GMP (Good Manufacturing Practice)-grade NPCs from hiPSCs for future clinical use.

Funder

The Czech Science Foundation

Czech Ministry of Education, Youth and Sports

Sanford Stem Cell Clinical Center, San Diego

Publisher

SAGE Publications

Subject

Transplantation,Cell Biology,Biomedical Engineering

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