Neural stem cells (NSCs) differentiate into both neurons and glia, and strategies using human NSCs have the potential to restore function following spinal cord injury (SCI). However, the time period of maturation for human NSCs in adult injured CNS is not well defined, posing fundamental questions about the design and implementation of NSC-based therapies. This work assessed human H9 NSCs that were implanted into sites of SCI in immunodeficient rats over a period of 1.5 years. Notably, grafts showed evidence of continued maturation over the entire assessment period. Markers of neuronal maturity were first expressed 3 months after grafting. However, neurogenesis, neuronal pruning, and neuronal enlargement continued over the next year, while total graft size remained stable over time. Axons emerged early from grafts in very high numbers, and half of these projections persisted by 1.5 years. Mature astrocyte markers first appeared after 6 months, while more mature oligodendrocyte markers were not present until 1 year after grafting. Astrocytes slowly migrated from grafts. Notably, functional recovery began more than 1 year after grafting. Thus, human NSCs retain an intrinsic human rate of maturation, despite implantation into the injured rodent spinal cord, yet they support delayed functional recovery, a finding of great importance in planning human clinical trials.
Paul Lu, Steven Ceto, Yaozhi Wang, Lori Graham, Di Wu, Hiromi Kumamaru, Eileen Staufenberg, Mark H. Tuszynski
Title and authors | Publication | Year |
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Neural Stem Cell Grafts Form Extensive Synaptic Networks that Integrate with Host Circuits after Spinal Cord Injury
S Ceto, KJ Sekiguchi, Y Takashima, A Nimmerjahn, MH Tuszynski |
Cell Stem Cell | 2020 |
Acute Implantation of Aligned Hydrogel Tubes Supports Delayed Spinal Progenitor Implantation
AJ Ciciriello, DR Smith, MK Munsell, SJ Boyd, LD Shea, CM Dumont |
ACS Biomaterials Science & Engineering | 2020 |
Subcutaneous priming of protein-functionalized chitosan scaffolds improves function following spinal cord injury
TR Ham, DD Pukale, M Hamrangsekachaee, ND Leipzig |
Materials science & engineering. C, Materials for biological applications | 2020 |
Intracerebroventricular Administration of hNSCs Improves Neurological Recovery after Cardiac Arrest in Rats
Z Wang, J Du, BB Lachance, C Mascarenhas, J He, X Jia |
Stem Cell Reviews and Reports | 2020 |
Regeneration of Functional Neurons After Spinal Cord Injury via in situ NeuroD1-Mediated Astrocyte-to-Neuron Conversion
B Puls, Y Ding, F Zhang, M Pan, Z Lei, Z Pei, M Jiang, Y Bai, C Forsyth, M Metzger, T Rana, L Zhang, X Ding, M Keefe, A Cai, A Redilla, M Lai, K He, H Li, G Chen |
Frontiers in Cell and Developmental Biology | 2020 |