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Genetic modification increases the survival and the neuroregenerative properties of transplanted neural stem cells
Irina Korshunova, Sina Rhein, Diego García-González, Ines Stölting, Ulrich Pfisterer, Anna Barta, Oksana Dmytriyeva, Agnete Kirkeby, Markus Schwaninger, Konstantin Khodosevich
Irina Korshunova, Sina Rhein, Diego García-González, Ines Stölting, Ulrich Pfisterer, Anna Barta, Oksana Dmytriyeva, Agnete Kirkeby, Markus Schwaninger, Konstantin Khodosevich
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Resource and Technical Advance Neuroscience

Genetic modification increases the survival and the neuroregenerative properties of transplanted neural stem cells

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Abstract

Cell therapy raises hopes high for better treatment of brain disorders. However, the majority of transplanted cells often die soon after transplantation, and those that survive initially continue to die in the subacute phase, diminishing the impact of transplantations. In this study, we genetically modified transplanted human neural stem cells (hNSCs), from 2 distant embryonic stem cell lines (H9 and RC17), to express 1 of 4 prosurvival factors — Hif1a, Akt1, Bcl-2, or Bcl-xl — and studied how these modifications improve short- and long-term survival of transplanted hNSCs. All genetic modifications dramatically increased survival of the transplanted hNSCs. Importantly, 3 out of 4 modifications also enhanced the exit of hNSCs from the cell cycle, thus avoiding aberrant growth of the transplants. Bcl-xl expression provided the strongest protection of transplanted cells, reducing both immediate and delayed cell death, and stimulated hNSC differentiation toward neuronal and oligodendroglial lineages. By designing hNSCs with drug-controlled expression of Bcl-xl, we demonstrated that short-term expression of a prosurvival factor can ensure the long-term survival of transplanted cells. Importantly, transplantation of Bcl-xl–expressing hNSCs into mice suffering from stroke improved behavioral outcome and recovery of motor activity in mice.

Authors

Irina Korshunova, Sina Rhein, Diego García-González, Ines Stölting, Ulrich Pfisterer, Anna Barta, Oksana Dmytriyeva, Agnete Kirkeby, Markus Schwaninger, Konstantin Khodosevich

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Figure 3

Genetically modified H9 hNSCs exit the cell cycle soon after transplantation.

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Genetically modified H9 hNSCs exit the cell cycle soon after transplanta...
(A–C) Transplanted Bcl2l1-expressing H9 hNSCs 1 month posttransplantation stained with cell cycle marker Ki-67. Note that while Ki-67 robustly labels postnatal neurogenesis in the SVZ (B), very few cells in the transplant are labeled by Ki-67, and those are often not EGFP+, thus representing endogenous glial cells rather than transplanted cells. (D) Transplanted Bcl2l1-expressing cells 3 months posttransplantation. (E) Percentage of Ki-67+ cells in transplanted cells across different conditions 1 week and 1, 2, and 3 months after transplantation (n = 14–16 controls; n = 5–10 genetically modified for each time point). Mean ± SD, Kruskal-Wallis with Dunn’s post hoc tests, only significant values are shown: *P < 0.05; **P < 0.01. Scale bars: 100 μm (A), 20 μm (B and D).

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