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Targeted and Selective Treatment of Pluripotent Stem Cell-derived Teratomas Using External Beam Radiation in a Small-animal Model
Published on: February 17, 2019
Inhibition of pluripotent stem cell-derived teratoma formation by small molecules
Mi-Ok Lee1, Sung Hwan Moon, Ho-Chang Jeong
1Department of Life Sciences, College of Natural Sciences, Sogang University, Seoul 121-742, Korea.
Abstract:
The future of safe cell-based therapy rests on overcoming teratoma/tumor formation, in particular when using human pluripotent stem cells (hPSCs), such as human embryonic stem cells (hESCs) and human induced pluripotent stem cells (hiPSCs). Because the presence of a few remaining undifferentiated hPSCs can cause undesirable teratomas after transplantation, complete removal of these cells with no/minimal damage to differentiated cells is a prerequisite for clinical application of hPSC-based therapy. Having identified a unique hESC signature of pro- and antiapoptotic gene expression profile, we hypothesized that targeting hPSC-specific antiapoptotic factor(s) (i.e., survivin or Bcl10) represents an efficient strategy to selectively eliminate pluripotent cells with teratoma potential. Here we report the successful identification of small molecules that can effectively inhibit these antiapoptotic factors, leading to selective and efficient removal of pluripotent stem cells through apoptotic cell death. In particular, a single treatment of hESC-derived mixed population with chemical inhibitors of survivin (e.g., quercetin or YM155) induced selective and complete cell death of undifferentiated hPSCs. In contrast, differentiated cell types (e.g., dopamine neurons and smooth-muscle cells) derived from hPSCs survived well and maintained their functionality. We found that quercetin-induced selective cell death is caused by mitochondrial accumulation of p53 and is sufficient to prevent teratoma formation after transplantation of hESC- or hiPSC-derived cells. Taken together, these results provide the "proof of concept" that small-molecule targeting of hPSC-specific antiapoptotic pathway(s) is a viable strategy to prevent tumor formation by selectively eliminating remaining undifferentiated pluripotent cells for safe hPSC-based therapy.
Insights
Targeting specific antiapoptotic factors in human pluripotent stem cells (hPSCs) with small molecules selectively eliminates undifferentiated cells, preventing teratoma formation for safer cell-based therapies.
Area of Science:
- Stem Cell Biology
- Regenerative Medicine
- Cancer Biology
Background:
- Teratoma formation from residual undifferentiated human pluripotent stem cells (hPSCs) is a major safety concern for cell-based therapies.
- Complete elimination of undifferentiated hPSCs without damaging therapeutic differentiated cells is crucial for clinical translation.
Purpose of the Study:
- To identify and target hPSC-specific antiapoptotic factors to selectively eliminate pluripotent cells and prevent teratoma formation.
- To validate small molecules as a strategy for safe hPSC-based therapy.
Main Methods:
- Analysis of hESC gene expression profiles to identify pro- and antiapoptotic factors.
- Screening of small molecules to inhibit identified antiapoptotic factors (survivin, Bcl10).
- Assessment of selective cell death in hPSCs and survival of differentiated cells post-treatment.
- In vivo teratoma formation assays after transplantation of treated cells.
Main Results:
- Identification of survivin and Bcl10 as key antiapoptotic factors in hPSCs.
- Small molecules (quercetin, YM155) selectively induced apoptosis in undifferentiated hPSCs.
- Differentiated cells (dopamine neurons, smooth muscle cells) survived treatment and maintained function.
- Quercetin-induced apoptosis via p53 accumulation prevented teratoma formation in vivo.
Conclusions:
- Targeting hPSC-specific antiapoptotic pathways with small molecules is a viable strategy to eliminate pluripotent cells.
- This approach ensures the safety of hPSC-based therapies by preventing teratoma formation.
- Selective small-molecule inhibition offers a promising method for safe clinical application of stem cell therapies.
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