Human Genomic Safe Harbors and the Suicide Gene-Based Safeguard System for iPSC-Based Cell Therapy
Yasuyoshi Kimura1,2,3, Tomoko Shofuda4, Yuichiro Higuchi5
1Department of Neurology, Graduate School of Medicine, Osaka University, Osaka, Japan.
Abstract:
The use of human induced pluripotent stem cells (hiPSCs) and recent advances in cell engineering have opened new prospects for cell-based therapy. However, there are concerns that must be addressed prior to their broad clinical applications and a major concern is tumorigenicity. Suicide gene approaches could eliminate wayward tumor-initiating cells even after cell transplantation, but their efficacy remains controversial. Another concern is the safety of genome editing. Our knowledge of human genomic safe harbors (GSHs) is still insufficient, making it difficult to predict the influence of gene integration on nearby genes. Here, we showed the topological architecture of human GSH candidates, AAVS1, CCR5, human ROSA26, and an extragenic GSH locus on chromosome 1 (Chr1-eGSH). Chr1-eGSH permitted robust transgene expression, but a 2 Mb-distant gene within the same topologically associated domain showed aberrant expression. Although knockin iPSCs carrying the suicide gene, herpes simplex virus thymidine kinase (HSV-TK), were sufficiently sensitive to ganciclovir in vitro, the resulting teratomas showed varying degrees of resistance to the drug in vivo. Our findings suggest that the Chr1-eGSH is not suitable for therapeutic gene integration and highlight that topological analysis could facilitate exploration of human GSHs for regenerative medicine applications. Our data indicate that the HSV-TK/ganciclovir suicide gene approach alone may be not an adequate safeguard against the risk of teratoma, and suggest that the combination of several distinct approaches could reduce the risks associated with cell therapy. Stem Cells Translational Medicine 2019;8:627&638.
Insights
Human induced pluripotent stem cells (hiPSCs) offer therapeutic promise but face safety concerns like tumorigenicity. Topological analysis of genomic safe harbors (GSHs) is crucial for safe gene integration in regenerative medicine.
Area of Science:
- Regenerative Medicine
- Stem Cell Biology
- Gene Therapy
Background:
- Human induced pluripotent stem cells (hiPSCs) are promising for cell-based therapies.
- Tumorigenicity and genome editing safety are major clinical application concerns.
- Human genomic safe harbors (GSHs) are critical for safe gene integration, but their characterization is incomplete.
Purpose of the Study:
- To investigate the topological architecture of human GSH candidates.
- To evaluate the suitability of Chr1-eGSH for therapeutic gene integration.
- To assess the efficacy of the herpes simplex virus thymidine kinase (HSV-TK)/ganciclovir suicide gene system in preventing teratomas.
Main Methods:
- Topological analysis of human GSH candidates (AAVS1, CCR5, ROSA26, Chr1-eGSH).
- Assessment of transgene expression and impact on nearby genes at Chr1-eGSH.
- In vitro and in vivo evaluation of HSV-TK/ganciclovir suicide gene efficacy in hiPSC-derived teratomas.
Main Results:
- Chr1-eGSH showed robust transgene expression but caused aberrant expression in a distant gene within the same topologically associated domain.
- HSV-TK/ganciclovir-treated hiPSC-derived teratomas exhibited variable resistance to ganciclovir in vivo.
- Topological analysis is a valuable tool for exploring human GSHs.
Conclusions:
- Chr1-eGSH is unsuitable for therapeutic gene integration due to potential off-target effects.
- The HSV-TK/ganciclovir suicide gene system alone is insufficient for complete teratoma risk mitigation.
- Combining multiple safety strategies is recommended to reduce risks in hiPSC-based therapies.
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