A versatile polypharmacology platform promotes cytoprotection and viability of human pluripotent and differentiated cells

Human pluripotent stem cells (hPSCs) are capable of extensive self-renewal yet remain highly sensitive to environmental perturbations in vitro, posing challenges to their therapeutic use. There is an urgent need to advance strategies that ensure safe and robust long-term growth and functional differ...

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Veröffentlicht in:Nature methods 2021-05, Vol.18 (5), p.528-541
Hauptverfasser: Chen, Yu, Tristan, Carlos A., Chen, Lu, Jovanovic, Vukasin M., Malley, Claire, Chu, Pei-Hsuan, Ryu, Seungmi, Deng, Tao, Ormanoglu, Pinar, Tao, Dingyin, Fang, Yuhong, Slamecka, Jaroslav, Hong, Hyenjong, LeClair, Christopher A., Michael, Sam, Austin, Christopher P., Simeonov, Anton, Singeç, Ilyas
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Sprache:eng
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Zusammenfassung:Human pluripotent stem cells (hPSCs) are capable of extensive self-renewal yet remain highly sensitive to environmental perturbations in vitro, posing challenges to their therapeutic use. There is an urgent need to advance strategies that ensure safe and robust long-term growth and functional differentiation of these cells. Here, we deployed high-throughput screening strategies to identify a small-molecule cocktail that improves viability of hPSCs and their differentiated progeny. The combination of chroman 1, emricasan, polyamines, and trans-ISRIB (CEPT) enhanced cell survival of genetically stable hPSCs by simultaneously blocking several stress mechanisms that otherwise compromise cell structure and function. CEPT provided strong improvements for several key applications in stem-cell research, including routine cell passaging, cryopreservation of pluripotent and differentiated cells, embryoid body (EB) and organoid formation, single-cell cloning, and genome editing. Thus, CEPT represents a unique poly-pharmacological strategy for comprehensive cytoprotection, providing a rationale for efficient and safe utilization of hPSCs. The CEPT cocktail comprising four small molecules enhances pluripotent stem cell survival, biobanking, organoid formation, and single-cell cloning efficiency by reducing cellular stress.
ISSN:1548-7091
1548-7105
DOI:10.1038/s41592-021-01126-2