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  • Chemical hypoxia induces apoptosis of human pluripotent stem cells by a NOXA-mediated HIF-1α and HIF-2α independent mechanism.

Chemical hypoxia induces apoptosis of human pluripotent stem cells by a NOXA-mediated HIF-1α and HIF-2α independent mechanism.

Scientific reports (2020-11-28)
Luciana Isaja, Sofía Mucci, Jonathan Vera, María Soledad Rodríguez-Varela, Mariela Marazita, Olivia Morris-Hanon, Guillermo Agustín Videla-Richardson, Gustavo Emilio Sevlever, María Elida Scassa, Leonardo Romorini
ABSTRACT

Human embryonic and induced pluripotent stem cells (hESCs and hiPSCs) are self-renewing human pluripotent stem cells (hPSCs) that can differentiate to a wide range of specialized cells. Notably, hPSCs enhance their undifferentiated state and self-renewal properties in hypoxia (5% O2). Although thoroughly analyzed, hypoxia implication in hPSCs death is not fully determined. In order to evaluate the effect of chemically mimicked hypoxia on hPSCs cell survival, we analyzed changes in cell viability and several aspects of apoptosis triggered by CoCl2 and dimethyloxalylglycine (DMOG). Mitochondrial function assays revealed a decrease in cell viability at 24 h post-treatments. Moreover, we detected chromatin condensation, DNA fragmentation and CASPASE-9 and 3 cleavages. In this context, we observed that P53, BNIP-3, and NOXA protein expression levels were significantly up-regulated at different time points upon chemical hypoxia induction. However, only siRNA-mediated downregulation of NOXA but not HIF-1α, HIF-2α, BNIP-3, and P53 did significantly affect the extent of cell death triggered by CoCl2 and DMOG in hPSCs. In conclusion, chemically mimicked hypoxia induces hPSCs cell death by a NOXA-mediated HIF-1α and HIF-2α independent mechanism.

MATERIALS
Product Number
Brand
Product Description

Sigma-Aldrich
Cobalt(II) chloride hexahydrate, BioReagent, suitable for cell culture, suitable for insect cell culture
Sigma-Aldrich
DMOG, ≥98% (HPLC)
Sigma-Aldrich
MISSION® esiRNA, targeting human TP53
Sigma-Aldrich
HIF-Hydroxylase Inhibitor, DMOG, The HIF-Hydroxylase Inhibitor, DMOG, also referenced under CAS 89464-63-1, controls the biological activity of HIF-Hydroxylase. This small molecule/inhibitor is primarily used for Cell Structure applications.