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Biology subjects

Ite, K.

Publications and source records attributed to Ite, K..

2 recordsLinked to original sources

Puromycin selection of cells with a high expression of the cytochrome P450 CYP3A4 gene activity from a patient with drug-induced liver injury (DILI) and their lifespan prolongation using a combination of CDK4R24C, cyclin D1 and TERT

Many drugs have the potential to induce the expression of drug-metabolizing enzymes, particularly cytochrome P450 3A4 (CYP3A4), in hepatocytes. Hepatocytes can accurately evaluate drug-mediated CYP3A4 induction as the gold standard for in vitro hepatic toxicology test, but their lot variation is an issue to be solved. Only a limited number of immortalized hepatocyte cells have been reported. In this study, we generated an immortalized cell expressing CYP3A4 from a patient with drug-induced liver injury (DILI). To generate DILI-derived cells with a high expression of CYP3A4, we employed a three-step approach: 1. Differentiation of DILI-induced pluripotent stem cells (DILI-iPSCs); 2. Immortalization of the differentiated cells; 3. Selection of the cells with puromycin. We hypothesize that cells with a high expression of cytochrome P450 genes can survive even after exposure to cytotoxic antibiotics because of high drug-metabolism activity. Puromycin, one of the cytotoxic antibiotics, was used in this study because of its rapid cytocidal effect at a low concentration. Phenotypic studies in vitro revealed that the puromycin-selected cells (HepaSM or SI cells) constitutively expressed the CYP3A4 gene at an extremely high level, and continued to proliferate at least up to 34 population doublings for more than 250 days. The expression profiles were independent of population doublings. Drug-mediated induction test revealed that the cells significantly increased CYP3A4 after exposure to rifampicin, suggesting that the immortalized cells would serve as another useful source for in vitro examination of drug metabolism and CYP3A4 induction.

cell biology

Ammonia-based enrichment and long-term propagation of zone I hepatocyte-like cells

Zone I and zone III hepatocytes metabolize ammonia through urea cycle and drug by cytochrome P450, respectively. Ammonia has a cytotoxic effect, and can therefore be used as a selection agent for enrichment of hepatocytes. Besides, isolated hepatocytes from livers can be propagated ex vivo under appropriate condition. However, it has not been investigated so far whether ammonia-treated hepatocyte-like cells are able to proliferate in vitro. In this study, we employed the ammonia selection strategy to purify hepatocyte-like cells that were differentiated from human pluripotent stem cells (PSCs) that are embryonic stem cells (ESCs) and induced pluripotent stem cells. Hepatocyte-like cells after exposure to ammonia highly expressed the CPS1 gene that metabolizes ammonia to carbamoyl phosphate. The resistance to cytotoxicity or cell death by ammonia is probably attributed to the metabolic activity of ammonia in the cells. In addition to the ammonia metabolism-related genes, ammonia-selected PSC-derived hepatocytes increased expression of the CYP3A4 gene, one of the cytochrome P450 genes, that is mainly expressed in zone III hepatocytes. Ammonia-selected hepatocyte-like cells derived from both ESCs and iPSCs can be propagated in vitro up to 30 population doublings for more than 190 days without affecting expression of the liver-associated genes, implying that the ammonia-selected cells have immortality or equivalent life span on the appropriate feeder cells like ESCs and iPSCs. The long-term cultivation of ammonia-selected hepatocyte-like cells resulted in the increased expression of hepatocyte-associated genes such as the CPS1 and CYP3A4 genes. The ammonia selection method to enrich a hepatocyte population was also applicable to immortalized cells from the liver. Ammonia treatment in combination with in vitro propagation will be used to obtain large amounts of hepatocytes or hepatocyte-like cells for pharmacology, toxicology and regenerative medicine.

cell biology