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Curtabbi, A.

Publications and source records attributed to Curtabbi, A..

2 recordsLinked to original sources

Uncoupling de novo pyrimidine biosynthesis from mitochondrial electron transport by ectopic expression of cytosolic DHODH

Dihydroorotate dehydrogenase (DHODH) is an enzyme involved in the biosynthesis of pyrimidine nucleotides. In most eukaryotes, this enzyme is bound to the inner mitochondrial membrane, where it couples the synthesis of orotate with the reduction of ubiquinone. As ubiquinone must be regenerated by respiratory complex III, pyrimidine biosynthesis and cellular respiration are tightly coupled. Consequently, inhibition of respiration leads to cessation of DNA synthesis and impairs cell proliferation. We show that expression of Saccharomyces cerevisiae URA1 gene (ScURA) in mammalian cells uncouples biosynthesis of pyrimidines from mitochondrial electron transport. ScURA forms a homodimer in the cytosol that uses fumarate instead of ubiquinone as the electron acceptor, enabling oxygen-independent pyrimidine biosynthesis. Cells expressing ScURA are resistant to drugs that inhibit complex III and the mitochondrial ribosome. ScURA enables the growth of mtDNA-lacking {rho}0 cells in uridine-deficient medium and ameliorates the phenotype of cellular models of mitochondrial diseases. This genetic tool uncovers the contribution of pyrimidine biosynthesis to the phenotypes arising from electron transport chain defects.

molecular biology↗

TET3 regulates cellular terminal differentiation at the metabolic level

TET-family members play an essential role in cell fate commitment and their dysfunctions result in arrested differentiation. TET3 is ubiquitously expressed in differentiated cells and essential in postnatal development due to yet unknown reasons. To define TET3 function in cell differentiation, we profiled the intestinal epithelium at the single-cell level from wild-type and Tet3 knockout mice. Here we show that, in the absence of TET3, enterocytes exhibit an aberrant differentiation trajectory and do not acquire a physiological cell identity due to an impairment in oxidative phosphorylation, specifically due to an ATP synthase assembly deficiency. Furthermore, our analysis demonstrates that the loss of TET3 compromises mitochondrial metabolic maturation and leads to a metabolic profile enriched in glycolysis-dependent anabolic pathways similar to those observed in undifferentiated cells. Collectively, our study has revealed the molecular mechanism by which TET3 regulates terminal differentiation at the metabolic level.

developmental biology↗