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Induction of gadd153 mRNA by nutrient deprivation is overcome by glutamine
1Division of Pharmacology and Toxicology, College of Pharmacy, University of Texas at Austin, Austin, TX 78712, USA.
Abstract:
The growth arrest and DNA damage-inducible (gadd) genes are co-ordinately activated by a variety of genotoxic agents and/or growth-cessation signals. The regulation of gadd153 mRNA was investigated in renal proximal tubular epithelial cells (LLC-PK1) cultured in a nutrient- and serum-deprived medium. The addition of glutamine alone to LLC-PK1 cells cultured in Earl's balanced salt solution (EBSS) is sufficient to suppress gadd153 mRNA expression, and the removal of only glutamine from Dulbecco's modified Eagle's medium (DMEM) is also sufficient to induce gadd153 mRNA expression. Consistent with these findings, the inhibition of glutamine utilization with acivicin and 6-diazo-5-oxo-l-norleucine (DON) in cells grown in a glutamine-containing medium effectively induces gadd153 expression. Glutamine can be used as an energy source in cultured mammalian cells. However, it is unlikely that deficits in cellular energy stores (ATP) are coupled to gadd153 mRNA expression, because concentrations of ATP, UTP and GTP are all elevated in EBSS-exposed cells, and the addition of alpha-oxoglutarate to cells grown in EBSS has no effect on gadd153 mRNA expression. In contrast, concentrations of CTP decline substantially in EBSS and glutamine-deprived DMEM-cultured cells. Glutamine also serves as a precursor for the synthesis of protein and DNA. The addition of glutamine to cells grown in EBSS partly restores CTP concentrations. The addition of pyrimidine ribonucleosides (cytidine and uridine) to LLC-PK1 cells also restores CTP concentrations, in a manner commensurate with their relative abilities to overcome gadd153 expression. Finally, glutamine does not completely suppress DNA damage-induced gadd153 expression, suggesting that multiple signalling pathways lead to the expression of gadd153 mRNA under conditions of nutrient deprivation and DNA damage.
Insights
Glutamine suppresses gadd153 mRNA expression in kidney cells by maintaining CTP levels, not ATP. Nutrient deprivation and DNA damage involve multiple signaling pathways for gadd153 regulation.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Growth arrest and DNA damage-inducible (gadd) genes are activated by genotoxic agents and growth cessation.
- gadd153 mRNA regulation is crucial for cellular stress responses.
Purpose of the Study:
- Investigate the regulation of gadd153 mRNA in renal proximal tubular epithelial cells (LLC-PK1).
- Determine the role of glutamine in gadd153 mRNA expression under nutrient deprivation.
Main Methods:
- Cultured LLC-PK1 cells in nutrient- and serum-deprived media (EBSS and DMEM).
- Manipulated glutamine availability and utilization.
- Measured gadd153 mRNA expression, ATP, UTP, GTP, and CTP concentrations.
Main Results:
- Glutamine addition suppressed gadd153 mRNA; glutamine removal induced it.
- Inhibiting glutamine utilization increased gadd153 expression.
- CTP levels decreased with glutamine deprivation, while ATP, UTP, and GTP increased.
- Pyrimidine ribonucleosides restored CTP and reduced gadd153 expression.
- Glutamine partially suppressed, but did not eliminate, DNA damage-induced gadd153 expression.
Conclusions:
- Glutamine suppresses gadd153 mRNA expression primarily by maintaining CTP concentrations, not by affecting cellular energy stores (ATP).
- Pyrimidine synthesis is linked to gadd153 regulation under nutrient deprivation.
- Multiple signaling pathways contribute to gadd153 mRNA expression during nutrient deprivation and DNA damage.