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Testosterone regulates mitochondrial aspartate aminotransferase gene expression and mRNA stability in prostate
K Qian1, R B Franklin, L C Costello
1University of Maryland Dental School, Department of Physiology, Baltimore 21201.
Abstract:
The effect of testosterone on the precursor mitochondrial aspartate aminotransferase (pmAAT) gene and on pmAAT-mRNA was studied in rat ventral prostate (VP) and pig prostate epithelial cells. Castration significantly decreased the level of nuclear pmAAT transcripts in VP; whereas testosterone treatment of castrated animals restored the level of pmAAT transcripts. Correspondingly, castration resulted in a marked decrease in the transcription rate of the pmAAT gene; whereas testosterone treatment markedly increased the transcription rate. In vitro studies with isolated pig prostate epithelial cells demonstrated that testosterone directly and rapidly induced a transient increase in the transcription rate of the pmAAT gene. The increase in transcription was associated with an increase in the steady-state level of pmAAT-mRNA. Similar in vitro effects were observed with isolated VP epithelial cells. In addition to its stimulatory effect on transcription of the pmAAT gene, testosterone also increased the half-life of pmAAT-mRNA from 2 h in the absence of hormone to 16 h in its presence. Consequently, testosterone appears to stabilize the pmAAT-mRNA. The combination of its immediate effect on stimulating the transcription of the pmAAT gene and its stabilizing effect on pmAAT-mRNA would account for the increase in the steady-state level of pmAAT-mRNA by testosterone. These studies support our proposal that, through these effects, testosterone increases the biosynthesis of mAAT thereby increasing the transamination of aspartate to oxaloacetate and ultimately increasing the synthesis of citrate. This appears to provide at least one of the mechanisms by which testosterone regulates prostate citrate production.
Insights
Testosterone boosts prostate citrate production by increasing precursor mitochondrial aspartate aminotransferase (pmAAT) gene transcription and stabilizing pmAAT-mRNA. This hormonal regulation is crucial for prostate function.
Area of Science:
- Endocrinology
- Molecular Biology
- Biochemistry
Background:
- Testosterone plays a key role in prostate function and citrate metabolism.
- The precise molecular mechanisms by which testosterone regulates prostate citrate production are not fully understood.
Purpose of the Study:
- To investigate the effect of testosterone on the precursor mitochondrial aspartate aminotransferase (pmAAT) gene and its mRNA in prostate cells.
- To elucidate the role of testosterone in regulating prostate citrate biosynthesis.
Main Methods:
- Studied pmAAT gene and pmAAT-mRNA levels in rat ventral prostate (VP) and pig prostate epithelial cells.
- Utilized castration and testosterone treatment models in vivo.
- Performed in vitro studies with isolated prostate epithelial cells to assess direct effects of testosterone on gene transcription and mRNA stability.
Main Results:
- Castration decreased pmAAT transcripts and gene transcription rate in VP; testosterone restored these levels.
- Testosterone rapidly increased pmAAT gene transcription rate and pmAAT-mRNA levels in isolated prostate cells.
- Testosterone increased pmAAT-mRNA half-life from 2 to 16 hours, stabilizing the mRNA.
Conclusions:
- Testosterone stimulates pmAAT gene transcription and stabilizes pmAAT-mRNA in prostate cells.
- These combined effects lead to increased pmAAT biosynthesis, enhancing aspartate transamination and citrate synthesis.
- Testosterone's regulation of pmAAT is a key mechanism controlling prostate citrate production.