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Methamphetamine causes differential regulation of pro-death and anti-death Bcl-2 genes in the mouse neocortex
S Jayanthi1, X Deng, M Bordelon
1Molecular Neuropsychiatry Section, NIDA-IRP, National Institutes of Health, Baltimore, Maryland 21224, USA.
Abstract:
Bcl-2, an inner mitochondrial membrane protein, inhibits apoptotic neuronal cell death. Expression of Bcl-2 inhibits cell death by decreasing the net cellular generation of reactive oxygen species. Studies by different investigators have provided unimpeachable evidence of a role for oxygen-based free radicals in methamphetamine (METH) -induced neurotoxicity. In addition, studies from our laboratory have shown that immortalized rat neuronal cells that overexpress Bcl-2 are protected against METH-induced apoptosis in vitro. Moreover, the amphetamines can cause differential changes in the expression of Bcl-X splice variants in primary cortical cell cultures. These observations suggested that METH might also cause perturbations of Bcl-2-related genes when administered to rodents. Thus, the present study was conducted to determine whether the use of METH might indeed be associated with transcriptional and translational changes in the expression of Bcl-2-related genes in the mouse brain. Here we report that a toxic regimen of METH did cause significant increases in the pro-death Bcl-2 family genes BAD, BAX, and BID. Concomitantly, there were significant decreases in the anti-death genes Bcl-2 and Bcl-XL. These results thus support the notion that injections of toxic doses of METH trigger the activation of the programmed death pathway in the mammalian brain.
Insights
Methamphetamine (METH) neurotoxicity involves free radicals and apoptosis. This study found METH alters expression of Bcl-2 family genes, increasing pro-death genes and decreasing anti-death genes in the mouse brain.
Area of Science:
- Neuroscience
- Molecular Biology
- Toxicology
Background:
- Bcl-2 protein regulates apoptosis by controlling reactive oxygen species.
- Methamphetamine (METH) neurotoxicity is linked to free radicals.
- Bcl-2 overexpression protects neuronal cells from METH-induced apoptosis in vitro.
Purpose of the Study:
- To investigate if METH administration causes changes in Bcl-2-related gene expression in the mouse brain.
- To determine the transcriptional and translational effects of METH on apoptosis-related genes.
Main Methods:
- Administration of a toxic regimen of METH to rodents.
- Analysis of gene expression changes in the mouse brain.
- Quantification of pro-death and anti-death Bcl-2 family genes (BAD, BAX, BID, Bcl-2, Bcl-XL).
Main Results:
- Toxic METH doses significantly increased pro-death genes: BAD, BAX, and BID.
- Concurrently, METH significantly decreased anti-death genes: Bcl-2 and Bcl-XL.
- These changes indicate activation of the programmed cell death pathway.
Conclusions:
- METH administration triggers significant alterations in the expression of Bcl-2 family genes in the mammalian brain.
- The observed gene expression changes support the role of programmed cell death in METH-induced neurotoxicity.
- Findings suggest METH perturbs the balance of apoptosis regulators, potentially leading to neuronal cell death.

