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Updated: Feb 12, 2026

Mitochondrial Preparation from Microglia for Glycan Analysis
Published on: May 30, 2025
Methamphetamine Induces Apoptosis of Microglia via the Intrinsic Mitochondrial-Dependent Pathway
Anna V Sharikova1, Elizabeth Quaye2, Jun Yong Park1
1Department of Physics, SUNY University at Albany, 1400 Washington Avenue, Albany, NY, 12222, USA.
Abstract:
Methamphetamine (METH) is a drug of abuse, the acute and chronic use of which induces neurotoxic responses in the human brain, ultimately leading to neurocognitive disorders. Our goals were to understand the impact of METH on microglial mitochondrial respiration and to determine whether METH induces the activation of the mitochondrial-dependent intrinsic apoptosis pathway in microglia. We assessed the expression of pro- apoptosis genes using qPCR of RNA extracted from a human microglial cell line (HTHU). We examined the apoptosis-inducing effects of METH on microglial cells using digital holographic microscopy (DHM) to quantify real-time apoptotic volume decrease (AVD) in microglia in a noninvasive manner. METH treatment significantly increased AVD, activated Caspase 3/7, increased the gene expression levels of the pro- apoptosis proteins, APAF-1 and BAX, and decreased mitochondrial DNA content. Using immunofluorescence analysis, we found that METH increased the expression of the mitochondrial proteins cytochrome c and MCL-1, supporting the activation of mitochondrion-dependent (intrinsic) apoptosis pathway. Cellular bio-energetic flux analysis by Agilent Seahorse XF Analyzer revealed that METH treatment increased both oxidative and glycolytic respiration after 3 h, which was sustained for at least 24 h. Several events, such as oxidative stress, neuro-inflammatory responses, and mitochondrial dysfunction, may converge to mediate METH-induced apoptosis of microglia that may contribute to neurotoxicity of the CNS. Our study has important implications for therapeutic strategies aimed at preserving mitochondrial function in METH abusing patients.
Insights
Methamphetamine (METH) causes neurotoxicity by inducing microglial apoptosis via mitochondrial dysfunction. This study reveals METH disrupts microglial respiration and activates intrinsic apoptosis pathways, impacting central nervous system health.
Area of Science:
- Neuroscience
- Cell Biology
- Toxicology
Background:
- Methamphetamine (METH) abuse leads to neurocognitive disorders due to its neurotoxic effects.
- Microglia, the brain's immune cells, play a critical role in neuroinflammation and neurotoxicity.
- Mitochondrial dysfunction is implicated in various neurological disorders.
Purpose of the Study:
- To investigate the impact of METH on microglial mitochondrial respiration.
- To determine if METH activates the mitochondrial-dependent intrinsic apoptosis pathway in microglia.
- To explore potential therapeutic targets for METH-induced neurotoxicity.
Main Methods:
- Quantitative PCR (qPCR) to assess pro-apoptosis gene expression in a human microglial cell line (HTHU).
- Digital Holographic Microscopy (DHM) to quantify real-time apoptotic volume decrease (AVD) in microglia.
- Immunofluorescence analysis for mitochondrial proteins and Agilent Seahorse XF Analyzer for bio-energetic flux analysis.
Main Results:
- METH treatment significantly increased microglial AVD, activated Caspase 3/7, and upregulated pro-apoptosis genes (APAF-1, BAX).
- METH decreased mitochondrial DNA content and increased expression of cytochrome c and MCL-1, indicating intrinsic apoptosis pathway activation.
- METH enhanced both oxidative and glycolytic respiration in microglia for at least 24 hours.
Conclusions:
- METH induces apoptosis in microglia through the intrinsic mitochondrial pathway, involving oxidative stress and neuroinflammation.
- Mitochondrial dysfunction is a key mechanism mediating METH-induced neurotoxicity.
- Preserving mitochondrial function may be a promising therapeutic strategy for METH abuse patients.
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