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Published on: November 15, 2024
Identification of oxidized mitochondrial proteins in alcohol-exposed human hepatoma cells and mouse liver
Soo-Kyung Suh1, Brian L Hood, Bong-Jo Kim
1Laboratory of Membrane Biochemistry and Biophysics, National Institute on Alcohol Abuse and Alcoholism, Rockville, MD 20852, USA.
Abstract:
Heavy alcohol consumption can damage various cells and organs partly through production of reactive oxygen species (ROS) and mitochondrial dysfunction. Treatment with antioxidants can significantly reduce the degree of damage. Despite well established roles of ROS in alcohol-induced cell injury, the proteins that are selectively oxidized by ROS are poorly characterized. We hypothesized that certain cysteinyl residues of target proteins are oxidized by ROS upon alcohol exposure, and these modified proteins may play roles in mitochondrial dysfunction. A targeted proteomics approach utilizing biotin-N-maleimide (biotin-NM) as a specific probe to label oxidized cysteinyl residues was employed to investigate which mitochondrial proteins are modified during and after alcohol exposure. Human hepatoma HepG2 cells with transduced CYP2E1 (E47 cells) were used as a model to generate ROS through CYP2E1-mediated ethanol metabolism. Following exposure to 100 mM ethanol for 4 and 8 h, the biotin-NM-labeled oxidized proteins were purified with agarose coupled to either streptavidin or monoclonal antibody against biotin. The purified proteins were resolved by two-dimensional gel electrophoresis and protein spots that displayed differential abundances were excised from the gel, in-gel digested with trypsin and analyzed for identity utilizing either matrix-assisted laser desorption-time of flight mass spectrometry or microcapillary reversed-phase liquid chromatography-tandem mass spectrometry. The results demonstrate that heat shock protein 60, protein disulfide isomerase, mitochondrial aldehyde dehydrogenases, prohibitin, and other proteins were oxidized after alcohol exposure. The identity of some of the proteins purified with streptavidin-agarose was also confirmed by immunoblot analyses using the specific antibody to each target protein. This method was also used to identify oxidized mitochondrial proteins in the alcohol-fed mouse liver. These results suggest that exposure to ethanol causes oxidation of various mitochondrial proteins that may negatively affect their function and contribute to alcohol-induced mitochondrial dysfunction and cellular injury.
Insights
Heavy alcohol consumption causes reactive oxygen species (ROS) to oxidize mitochondrial proteins, contributing to cell damage. Identifying these oxidized proteins is key to understanding and treating alcohol-induced injury.
Area of Science:
- Biochemistry
- Cell Biology
- Toxicology
Background:
- Heavy alcohol consumption generates reactive oxygen species (ROS), leading to cellular and organ damage.
- Mitochondrial dysfunction is a key mechanism in alcohol-induced cell injury.
- The specific proteins oxidized by ROS in this context are not well understood.
Purpose of the Study:
- To identify specific mitochondrial proteins oxidized by ROS upon alcohol exposure.
- To investigate the role of these modified proteins in alcohol-induced mitochondrial dysfunction.
- To characterize the impact of ethanol on protein oxidation in liver cells and tissues.
Main Methods:
- Utilized a targeted proteomics approach with biotin-N-maleimide (biotin-NM) to label oxidized cysteinyl residues.
- Employed human hepatoma HepG2 cells expressing CYP2E1 to model ROS production from ethanol metabolism.
- Purified labeled proteins using streptavidin or anti-biotin antibody, followed by 2D gel electrophoresis and mass spectrometry for identification.
Main Results:
- Identified oxidation of several mitochondrial proteins, including heat shock protein 60, protein disulfide isomerase, mitochondrial aldehyde dehydrogenases, and prohibitin, following ethanol exposure.
- Confirmed protein identities through immunoblot analyses.
- Successfully applied the method to identify oxidized mitochondrial proteins in alcohol-fed mouse liver.
Conclusions:
- Ethanol exposure leads to the oxidation of various mitochondrial proteins.
- Oxidized mitochondrial proteins may have impaired function, contributing to mitochondrial dysfunction and cellular injury.
- This study provides a method to identify ROS-modified proteins in alcohol-induced damage.

