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Isolation and Functional Analysis of Mitochondria from Cultured Cells and Mouse Tissue
Published on: March 23, 2015
Control of mitochondrial outer membrane permeabilization and Bcl-xL levels by thioredoxin 2 in DT40 cells
Dongmei Wang1, Hiroshi Masutani, Shin-ichi Oka
1Department of Biological Responses, Institute for Virus Research, Kyoto University, 53 Kawahara-cho, Shogoin, Sakyo, Kyoto 606-8507.
Abstract:
Mitochondria play a central role in the initiation of apoptosis, which is regulated by various factors such as ATP synthesis, reactive oxygen species, redox status, and outer membrane permeabilization. Disruption of chicken thioredoxin 2 (Trx2), a mitochondrial redox-regulating protein, results in apoptosis in DT40 cells. To investigate the mechanism of this apoptosis, we prepared transfectants expressing control (DT40-TRX2-/-), human thioredoxin 2 (TRX2) (DT40-hTRX2), or redox-inactive TRX2 (DT40-hTRX2CS) in conditional Trx2-deficient DT40 cells containing a tetracycline-repressible Trx2 gene. Production of ATP was not significantly changed by down-regulation of Trx2 expression. The generation of reactive oxygen species was enhanced by the down-regulation of Trx2 expression in DT40-TRX2-/-. Unexpectedly, the change was blocked in both DT40-hTRX2 and DT40-hTRX2CS cells. The down-regulation of Trx2 expression caused the release of cytochrome c and apoptosis-inducing factor on day 3, and apoptosis on day 5. These changes were also suppressed in both DT40-hTRX2 and DT40-hTRX2CS cells, suggesting that TRX2 regulates mitochondrial outer membrane permeabilization and apoptosis by redox-active site cysteine-independent mechanisms. The down-regulation of Trx2 expression caused a decrease in the protein level of Bcl-xL on day 3, whereas the protein level of Bcl-2 did not change until day 4, and the mRNA level of Bcl-xL was unchanged. The decrease in Bcl-xL was not blocked by a caspase 3 inhibitor but blocked in both DT40-hTRX2 and DT40-hTRX2CS. These findings indicate a link between the redox active site cysteine-independent action of TRX2 and the level of Bcl-xL in the regulation of apoptosis.
Insights
Chicken thioredoxin 2 (Trx2) disruption triggers apoptosis by increasing reactive oxygen species and cytochrome c release. Trx2 regulates apoptosis via redox-active site cysteine-independent mechanisms, impacting Bcl-xL levels.
Area of Science:
- Cell Biology
- Biochemistry
- Molecular Biology
Background:
- Mitochondria are central to apoptosis initiation, influenced by ATP synthesis, reactive oxygen species (ROS), redox status, and outer membrane permeabilization.
- Disruption of chicken thioredoxin 2 (Trx2), a mitochondrial redox regulator, induces apoptosis in DT40 cells.
Purpose of the Study:
- To elucidate the mechanism by which Trx2 disruption leads to apoptosis.
- To investigate the role of Trx2's redox activity in regulating mitochondrial apoptosis.
Main Methods:
- Generation of DT40 transfectants with conditional Trx2 deficiency, expressing control, human TRX2, or redox-inactive TRX2 (hTRX2CS).
- Analysis of ATP production, ROS generation, cytochrome c release, and apoptosis markers.
- Assessment of Bcl-xL and Bcl-2 protein and mRNA levels, and caspase 3 inhibition.
Main Results:
- Trx2 down-regulation enhanced ROS generation and cytochrome c release, leading to apoptosis.
- These effects were suppressed in cells expressing either wild-type or redox-inactive hTRX2.
- Trx2 down-regulation decreased Bcl-xL protein levels independently of caspase 3 activity, suggesting a redox-active site cysteine-independent mechanism.
Conclusions:
- TRX2 regulates mitochondrial outer membrane permeabilization and apoptosis through mechanisms independent of its redox-active site cysteines.
- A link exists between the redox-active site cysteine-independent action of TRX2 and Bcl-xL levels in apoptosis regulation.
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