Catalase and estradiol inhibit mitochondrial protein S-glutathionylation

Bin Hu1, Jorge Allina, Jingxiang Bai

  • 1Department of Medicine, The Mount Sinai School of Medicine, New York, NY 10029, USA.

Insights

Estradiol may reduce mitochondrial protein S-glutathionylation during oxidative stress, potentially impacting apoptosis. This antioxidant effect, observed with catalase, may relate to primary biliary cirrhosis autoantibodies.

Area of Science:

  • Mitochondrial biochemistry
  • Cellular oxidative stress response
  • Apoptosis signaling pathways

Background:

  • Mitochondrial protein S-glutathionylation's role in oxidative stress is unclear.
  • Understanding antioxidants' effects on this process is crucial for cellular protection.

Purpose of the Study:

  • To investigate if catalase and estradiol affect mitochondrial protein S-glutathionylation.
  • To determine if these antioxidants influence apoptosis after UV-B irradiation.

Main Methods:

  • HeLa cells were treated with adenovirus encoding catalase (Ad-Cat) or estradiol.
  • Apoptosis was induced using UV-B light exposure.
  • Mitochondrial protein S-glutathionylation was measured using autoantibodies against non-S-glutathionylated PDC-E2.

Main Results:

  • Catalase and estradiol significantly increased staining for non-S-glutathionylated PDC-E2 in apoptotic cells.
  • Neither Ad-Cat nor estradiol significantly altered the percentage of apoptotic cells.
  • Procaspase 12 cleavage indicated activation of a mitochondrial-independent apoptotic pathway.

Conclusions:

  • Estradiol may inhibit mitochondrial protein S-glutathionylation independently of apoptosis induction.
  • This mechanism could be relevant to the prevalence of anti-PDC-E2 autoantibodies in primary biliary cirrhosis.

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