DJ-1-binding compound B enhances Nrf2 activity through the PI3-kinase-Akt pathway by DJ-1-dependent inactivation of

Takeshi Niki1, Jinro Endo1, Kazuko Takahashi-Niki2

  • 1Faculty of Agriculture, Hokkaido University, Kita 9 Nishi 9, Kita-ku, Sapporo 060-8589, Japan.

Brain Research
|January 1, 2020
PubMed

Insights

Compound B protects cells from oxidative stress by boosting Nrf2 activity. This occurs via the PI3-kinase/Akt pathway, involving DJ-1 and PTEN, independent of Keap1 regulation.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Neuroscience

Background:

  • DJ-1 is implicated in Parkinson disease (PD) and cancer, playing a role in oxidative stress response.
  • Oxidative damage to DJ-1 at C106 leads to an inactive form, observed in PD patients.
  • Compound B binds DJ-1's C106 region, preventing oxidative cell death by maintaining DJ-1's active form.

Purpose of the Study:

  • To elucidate the molecular mechanism of Compound B's action in protecting against oxidative stress.
  • To investigate Compound B's effect on Nrf2 transcriptional activity and its regulatory pathways.

Main Methods:

  • Utilized H2O2-treated SH-SY5Y cells to assess Compound B's impact on Nrf2 degradation.
  • Examined Compound B's effects in Keap1-mutant, PTEN-null, and PTEN-knockout cell lines.
  • Investigated the role of the PI3-kinase/Akt pathway and PTEN-DJ-1 interactions.

Main Results:

  • Compound B enhanced Nrf2 transcriptional activity by inhibiting its degradation via the ubiquitin-proteasome system.
  • The effect of Compound B on Nrf2 activity was Keap1-independent but dependent on PTEN and the PI3-kinase/Akt pathway.
  • Compound B promoted PTEN inactivation through oxidation and increased its binding to DJ-1, activating the PI3-kinase/Akt pathway.

Conclusions:

  • Compound B enhances Nrf2 activity under oxidative stress through a Keap1-independent mechanism.
  • Compound B's protective effects are mediated by the PI3-kinase/Akt pathway via DJ-1-dependent PTEN inactivation.
  • This pathway activation leads to cellular protection against oxidative stress-induced death.

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