Interaction of Mrp2 with radixin causes reversible canalicular Mrp2 localization induced by intracellular redox

Shuichi Sekine1, Kousei Ito, Junjiro Saeki

  • 1Laboratory of Biopharmaceutics, Graduate School of Pharmaceutical Sciences, Chiba University, 1-8-1 Inohana, Chuo-ku, Chiba 260-8675, Japan.

Insights

Oxidative stress disrupts Mrp2 transport by decreasing radixin phosphorylation. Replenishing glutathione restores Mrp2 function via PKA-dependent mechanisms, highlighting key pathways in cholestatic liver injury.

Area of Science:

  • Hepatology
  • Cell Biology
  • Biochemistry

Background:

  • Oxidative stress is central to cholestatic liver injury, causing Mrp2 internalization.
  • Novel protein kinase C (nPKC) activation by oxidative stress regulates Mrp2 internalization.
  • Protein kinase A (PKA) mediates Mrp2 recycling post-glutathione replenishment.

Purpose of the Study:

  • Investigate the role of intrahepatic redox status in C-terminal radixin phosphorylation (p-radixin).
  • Determine the effect of redox status on the interaction between p-radixin and Mrp2.
  • Clarify the mechanisms of reversible Mrp2 trafficking in rat hepatocytes.

Main Methods:

  • Treatment of rat hepatocytes with tertiary-butylhydroperoxide (t-BHP) to induce oxidative stress.
  • Treatment with GSH-ethylester (GSH-EE) to replenish intracellular glutathione.
  • Co-immunoprecipitation assays to assess p-radixin and Mrp2 interaction.
  • Inhibition studies using PKC, protein phosphatase (PP)-1/2A, and PKA inhibitors.

Main Results:

  • t-BHP treatment significantly decreased p-radixin co-immunoprecipitation with Mrp2.
  • GSH-EE treatment restored p-radixin phosphorylation levels to control levels.
  • PKC and PP-1 activation under oxidative stress reduced p-radixin/Mrp2 interaction, leading to Mrp2 internalization.
  • PKA inhibition impaired the Mrp2 recovery process facilitated by GSH-EE.

Conclusions:

  • Oxidative stress, via PKC and PP-1 activation, decreases p-radixin/Mrp2 interaction, causing Mrp2 internalization.
  • PKA activation during GSH replenishment promotes p-radixin/Mrp2 interaction, facilitating Mrp2 recycling.
  • Radixin phosphorylation is a critical regulator of Mrp2 trafficking in response to redox changes.

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