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Methods to Study Mrp4-containing Macromolecular Complexes in the Regulation of Fibroblast Migration
Published on: May 19, 2016
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.
Abstract:
Oxidative stress is a feature of cholestatic syndrome and induces multidrug resistance-associated protein 2 (Mrp2) internalization from the canalicular membrane surface. We have previously shown that the activation of a novel protein kinase C (nPKC) by oxidative stress regulates Mrp2 internalization. The internalized Mrp2 was recycled to the canalicular surface in a protein kinase A (PKA)-dependent manner after intracellular glutathione (GSH) levels were replenished. However, the putative phosphorylation targets of these protein kinases involved in reversible Mrp2 trafficking remain unclear. In this study, we investigated the effect of changing the intrahepatic redox status on the C-terminal phosphorylation status of radixin (p-radixin), which links Mrp2 to F-actin, and the interaction of p-radixin with Mrp2 in rat hepatocytes. We detected a significant decrease in the amount of p-radixin that co-immunoprecipitated with Mrp2 after tertiary-butylhydroperoxide (t-BHP) treatment. After treatment with GSH-ethylester (GSH-EE), the phosphorylation level became the same as that of the control. A PKC and protein phosphatase (PP)-1/2A inhibitor, but not a PP-2A selective inhibitor, prevented the t-BHP-induced decrease of p-radixin and subsequent canalicular Mrp2 localization. In contrast, a PKA inhibitor affected the recovery process facilitated by GSH-EE treatment. In conclusion, the interaction of p-radixin with Mrp2 was decreased by the activation of PKC and PP-1 under oxidative stress conditions which subsequently led to Mrp2 internalization, whereas the interaction of p-radixin and Mrp2 was increased by the activation of PKA during recovery from oxidative stress.
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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