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Phosphorylation dynamics of radixin in hypoxia-induced hepatocyte injury
Jo Suda1, Don C Rockey2, Serhan Karvar3
1Division of Gastrointestinal and Liver Diseases, Keck School of Medicine, University of Southern California, Los Angeles, California;
Abstract:
The most prominent ezrin-radixin-moesin protein in hepatocytes is radixin, which is localized primarily at the canalicular microvilli and appears to be important in regulation of cell polarity and in localizing the multidrug resistance-associated protein 2 (Mrp-2) function. Our aim was to investigate how hypoxia affects radixin distribution and Mrp-2 function. We created wild-type and mutant constructs (in adenoviral vectors), which were expressed in WIF-B cells. The cellular distribution of Mrp-2 and radixin was visualized by fluorescence microscopy, and a 5-chloromethylfluorescein diacetate (CMFDA) assay was used to measure Mrp-2 function. Under usual conditions, cells infected with wild-type radixin, nonphosphorylatable radixin-T564A, and radixin-T564D (active phospho-mimicking mutant) were found to be heavily expressed in canalicular membrane compartment vacuoles, typically colocalizing with Mrp-2. In contrast, after hypoxia for 24 h, both endogenous and overexpressed wild-type radixin and the radixin-T564A mutant were found to be translocated to the cytoplasmic space. However, distribution of the radixin-T564D mutant, which mimics constant phosphorylation, was remarkably different, being associated with canalicular membranes even in hypoxic conditions. This dominant-active construct also prevented dissociation of radixin from the plasma membrane. Hypoxia also led to Mrp-2 mislocalization and caused Mrp-2 to be dissociated from radixin; the radixin phospho-mimicking mutant (T564D) abrogated this effect of hypoxia. Finally, hypoxia diminished the secretory response (measured using the CMFDA assay) in WIF-B cells, and the dominant-active construct (radixin-T567D) rescued this phenotype. Taken collectively, these findings suggest that radixin regulates Mrp-2 localization and function in hepatocytes and is important in hypoxic liver injury.
Insights
Hypoxia disrupts radixin and multidrug resistance-associated protein 2 (Mrp-2) localization in liver cells. A specific radixin mutant prevented this disruption, protecting Mrp-2 function and cell secretion during hypoxic stress.
Area of Science:
- Hepatocyte biology
- Cellular stress response
- Molecular cell biology
Background:
- Radixin, an ezrin-radixin-moesin protein, is crucial for hepatocyte polarity and multidrug resistance-associated protein 2 (Mrp-2) function.
- Hypoxia, a condition of low oxygen, can impair liver function and cellular integrity.
Purpose of the Study:
- To investigate the impact of hypoxia on radixin distribution and Mrp-2 function in WIF-B hepatocytes.
- To determine if radixin phosphorylation status influences its response to hypoxia and its interaction with Mrp-2.
Main Methods:
- Utilized adenoviral vectors to express wild-type and mutant radixin (nonphosphorylatable T564A, phospho-mimicking T564D) in WIF-B cells.
- Visualized cellular distribution of radixin and Mrp-2 using fluorescence microscopy.
- Assessed Mrp-2 function by measuring secretory response using a 5-chloromethylfluorescein diacetate (CMFDA) assay.
Main Results:
- Hypoxia caused translocation of wild-type and T564A radixin from canalicular membranes to the cytoplasm, dissociating them from Mrp-2.
- The phospho-mimicking T564D radixin mutant remained localized at canalicular membranes under hypoxia, preventing Mrp-2 dissociation.
- Hypoxia diminished Mrp-2-mediated secretion, an effect abrogated by the T564D radixin mutant.
Conclusions:
- Radixin plays a critical role in regulating Mrp-2 localization and function in hepatocytes.
- Radixin phosphorylation is a key mechanism determining its response to hypoxic stress.
- Modulating radixin phosphorylation may offer a therapeutic strategy against hypoxic liver injury.
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