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Updated: Jun 12, 2026

Monitoring Endoplasmic Reticulum Calcium Homeostasis Using a Gaussia Luciferase SERCaMP
Published on: September 6, 2015
Regulation of multidrug resistance-associated protein 2 by calcium signaling in mouse liver
Laura N Cruz1, Mateus T Guerra, Emma Kruglov
1Section of Digestive Diseases, Department of Internal Medicine, Yale University School of Medicine, New Haven, CT 06520-8019, USA.
Unlabelled:
Multidrug resistance associated protein 2 (Mrp2) is a canalicular transporter responsible for organic anion secretion into bile. Mrp2 activity is regulated by insertion into the plasma membrane; however, the factors that control this are not understood. Calcium (Ca(2+)) signaling regulates exocytosis of vesicles in most cell types, and the type II inositol 1,4,5-triphosphate receptor (InsP(3)R2) regulates Ca(2+) release in the canalicular region of hepatocytes. However, the role of InsP(3)R2 and of Ca(2+) signals in canalicular insertion and function of Mrp2 is not known. The aim of this study was to determine the role of InsP(3)R2-mediated Ca(2+) signals in targeting Mrp2 to the canalicular membrane. Livers, isolated hepatocytes, and hepatocytes in collagen sandwich culture from wild-type (WT) and InsP(3)R2 knockout (KO) mice were used for western blots, confocal immunofluorescence, and time-lapse imaging of Ca(2+) signals and of secretion of a fluorescent organic anion. Plasma membrane insertion of green fluorescent protein (GFP)-Mrp2 expressed in HepG2 cells was monitored by total internal reflection microscopy. InsP(3)R2 was concentrated in the canalicular region of WT mice but absent in InsP(3)R2 KO livers, whereas expression and localization of InsP(3)R1 was preserved, and InsP(3)R3 was absent from both WT and KO livers. Ca(2+) signals induced by either adenosine triphosphate (ATP) or vasopressin were impaired in hepatocytes lacking InsP(3)R2. Canalicular secretion of the organic anion 5-chloromethylfluorescein diacetate (CMFDA) was reduced in KO hepatocytes, as well as in WT hepatocytes treated with 1,2-bis(o-aminophenoxy)ethane-N,N,N',N'-tetraacetic acid (BAPTA). Moreover, the choleretic effect of tauroursodeoxycholic acid (TUDCA) was impaired in InsP(3)R2 KO mice. Finally, ATP increased GFP-Mrp2 fluorescence in the plasma membrane of HepG2 cells, and this also was reduced by BAPTA.
Conclusion:
InsP(3)R2-mediated Ca(2+) signals enhance organic anion secretion into bile by targeting Mrp2 to the canalicular membrane.
Insights
Calcium signals mediated by inositol 1,4,5-triphosphate receptor type 2 (InsP3R2) are crucial for targeting the multidrug resistance-associated protein 2 (Mrp2) transporter to the canalicular membrane, enhancing bile secretion.
Area of Science:
- Hepatobiliary transport
- Cellular signaling
- Molecular biology
Background:
- Multidrug resistance-associated protein 2 (Mrp2) mediates organic anion secretion into bile.
- Regulation of Mrp2 plasma membrane insertion is not well understood.
- Inositol 1,4,5-triphosphate receptor type 2 (InsP3R2) regulates calcium (Ca2+) release in hepatocytes.
Purpose of the Study:
- To determine the role of InsP3R2-mediated Ca2+ signals in targeting Mrp2 to the canalicular membrane.
- To investigate the impact of InsP3R2 on Mrp2 function and bile secretion.
Main Methods:
- Utilized wild-type and InsP3R2 knockout mice, isolated hepatocytes, and HepG2 cells.
- Employed western blotting, confocal immunofluorescence, and time-lapse imaging.
- Monitored Ca2+ signals, organic anion secretion, and Mrp2 plasma membrane insertion.
Main Results:
- InsP3R2 was localized to the canalicular region in wild-type mice but absent in knockout mice.
- Hepatocytes lacking InsP3R2 showed impaired Ca2+ signaling and reduced canalicular secretion of organic anions.
- Impaired choleretic effect of tauroursodeoxycholic acid (TUDCA) was observed in InsP3R2 knockout mice.
Conclusions:
- InsP3R2-mediated Ca2+ signals are essential for targeting Mrp2 to the canalicular membrane.
- These signals enhance organic anion secretion into bile.
- InsP3R2 plays a critical role in regulating Mrp2-dependent bile transport.
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