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A Fluorescence-based Assay of Phospholipid Scramblase Activity
Published on: September 20, 2016
Fluorescent modified phosphatidylcholine floppase activity of reconstituted multidrug resistance-associated protein
Zhenhua Huang1, Xiubao Chang, John R Riordan
1National Laboratory of Biomacromolecules, Center for Molecular Biology, Institute of Biophysics, Chinese Academy of Sciences, Beijing 100101, China.
Abstract:
Multidrug resistance-associated protein (MRP1) may function as a floppase in human red blood cells to translocate phosphatidylserine and/or phosphatidylcholine from inner membrane leaflet to outer leaflet. Here we report that the purified and reconstituted MRP1 protein into asolectin proteoliposomes is mainly in an inside-out configuration and possesses the ability to flop a fluorescent labeled phosphatidylcholine (NBD-PC) from outer leaflet (protoplasmic) to inner leaflet (extracytoplasmic). The reconstituted MRP1 protein retains endogenous ATPase activity. ATP hydrolysis is required for the flopping since removal of ATP and/or Mg2+ inhibits the translocation of NBD-PC. Further evidence to support this conclusion is that the translocation of NBD-PC is inhibited by vanadate, which traps ATP hydrolysis product ADP in the nucleotide binding domains. In addition, the translocation of NBD-PC by proteoliposomes containing MRP1 protein is in a glutathione-dependent manner, similar to the process of translocating anticancer drugs such as daunorubicin. verapamil, vincristine, vinblastine, doxorubicin and oxidized glutathione partially inhibited the translocation of NBD-PC, whereas MK 571, an inhibitor of MRP1 protein, inhibited the translocation almost completely. Taken together, the purified and reconstituted MRP1 protein possesses the ability to flop NBD-PC from outer to inner leaflet of the proteoliposomes.
Insights
Multidrug resistance-associated protein 1 (MRP1) functions as a floppase, translocating phosphatidylcholine across membranes. This process requires ATP hydrolysis and is influenced by glutathione.
Area of Science:
- Biochemistry
- Cell Biology
- Membrane Transport
Background:
- The Multidrug resistance-associated protein 1 (MRP1) is implicated in phospholipid transport.
- Its precise role as a floppase in red blood cells requires further investigation.
Purpose of the Study:
- To investigate the floppase activity of purified and reconstituted MRP1 protein.
- To elucidate the mechanism and requirements for MRP1-mediated phospholipid translocation.
Main Methods:
- Purification and reconstitution of MRP1 protein into asolectin proteoliposomes.
- Assay of NBD-PC translocation using fluorescently labeled phosphatidylcholine.
- Investigation of ATP hydrolysis, Mg2+ dependence, and inhibition by vanadate and MK 571.
Main Results:
- Reconstituted MRP1 protein exhibited inside-out configuration and ability to flop NBD-PC from outer to inner leaflet.
- Translocation was dependent on ATP hydrolysis, Mg2+, and glutathione.
- Inhibition by vanadate and MK 571 confirmed MRP1's role and ATPase activity.
Conclusions:
- Purified MRP1 protein functions as a floppase, translocating NBD-PC across the proteoliposome membrane.
- The flopping activity is an ATP-dependent process requiring Mg2+ and is modulated by glutathione.

