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Structure and expression of the messenger RNA encoding the murine multidrug resistance protein, an ATP-binding
B D Stride1, G Valdimarsson, J H Gerlach
1Cancer Research Laboratories, Queen's University, Kingston, Canada.
Abstract:
In vitro, overexpression of the human multidrug-resistance protein (MRP) causes a form of multidrug resistance similar to that conferred by P-glycoprotein, although the two proteins are only very distantly related. Studies with MRP-enriched membrane vesicles have demonstrated that the protein can bind and transport cysteinyl leukotrienes, as well as some other glutathione conjugates, with high affinity. In contrast, there is no direct evidence of the ability of MRP to bind or transport unmodified forms of the drugs to which it confers resistance. To facilitate studies of the physiological function(s) of MRP and its ability to cause multidrug resistance in vivo, we cloned and characterized the mRNA specifying its murine homolog. The murine MRP mRNA encodes a protein of 1528 amino acids that is 88% identical to human MRP. Although detectable by Northern blotting at variable levels in a wide range of tissues, in situ hybridization experiments revealed that MRP mRNA expression in some tissues is cell-type specific. High levels of the mRNA were detected in epithelia lining bronchi and bronchioles, as well as stage-specific expression in the seminiferous epithelium of the testes. Comparison of the predicted hydropathy profiles of human and murine MRP suggests a highly conserved membrane topology, the most distinctive feature of which is an extremely hydrophobic NH2-terminal region containing five or six potential transmembrane sequences. This structural feature is shared with the sulfonylurea receptor and the yeast cadmium factor 1 but is not present in members of the superfamily, such as the cystic fibrosis transmembrane conductance regulator and P-glycoproteins. Finally, we used overlapping cDNAs to construct an episomally replicating murine MRP expression vector that was stably transfected into HeLa cells. MRP-Transfected cell populations expressed markedly elevated levels of a 180-190-kDa protein that cross-reacted with a polyclonal antiserum raised against a peptide that is completely conserved in murine and human MRPs. The MRP transfectants also displayed increased resistance to vincristine (5-6-fold) and doxorubicin (< 2-fold).
Insights
Researchers cloned and characterized the murine multidrug-resistance protein (MRP) homolog. This protein, similar to human MRP, confers drug resistance and shows specific tissue expression, aiding in vivo studies of its function.
Area of Science:
- Molecular Biology
- Biochemistry
- Pharmacology
Background:
- The human multidrug-resistance protein (MRP) confers drug resistance in vitro, similar to P-glycoprotein, despite distant structural relation.
- MRP-enriched vesicles transport cysteinyl leukotrienes and glutathione conjugates, but direct drug transport by MRP remains unproven.
- Understanding MRP's in vivo physiological functions and drug resistance mechanisms requires studying its murine homolog.
Purpose of the Study:
- To clone and characterize the murine multidrug-resistance protein (MRP) mRNA and its encoded protein.
- To investigate the tissue-specific expression of murine MRP mRNA in vivo.
- To assess the functional capacity of murine MRP in conferring drug resistance in a cellular model.
Main Methods:
- Cloning and characterization of murine MRP mRNA.
- Northern blotting and in situ hybridization for tissue expression analysis.
- Construction of a murine MRP expression vector and stable transfection into HeLa cells.
Main Results:
- Murine MRP mRNA encodes a 1528-amino acid protein, 88% identical to human MRP, with conserved membrane topology.
- MRP mRNA expression is cell-type specific, with high levels in lung epithelia and testes seminiferous epithelium.
- MRP-transfected HeLa cells showed increased resistance to vincristine (5-6-fold) and doxorubicin (< 2-fold).
Conclusions:
- The murine MRP homolog shares structural and functional similarities with human MRP, including drug resistance.
- Specific tissue expression patterns suggest specialized roles for MRP in different organs.
- The characterized murine MRP provides a valuable tool for in vivo studies of multidrug resistance.