Role of glycine-534 and glycine-1179 of human multidrug resistance protein (MDR1) in drug-mediated control of ATP hydrolysis

被引:40
作者
Szakács, G
Özvegy, C
Bakos, É
Sarkadi, B
Váradi, A
机构
[1] Hungarian Acad Sci, Biol Res Ctr, Inst Enzymol, H-1113 Budapest, Hungary
[2] Hungarian Acad Sci, Membrane Res Grp, Natl Inst Haematol & Immunol, H-1113 Budapest, Hungary
关键词
ABC signature; ATP-binding cassette; allosteric effect; nucleotide trapping; P-glycoprotein;
D O I
10.1042/0264-6021:3560071
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The human multidrug resistance protein (MDR1) (P-glycoprotein), a member of the ATP-binding cassette (ABC) family. causes multidrug resistance by an active transport mechanism. which keeps the intracellular level of hydrophobic compounds below a cell-killing threshold. Human MDR1 variants with mutations affecting a conserved glycine residue within the ABC signature of either or both ABC units (G534D, G534V, G1179D and G534D/G1179D) were expressed and characterized in Spodoptera frugiperda (Sf9) cell membranes. These mutations caused a loss of measurable ATPase activity but still allowed ATP binding and the formation of a transition-state intermediate (nucleotide trapping). In contrast with the wild-type protein, in which substrate drugs accelerate nucleotide trapping, in the ABC signature mutants nucleotide trapping was inhibited by MDR1-substrate drugs, suggesting a miscommunication between the drug-binding site(s) and the catalytic domains. Equivalent mutations of the two catalytic sites resulted in a similar effect, indicating the functional equivalence of the two sites. On the basis of these results and recent structural information on an ABC-ABC dimer [Hopfner, Karcher, Shin, Craig, Arthur, Carney and Tainer (2000) Cell 101, 759-800], we propose a key role of these glycine residues in the interdomain communication regulating drug-induced ATP hydrolysis.
引用
收藏
页码:71 / 75
页数:5
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