Abstract

Multidrug resistance protein (MRP1) utilizes two non-equivalent nucleotide-binding domains (NBDs) to bind and hydrolyze ATP. ATP hydrolysis by either one or both NBDs is essential to drive transport of solute. Mutations of either NBD1 or NBD2 reduce solute transport, but do not abolish it completely. How events at these two domains are coordinated during the transport cycle have not been fully elucidated. Earlier reports (Gao, M., Cui, H. R., Loe, D. W., Grant, C. E., Almquist, K. C., Cole, S. P., and Deeley, R. G. (2000) J. Biol. Chem. 275, 13098-13108; Hou, Y., Cui, L., Riordan, J. R., and Chang, X. (2000) J. Biol. Chem. 275, 20280-20287) indicate that intact ATP is observed bound at NBD1, whereas trapping of the ATP hydrolysis product, ADP, occurs predominantly at NBD2 and that trapping of ADP at NBD2 enhances ATP binding at NBD1 severalfold. This suggested transmission of a positive allosteric interaction from NBD2 to NBD1. To assess whether ATP binding at NBD1 can enhance the trapping of ADP at NBD2, photoaffinity labeling experiments with [alpha-(32)P]8-N(3)ADP were performed and revealed that when presented with this compound labeling of MRP1 occurred at both NBDs. However, upon addition of ATP, this labeling was enhanced 4-fold mainly at NBD2. Furthermore, the nonhydrolyzable ATP analogue, 5'-adenylylimidodiphosphate (AMP-PNP), bound preferentially to NBD1, but upon addition of a low concentration of 8-N(3)ATP, the binding at NBD2 increased severalfold. This suggested that the positive allosteric stimulation from NBD1 actually involves an increase in ATP binding at NBD2 and hydrolysis there leading to the trapping of ADP. Mutations of Walker A or B motifs in either NBD greatly reduced their ability to be labeled by [alpha-(32)P]8-N(3)ADP as well as by either [alpha-(32)P]- or [gamma-(32)P]8-N(3)ATP (Hou et al. (2000), see above). These mutations also strongly diminished the enhancement by ATP of [alpha-(32)P]8-N(3)ADP labeling and the transport activity of the protein. Taken together, these results demonstrate directly that events at NBD1 positively influence those at NBD2. The interactions between the two asymmetric NBDs of MRP1 protein may enhance the catalytic efficiency of the MRP1 protein and hence of its ATP-dependent transport of conjugated anions out of cells.

Highlights

  • This paper is available on line at http://www.jbc.org hydrolysis product, ADP, occurring primarily at NBD2 [1, 2, 30]

  • Photolabeling of MRP1 with [␣-32P]8-N3ADP—We first determined if the vanadate trapping of [␣-32P]8-N3ADP by MRP1 that occurs after hydrolysis of [␣-32P]8-N3ATP [1, 2] can be achieved by exposing membranes containing the protein to the labeled and derivatized nucleoside diphosphate directly

  • In a previous study we had found that the trapping of N3ADP at NBD2 of MRP1 promoted the binding of the nucleoside triphosphate at NBD1 [2]

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Summary

The abbreviations used are

P-gp, P-glycoprotein; MRP1, multidrug resistance protein; NBD, nucleotide-binding domain; TPCK, L-1-tosylamido-2-phenylethyl chloromethyl ketone; 8-N3ADP, 8-azidoadenosine 5Ј-diphosphate; 8-N3ATP, 8-azidoadenosine 5Ј-triphosphate; AMPPNP, 5Ј-adenylylimidodiphosphate; NTP, nucleoside triphosphate; NDP, nucleoside diphosphate. We have found that [␣-32P]-8N3ADP labels NBD2 to a much greater extent than NBD1 This labeling by the nucleoside diphosphate was enhanced 4-fold by a low concentration of ATP. It appears that binding of ATP at NBD1 promotes the association of ADP with NBD2. NTP interaction with NBD1 consistently increased binding of NTP or NDP at NBD2, reflecting a positive allosteric action of NBD1 on NBD2

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