Role of the highly structured 5'-end region of MDR1 mRNA in P-glycoprotein expression

Rebecca A Randle1, Selina Raguz, Christopher F Higgins

  • 1MRC Clinical Sciences Centre, Imperial College Faculty of Medicine, Hammersmith Hospital Campus, Du Cane Road, London W12 0NN, UK.

Insights

Cytotoxic drugs induce multidrug resistance in acute myeloid leukemia by down-regulating the Akt pathway, blocking P-glycoprotein translation. This stress response is overcome by stochastic MDR1 mRNA translation, conferring drug resistance.

Area of Science:

  • Molecular Biology
  • Cancer Biology
  • Cellular Signaling

Background:

  • P-glycoprotein (MDR1 gene) overexpression causes multidrug resistance in acute myeloid leukemia.
  • Cytotoxic drugs up-regulate MDR1 mRNA but translationally block P-glycoprotein expression.

Purpose of the Study:

  • To elucidate the mechanism of translational block of P-glycoprotein under cytotoxic stress.
  • To investigate the role of the Akt signaling pathway and translational repressors in drug resistance.

Main Methods:

  • Analysis of Akt signaling pathway and 4E-BP phosphorylation in K562 cells.
  • Assessment of MDR1 mRNA 5'-UTR structure and its impact on reporter gene translation.
  • Manipulation of eIF4E availability and Akt activity using rapamycin, siRNA, and gene overexpression.

Main Results:

  • Cytotoxic drugs down-regulate Akt, leading to 4E-BP hypophosphorylation and reduced eIF4E availability.
  • The structured 5'-end of MDR1 mRNA hinders translation under stress by competing for limited eIF4E.
  • Stochastic MDR1 mRNA upregulation allows translation of P-glycoprotein in a subset of cells, conferring resistance.

Conclusions:

  • Drug-induced translational repression of P-glycoprotein is mediated by the Akt/4E-BP/eIF4E pathway.
  • A subpopulation of cells acquires drug resistance through stochastic MDR1 translation and P-glycoprotein expression.
  • This mechanism highlights a feed-forward loop for overcoming stress-induced translational repression.

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