Changes in phospholipase D isoform activity and expression in multidrug-resistant human cancer cells

G Fiucci1, M Czarny, Y Lavie

  • 1Department of Biological Regulation, Weizmann Institute of Science, Rehovot, Israel.

Insights

Multidrug resistance (MDR) in cancer cells involves increased phospholipase D (PLD) activity, specifically PLD2, within caveolae and lipid-rich membranes. This finding offers new insights into chemotherapy failure mechanisms.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Oncology

Background:

  • Multidrug resistance (MDR) is a primary reason for chemotherapy failure in cancer.
  • MDR is linked to drug transporter expression (e.g., P-glycoprotein) and altered cell membrane properties.
  • Previous research indicated MDR correlates with increased caveolin expression and caveolae density.

Purpose of the Study:

  • To investigate the role of phospholipase D (PLD) in multidrug-resistant (MDR) human cancer cells.
  • To determine if PLD activity and its isoforms are altered in MDR cancer cells, particularly in caveolae and detergent-insoluble glycolipid-rich membranes (DIGs).

Main Methods:

  • Fractionation of cell lysates from MDR and drug-sensitive cancer cell lines (HT-29-MDR, MCF-7 AdrR) using sucrose density gradients.
  • Assay of PLD activity in different membrane fractions.
  • Identification of PLD isoforms (PLD1, PLD2) using specific antibodies and Northern blot analysis for mRNA levels.
  • In vivo experiments to assess PLD activation.

Main Results:

  • PLD activity was significantly enriched (4- to 6-fold higher) in low-density fractions containing DIGs and caveolar membranes from MDR cells.
  • PLD2 was identified as the predominant PLD isoform in these DIGs and caveolar membranes.
  • PLD2 mRNA levels were elevated in MDR cells, while PLD1 mRNA was unchanged or reduced.
  • PLD activation by phorbol esters was potentiated in MDR cells.

Conclusions:

  • Multidrug resistance in cancer is associated with increased PLD2 activity within DIGs and caveolar membranes.
  • These findings suggest a potential role for PLD2 in the mechanisms of MDR.
  • Targeting PLD2 in caveolae may offer a novel strategy to overcome chemotherapy resistance.