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Fluorescence-Based Measurements of Phosphatidylserine/Phosphatidylinositol 4-Phosphate Exchange Between Membranes
Published on: March 14, 2021
Changes in phospholipase D isoform activity and expression in multidrug-resistant human cancer cells
1Department of Biological Regulation, Weizmann Institute of Science, Rehovot, Israel.
Abstract:
Multidrug resistance (MDR) is a major cause of failure of cancer chemotherapy and is often associated with elevated expression of drug transporters such as P-glycoprotein (P-gp) in the cancer cells. MDR is, however, accompanied by additional biochemical changes including modifications of membrane composition and properties. We have shown that MDR is associated with a massive up-regulation of caveolin expression and an elevated surface density of caveolae. We report that phospholipase D (PLD), a constituent enzyme of caveolae and detergent-insoluble glycolipid-rich membranes (DIGs), is up-regulated in human MDR cancer cells. Lysates of HT-29-MDR human colon adenocarcinoma cells, MCF-7 AdrR human breast adenocarcinoma cells and the corresponding parental drug-sensitive cells, were fractionated on discontinuous sucrose density gradients. PLD activity was found to be enriched in low density fractions that contain DIGs and caveolar membranes, and the activity in these fractions was 4- to 6-fold higher in the MDR cells compared with the parental drug- sensitive cells. Utilizing specific antibodies to PLD1 and PLD2, the distribution of PLD isoforms along the gradient was determined and the PLD localized in DIGs and caveolar membranes has been identified as PLD2. Northern blot analysis of PLD1 and PLD2 mRNA levels has indicated that PLD2 mRNA is elevated in both HT-29-MDR and MCF-7 AdrR cells. PLD1 mRNA levels were either unchanged or reduced in the MDR cells. Finally, in vivo experiments have confirmed previous results showing that activation of PLD by phorbol esters is markedly potentiated in the MDR cells. We conclude that MDR is accompanied by an increase in PLD2 activity in DIGs and caveolar membranes.
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.
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