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Fluorescence-Based Measurements of Phosphatidylserine/Phosphatidylinositol 4-Phosphate Exchange Between Membranes
Published on: March 14, 2021
Involvement of lipid rafts in the localization and dysfunction effect of the antitumor ether phospholipid edelfosine
F Mollinedo1, M Fernández, V Hornillos
1Centro de Investigación del Cáncer, Instituto de Biología Molecular y Celular del Cáncer, CSIC-Universidad de Salamanca, Campus Miguel de Unamuno, E-37007 Salamanca, Spain. fmollin@usal.es
Abstract:
Lipid rafts and mitochondria are promising targets in cancer therapy. The synthetic antitumor alkyl-lysophospholipid analog edelfosine (1-O-octadecyl-2-O-methyl-rac-glycero-3-phosphocholine) has been reported to target lipid rafts. Here, we have found that edelfosine induced loss of mitochondrial membrane potential and apoptosis in human cervical carcinoma HeLa cells, both responses being abrogated by Bcl-x(L) overexpression. We synthesized a number of new fluorescent edelfosine analogs, which preserved the proapoptotic activity of the parent drug, and colocalized with mitochondria in HeLa cells. Edelfosine induced swelling in isolated mitochondria, indicating an increase in mitochondrial membrane permeability. This mitochondrial swelling was independent of reactive oxygen species generation. A structurally related inactive analog was unable to promote mitochondrial swelling, highlighting the importance of edelfosine molecular structure in its effect on mitochondria. Raft disruption inhibited mitochondrial localization of the drug in cells and edelfosine-induced swelling in isolated mitochondria. Edelfosine promoted a redistribution of lipid rafts from the plasma membrane to mitochondria, suggesting a raft-mediated link between plasma membrane and mitochondria. Our data suggest that direct interaction of edelfosine with mitochondria eventually leads to mitochondrial dysfunction and apoptosis. These observations unveil a new framework in cancer chemotherapy that involves a link between lipid rafts and mitochondria in the mechanism of action of an antitumor drug, thus opening new avenues for cancer treatment.
Insights
Edelfosine, an antitumor drug, targets lipid rafts and mitochondria, inducing apoptosis in cancer cells. This research reveals a novel link between lipid rafts and mitochondria in cancer therapy, opening new treatment avenues.
Area of Science:
- Biochemistry
- Cell Biology
- Cancer Research
Background:
- Lipid rafts and mitochondria are key targets in cancer therapy.
- Edelfosine (alkyl-lysophospholipid analog) is known to target lipid rafts.
Purpose of the Study:
- To investigate the mechanism of action of edelfosine on mitochondria and its role in apoptosis.
- To explore the link between lipid rafts and mitochondria in edelfosine's anticancer effects.
Main Methods:
- Synthesis of fluorescent edelfosine analogs.
- Assay of mitochondrial membrane potential and apoptosis in HeLa cells.
- Studies on isolated mitochondria and lipid raft disruption.
Main Results:
- Edelfosine induced mitochondrial membrane potential loss and apoptosis, abrogated by Bcl-x(L).
- Fluorescent analogs localized to mitochondria and induced apoptosis.
- Edelfosine caused mitochondrial swelling, independent of ROS, and redistributed lipid rafts to mitochondria.
Conclusions:
- Edelfosine directly interacts with mitochondria, leading to dysfunction and apoptosis.
- A raft-mediated link exists between plasma membrane and mitochondria in edelfosine's action.
- This study offers a new framework for cancer chemotherapy targeting lipid rafts and mitochondria.
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