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Published on: May 19, 2016
Lipid raft modulation inhibits NSCLC cell migration through delocalization of the focal adhesion complex
Jeong Hee Jeon1, Se Kyu Kim, Hyung Jung Kim
1Brain Korea 21 Project for Medical Sciences, Yonsei University College of Medicine, Seoul, Republic of Korea.
Abstract:
Lipid raft, a specialized membrane structure enriched with cholesterol and glycosphingolipid, contains molecules that convey environmental stimuli to the intracellular systems. Authors investigated the effects of raft cholesterol depletion on non-small cell lung cancer (NSCLC) cell migration. Incubation of NSCLC cells in media containing lovastatin resulted in inhibition of cell migration by 63.1-83.3%, whereas raft cholesterol depletion with successive treatment using methyl-beta cyclodextrin (MbetaCD) followed by lovastatin further suppressed their migration by 35.0-57.8%. Raft cholesterol depletion partially inhibited EGF-induced phosphorylation of EGFR and FAK, however, no change was observed in other molecules comprising focal adhesion complex. It resulted in disappearance of filopodia, inhibition of EGF-induced pY397 FAK aggregation, and its destabilization. Cholesterol depletion inhibited phosphorylation of Src on Y416 in the detergent-insoluble fraction followed by decreased localization of total and pY397 FAK in the detergent-insoluble fraction. Minimal changes in these molecules were observed in the detergent-soluble fraction and interactions between FAK and other molecules of the focal adhesion complex were not influenced. Immunocytochemical analysis confirmed translocation of Src from the raft into cytoplasm and disappearance of EGF-induced membrane ruffling by raft cholesterol depletion. In cholesterol-depleted cells, EGF-induced phosphorylation of Src, Akt, and p44/42 in the detergent-insoluble fraction were inhibited whereas phosphorylation of GSK-3beta was unaffected. We conclude that raft cholesterol depletion inhibited NSCLC migration through inhibition of phosphorylation of raft associated Src and dislocation of molecules comprising focal adhesion complexes from raft rather than by inhibiting their recruitment to Src and interaction.
Insights
Cholesterol depletion from lipid rafts inhibits non-small cell lung cancer (NSCLC) cell migration by disrupting Src phosphorylation and focal adhesion complex localization. This finding offers potential therapeutic targets for NSCLC treatment.
Area of Science:
- Cell Biology
- Cancer Research
- Molecular Biology
Background:
- Lipid rafts are specialized membrane microdomains enriched in cholesterol and glycosphingolipids.
- These rafts play critical roles in signal transduction, including the regulation of cell migration.
- Non-small cell lung cancer (NSCLC) cell migration is a key process in tumor metastasis.
Purpose of the Study:
- To investigate the impact of lipid raft cholesterol depletion on NSCLC cell migration.
- To elucidate the molecular mechanisms underlying cholesterol depletion-induced inhibition of NSCLC cell migration.
Main Methods:
- NSCLC cells were treated with lovastatin and methyl-beta cyclodextrin (MbetaCD) to deplete raft cholesterol.
- Cell migration assays were performed to quantify the effects of cholesterol depletion.
- Western blotting and immunocytochemistry were used to analyze protein phosphorylation, localization, and interactions within focal adhesion complexes and raft-associated signaling pathways (EGFR, FAK, Src, Akt, p44/42).
Main Results:
- Cholesterol depletion significantly inhibited NSCLC cell migration.
- Raft cholesterol depletion reduced EGF-induced phosphorylation of EGFR, FAK, and Src in detergent-insoluble fractions, leading to filopodia disappearance and FAK aggregation inhibition.
- Src translocated from rafts to the cytoplasm, and focal adhesion complex molecules dislocated from rafts, without affecting their interactions.
Conclusions:
- Lipid raft cholesterol depletion effectively inhibits NSCLC cell migration.
- The mechanism involves the inhibition of raft-associated Src phosphorylation and the dislocation of focal adhesion complex molecules from rafts.
- Targeting raft cholesterol may represent a novel therapeutic strategy for NSCLC.
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