Upregulation of caveolin in multidrug resistant cancer cells: functional implications
Y Lavie1, G Fiucci, M Liscovitch
1Department of Biological Regulation, Weizmann Institute of Science, Rehovot 76100, Israel.
Abstract:
Multidrug resistance (MDR) is a multifactorial process that involves elevated expression of drug transporters as well as additional biochemical changes that contribute to the drug resistant phenotype. Here we review recent results indicating the upregulation of constituents of rafts and caveolae, including glucosylceramide, cholesterol and caveolin-1, in MDR cells. Accordingly, the number of plasma membrane caveolae is greatly increased in MDR cells. The relationship between caveolin and MDR may be linked to the function of caveolin-1 in mediating cholesterol efflux, a pathway that we hypothesized to facilitate the delivery of drugs from intracellular compartments to plasma membrane resident drug transporters. An additional link seems to exist between the upregulation of GlcCer synthase and attenuation of ceramide-mediated apoptotic signaling. These adaptations may promote cell survival during chemotherapy and, hence, would be positively selected during cell exposure to cytotoxic drugs. However, the overexpression of caveolin-1, an oncosuppressive protein, may also reverse or attenuate important aspects of the phenotypic transformation of MDR cells. The molecular mechanisms by which caveolin-1 exerts its effects on cell proliferation, cell survival, and multidrug resistance remain to be fully elucidated.
Insights
Multidrug resistance (MDR) involves increased drug transporters and biochemical changes. Upregulation of caveolae components like caveolin-1 in MDR cells may impact drug efflux and cell survival.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Multidrug resistance (MDR) is a complex cellular phenotype.
- MDR involves elevated drug transporters and other biochemical alterations.
- Constituents of membrane rafts and caveolae are implicated in MDR.
Purpose of the Study:
- To review recent findings on the role of caveolae components in MDR.
- To explore the link between caveolin-1, cholesterol efflux, and drug transport.
- To investigate the connection between GlcCer synthase, apoptosis, and MDR.
Main Methods:
- Literature review of recent studies on MDR.
- Analysis of molecular changes in MDR cells, including protein and lipid expression.
- Hypothesizing mechanisms linking caveolae function to drug resistance and cell survival.
Main Results:
- MDR cells exhibit upregulation of glucosylceramide, cholesterol, and caveolin-1.
- Increased numbers of plasma membrane caveolae are observed in MDR cells.
- Caveolin-1's role in cholesterol efflux may facilitate drug delivery to transporters.
- Upregulation of GlcCer synthase may attenuate ceramide-induced apoptosis.
Conclusions:
- Adaptations in caveolae components may promote cell survival under chemotherapy.
- Caveolin-1, despite being oncosuppressive, may modulate MDR phenotypes.
- Further research is needed to fully elucidate caveolin-1's mechanisms in MDR.
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