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Anticancer activity of anandamide in human cutaneous melanoma cells
Barbara Adinolfi1, Antonella Romanini, Alessia Vanni
1Department of Pharmacy, University of Pisa, Via Bonanno 6, 56100 Pisa, Italy.
Abstract:
Cannabinoids are implicated in the control of cell proliferation, but little is known about the role of the endocannabinoid system in human malignant melanoma. This study was aimed at characterizing the in vitro antitumor activity of anandamide (AEA) in A375 melanoma cells. The mRNA expression of genes that code for proteins involved in the metabolism and in the mechanism of AEA action was assessed by RT-PCR. Cell viability was tested using WST-1 assay and the apoptotic cell death was determined by measuring caspase 3/7 activities. A375 cells express high levels of fatty acid amide hydrolase (FAAH), cyclooxygenase (COX)-2, cannabinoid receptor 1 (CB1), transient receptor potential cation channel subfamily V member 1 (TRPV1) and G-protein-coupled receptor 55 (GPR55) genes. AEA induced a concentration-dependent cytotoxicity with an IC50 of 5.8 ± 0.7 µM and such an effect was associated to a caspase-dependent apoptotic pathway. AEA cytotoxicity was potentiated by FAAH inhibition (2-fold increase, p<0.05) and mitigated by COX-2 or lipoxygenase (LOX) inhibition (5- and 3-fold decrease, respectively; p<0.01). Blocking CB1 receptors partially decreased AEA cytotoxicity, whereas selective antagonism on the TRPV1 barely affected the mechanism of AEA action. Finally, methyl-β-cyclodextrin, a membrane cholesterol depletory, completely reversed the cytotoxicity induced by the selective GPR55 agonist, O-1602, and AEA. Overall, these findings demonstrate that AEA induces cytotoxicity against human melanoma cells in the micromolar range of concentrations through a complex mechanism, which involves COX-2 and LOX-derived product synthesis and CB1 activation. Lipid raft modulation, probably linked to GPR55 activation, might also have a role.
Insights
Anandamide (AEA) shows anti-cancer effects on human melanoma cells by inducing apoptosis. Its cytotoxicity involves cannabinoid receptor 1 (CB1) and lipid raft modulation, offering new therapeutic insights.
Area of Science:
- Biochemistry
- Pharmacology
- Oncology
Background:
- Cannabinoids influence cell proliferation, but their role in human malignant melanoma is not fully understood.
- The endocannabinoid system's specific mechanisms in melanoma require further elucidation.
Purpose of the Study:
- To investigate the in vitro antitumor activity of anandamide (AEA) in A375 human melanoma cells.
- To characterize the molecular pathways mediating AEA's cytotoxic effects.
Main Methods:
- Assessed mRNA expression of AEA metabolism and action-related genes using RT-PCR.
- Evaluated cell viability via WST-1 assay and apoptosis using caspase 3/7 activity.
- Investigated the impact of inhibiting fatty acid amide hydrolase (FAAH), cyclooxygenase (COX)-2, lipoxygenase (LOX), cannabinoid receptor 1 (CB1), and transient receptor potential cation channel subfamily V member 1 (TRPV1).
Main Results:
- A375 cells express high levels of FAAH, COX-2, CB1, TRPV1, and G-protein-coupled receptor 55 (GPR55).
- AEA induced concentration-dependent cytotoxicity (IC50 = 5.8 ± 0.7 µM) via a caspase-dependent apoptotic pathway.
- AEA cytotoxicity was enhanced by FAAH inhibition and reduced by COX-2 or LOX inhibition, with partial reduction upon CB1 receptor blockade.
- GPR55 activation and AEA cytotoxicity were reversed by methyl-β-cyclodextrin, indicating a role for lipid raft modulation.
Conclusions:
- Anandamide (AEA) exhibits significant cytotoxicity against human melanoma cells at micromolar concentrations.
- AEA's mechanism involves COX-2 and LOX-derived product synthesis and CB1 receptor activation.
- Lipid raft modulation, potentially through GPR55, may also contribute to AEA's antitumor effects in melanoma.
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