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2.
Science ; 334(6057): 809-13, 2011 Nov 11.
Article de Anglais | MEDLINE | ID: mdl-22021672

RÉSUMÉ

Phospholipase A(2)(PLA(2)) enzymes are considered the primary source of arachidonic acid for cyclooxygenase (COX)-mediated biosynthesis of prostaglandins. Here, we show that a distinct pathway exists in brain, where monoacylglycerol lipase (MAGL) hydrolyzes the endocannabinoid 2-arachidonoylglycerol to generate a major arachidonate precursor pool for neuroinflammatory prostaglandins. MAGL-disrupted animals show neuroprotection in a parkinsonian mouse model. These animals are spared the hemorrhaging caused by COX inhibitors in the gut, where prostaglandins are instead regulated by cytosolic PLA(2). These findings identify MAGL as a distinct metabolic node that couples endocannabinoid to prostaglandin signaling networks in the nervous system and suggest that inhibition of this enzyme may be a new and potentially safer way to suppress the proinflammatory cascades that underlie neurodegenerative disorders.


Sujet(s)
Acides arachidoniques/métabolisme , Encéphale/métabolisme , Modulateurs des récepteurs de cannabinoïdes/métabolisme , Endocannabinoïdes , Glycérides/métabolisme , Inflammation/métabolisme , Acylglycerol lipase/métabolisme , Prostaglandines/métabolisme , Animaux , Acide arachidonique/métabolisme , Benzodioxoles/pharmacologie , Encéphale/effets des médicaments et des substances chimiques , Encéphale/anatomopathologie , Cyclooxygenase 1/métabolisme , Cytokines/métabolisme , Éicosanoïdes/métabolisme , Antienzymes/pharmacologie , Hydrolyse , Inflammation/anatomopathologie , Médiateurs de l'inflammation/pharmacologie , Lipopolysaccharides/pharmacologie , Foie/métabolisme , Poumon/métabolisme , Métabolomique , Souris , Souris de lignée C57BL , Acylglycerol lipase/antagonistes et inhibiteurs , Acylglycerol lipase/génétique , Neuroprotecteurs/pharmacologie , Syndromes parkinsoniens/métabolisme , Syndromes parkinsoniens/anatomopathologie , Phospholipases A2/génétique , Phospholipases A2/métabolisme , Pipéridines/pharmacologie , Prostaglandines/biosynthèse , Transduction du signal
3.
Chem Biol ; 18(7): 846-56, 2011 Jul 29.
Article de Anglais | MEDLINE | ID: mdl-21802006

RÉSUMÉ

Cancer cells couple heightened lipogenesis with lipolysis to produce fatty acid networks that support malignancy. Monoacylglycerol lipase (MAGL) plays a principal role in this process by converting monoglycerides, including the endocannabinoid 2-arachidonoylglycerol (2-AG), to free fatty acids. Here, we show that MAGL is elevated in androgen-independent versus androgen-dependent human prostate cancer cell lines, and that pharmacological or RNA-interference disruption of this enzyme impairs prostate cancer aggressiveness. These effects were partially reversed by treatment with fatty acids or a cannabinoid receptor-1 (CB1) antagonist, and fully reversed by cotreatment with both agents. We further show that MAGL is part of a gene signature correlated with epithelial-to-mesenchymal transition and the stem-like properties of cancer cells, supporting a role for this enzyme in protumorigenic metabolism that, for prostate cancer, involves the dual control of endocannabinoid and fatty acid pathways.


Sujet(s)
Modulateurs des récepteurs de cannabinoïdes/métabolisme , Endocannabinoïdes , Acides gras/métabolisme , Acylglycerol lipase/métabolisme , Tumeurs de la prostate/enzymologie , Lignée cellulaire tumorale , Transition épithélio-mésenchymateuse , Analyse de profil d'expression de gènes , Régulation de l'expression des gènes tumoraux , Humains , Mâle , Acylglycerol lipase/antagonistes et inhibiteurs , Acylglycerol lipase/génétique , Cellules souches tumorales/enzymologie , Cellules souches tumorales/métabolisme , Tumeurs de la prostate/génétique , Tumeurs de la prostate/métabolisme , Interférence par ARN , Transduction du signal
4.
Bioorg Med Chem Lett ; 18(22): 5875-8, 2008 Nov 15.
Article de Anglais | MEDLINE | ID: mdl-18752948

RÉSUMÉ

The structure-activity relationships of organophosphorus (OP) and organosulfur compounds were examined in vitro and in vivo as inhibitors of mouse brain monoacylglycerol lipase (MAGL) hydrolysis of 2-arachidonoylglycerol (2-AG) and agonist binding at the CB1 receptor. Several compounds showed exceptional potency toward MAGL activity with IC(50) values of 0.1-10 nM in vitro and high inhibition at 10mg/kg intraperitoneally in mice. We find for the first time that MAGL activity is a major in vivo determinant of 2-AG and arachidonic acid levels not only in brain but also in spleen, lung, and liver. Apparent direct OP inhibition of CB1 agonist binding may be due instead to metabolic stabilization of 2-AG in brain membranes as the actual inhibitor.


Sujet(s)
Acide arachidonique/analyse , Acides arachidoniques/analyse , Encéphale/effets des médicaments et des substances chimiques , Glycérides/analyse , Acylglycerol lipase/antagonistes et inhibiteurs , Animaux , Acide arachidonique/métabolisme , Acides arachidoniques/métabolisme , Encéphale/enzymologie , Membrane cellulaire/effets des médicaments et des substances chimiques , Endocannabinoïdes , Glycérides/métabolisme , Concentration inhibitrice 50 , Souris , Structure moléculaire , Acylglycerol lipase/métabolisme , Composés organiques du phosphore/composition chimique , Composés organiques du phosphore/pharmacologie , Récepteur cannabinoïde de type CB1/métabolisme , Relation structure-activité , Composés du soufre/composition chimique , Composés du soufre/pharmacologie
5.
Nat Chem Biol ; 4(6): 373-8, 2008 Jun.
Article de Anglais | MEDLINE | ID: mdl-18438404

RÉSUMÉ

Delta(9)-tetrahydrocannabinol (THC), the psychoactive ingredient of marijuana, has useful medicinal properties but also undesirable side effects. The brain receptor for THC, CB(1), is also activated by the endogenous cannabinoids anandamide and 2-arachidonylglycerol (2-AG). Augmentation of endocannabinoid signaling by blockade of their metabolism may offer a more selective pharmacological approach compared with CB(1) agonists. Consistent with this premise, inhibitors of the anandamide-degrading enzyme fatty acid amide hydrolase (FAAH) produce analgesic and anxiolytic effects without cognitive defects. In contrast, we show that dual blockade of the endocannabinoid-degrading enzymes monoacylglycerol lipase (MAGL) and FAAH by selected organophosphorus agents leads to greater than ten-fold elevations in brain levels of both 2-AG and anandamide and to robust CB(1)-dependent behavioral effects that mirror those observed with CB(1) agonists. Arachidonic acid levels are decreased by the organophosphorus agents in amounts equivalent to elevations in 2-AG, which indicates that endocannabinoid and eicosanoid signaling pathways may be coordinately regulated in the brain.


Sujet(s)
Modulateurs des récepteurs de cannabinoïdes/métabolisme , Endocannabinoïdes , Composés organiques du phosphore/pharmacologie , Récepteur cannabinoïde de type CB1/agonistes , Amidohydrolases/antagonistes et inhibiteurs , Animaux , Acide arachidonique/analyse , Acides arachidoniques/analyse , Encéphale/effets des médicaments et des substances chimiques , Encéphale/enzymologie , Encéphale/métabolisme , Modulateurs des récepteurs de cannabinoïdes/antagonistes et inhibiteurs , Modulateurs des récepteurs de cannabinoïdes/composition chimique , Femelle , Glycérides/analyse , Mâle , Souris , Souris de lignée C57BL , Souris knockout , Conformation moléculaire , Acylglycerol lipase/antagonistes et inhibiteurs , Composés organiques du phosphore/composition chimique , Amides gras polyinsaturés N-alkylés/analyse , Récepteur cannabinoïde de type CB1/effets des médicaments et des substances chimiques , Récepteurs de cannabinoïdes/effets des médicaments et des substances chimiques , Transduction du signal/effets des médicaments et des substances chimiques , Transduction du signal/physiologie , Stéréoisomérie
6.
Toxicol Appl Pharmacol ; 228(1): 42-8, 2008 Apr 01.
Article de Anglais | MEDLINE | ID: mdl-18164358

RÉSUMÉ

Serine hydrolase KIAA1363 is an acetyl monoalkylglycerol ether (AcMAGE) hydrolase involved in tumor cell invasiveness. It is also an organophosphate (OP) insecticide-detoxifying enzyme. The key to understanding these dual properties was the use of KIAA1363 +/+ (wildtype) and -/- (gene deficient) mice to define the role of this enzyme in brain and other tissues and its effectiveness in vivo in reducing OP toxicity. KIAA1363 was the primary AcMAGE hydrolase in brain, lung, heart and kidney and was highly sensitive to inactivation by chlorpyrifos oxon (CPO) (IC50 2 nM) [the bioactivated metabolite of the major insecticide chlorpyrifos (CPF)]. Although there was no difference in hydrolysis product monoalkylglycerol ether (MAGE) levels in +/+ and -/- mouse brains in vivo, isopropyl dodecylfluorophosphonate (30 mg/kg) and CPF (100 mg/kg) resulted in 23-51% decrease in brain MAGE levels consistent with inhibition of AcMAGE hydrolase activity. On incubating +/+ and -/- brain membranes with AcMAGE and cytidine-5'-diphosphocholine, the absence of KIAA1363 activity dramatically increased de novo formation of platelet-activating factor (PAF) and lyso-PAF, signifying that metabolically-stabilized AcMAGE can be converted to this bioactive lipid in brain. On considering detoxification, KIAA1363 -/- mice were significantly more sensitive than +/+ mice to ip-administered CPF (100 mg/kg) and parathion (10 mg/kg) with increased tremoring and mortality that correlated for CPF with greater brain acetylcholinesterase inhibition. Docking AcMAGE and CPO in a KIAA1363 active site model showed similar positioning of their acetyl and trichloropyridinyl moieties, respectively. This study establishes the relevance of KIAA1363 in ether lipid metabolism and OP detoxification.


Sujet(s)
Encéphale/enzymologie , Inactivation métabolique/génétique , Métabolisme lipidique/génétique , Organophosphates/toxicité , Serine endopeptidases/génétique , Serine endopeptidases/physiologie , Acetylcholinesterase/métabolisme , Animaux , Chlorpyriphos/toxicité , Antienzymes/pharmacologie , Chromatographie gazeuse-spectrométrie de masse , Insecticides/toxicité , Souris , Souris de lignée C57BL , Souris knockout , Myocarde/enzymologie , Organophosphates/métabolisme , Parathion/toxicité , Facteur d'activation plaquettaire/métabolisme , Protéases à sérine , Sterol Esterase , Distribution tissulaire
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