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1.
Front Chem ; 10: 858854, 2022.
Article En | MEDLINE | ID: mdl-35300384

Commendamide, or N-(3-hydroxypalmitoyl)-glycine 1a, is a gut microbiota-derived bioactive metabolite, structurally similar to long-chain N-acyl-amino acids which belong to the complex lipid signaling system known as endocannabinoidome and play important roles in mammals through activation of, inter alia, G-protein-coupled receptors (GPCRs). In this work, we describe a simple, green and economic method for the preparation of commendamide 1a, a GPCR G2A/132 agonist. The developed protocol is general and could also be applied to the synthesis of deuterated commendamide 1b, as well as to other minor microbiota-derived metabolites, such as the analog 2.

2.
Cells ; 10(9)2021 09 05.
Article En | MEDLINE | ID: mdl-34571971

The endocannabinoids 2-arachidonoyl-glycerol and N-arachidonoyl-ethanolamine are lipids regulating many physiological processes, notably inflammation. Endocannabinoid hydrolysis inhibitors are now being investigated as potential anti-inflammatory agents. In addition to 2-arachidonoyl-glycerol and N-arachidonoyl-ethanolamine, the endocannabinoidome also includes other monoacylglycerols and N-acyl-ethanolamines such as 1-linoleoyl-glycerol (1-LG) and N-linoleoyl-ethanolamine (LEA). By increasing monoacylglycerols and/or N-acyl-ethanolamine levels, endocannabinoid hydrolysis inhibitors will likely increase the levels of their metabolites. Herein, we investigated whether 1-LG and LEA were substrates for the 15-lipoxygenase pathway, given that both possess a 1Z,4Z-pentadiene motif, near their omega end. We thus assessed how human eosinophils and neutrophils biosynthesized the 15-lipoxygenase metabolites of 1-LG and LEA. Linoleic acid (LA), a well-documented substrate of 15-lipoxygenases, was used as positive control. N-13-hydroxy-octodecadienoyl-ethanolamine (13-HODE-EA) and 13-hydroxy-octodecadienoyl-glycerol (13-HODE-G), the 15-lipoxygenase metabolites of LEA and 1-LG, were synthesized using Novozym 435 and soybean lipoxygenase. Eosinophils, which express the 15-lipoxygenase-1, metabolized LA, 1-LG, and LEA into their 13-hydroxy derivatives. This was almost complete after five minutes. Substrate preference of eosinophils was LA > LEA > 1-LG in presence of 13-HODE-G hydrolysis inhibition with methyl-arachidonoyl-fluorophosphonate. Human neutrophils also metabolized LA, 1-LG, and LEA into their 13-hydroxy derivatives. This was maximal after 15-30 s. Substrate preference was LA ≫ 1-LG > LEA. Importantly, 13-HODE-G was found in humans and mouse tissue samples. In conclusion, our data show that human eosinophils and neutrophils metabolize 1-LG and LEA into the novel endogenous 15-lipoxygenase metabolites 13-HODE-G and 13-HODE-EA. The full biological importance of 13-HODE-G and 13-HODE-EA remains to be explored.


Arachidonate 15-Lipoxygenase/metabolism , Eosinophils/enzymology , Linoleic Acids/metabolism , Neutrophils/enzymology , Animals , Humans , Kinetics , Mice , Molecular Docking Simulation , Peroxisome Proliferator-Activated Receptors/metabolism , Protein Binding , Receptors, Cannabinoid/metabolism , Substrate Specificity , TRPV Cation Channels/metabolism
3.
Article En | MEDLINE | ID: mdl-33915294

N-Arachidonoyl-ethanolamine (AEA) is an endocannabinoid (eCB) and endogenous lipid mimicking many of the effects of Δ9-tetrahydrocannabinol, notably on brain functions, appetite, pain and inflammation. The eCBs and eCB-like compounds contain fatty acids, the main classes being the monoacylglycerols and the N-acyl-ethanolamines (NAEs). Thus, each long chain fatty acid likely exists under the form of a monoacylglycerol and NAE, as it is the case for arachidonic acid (AA) and linoleic acid (LA). Following their biosynthesis, AA and AEA can be further metabolized into additional eicosanoids, notably by the 15-lipoxygenase pathway. Thus, we postulated that NAEs possessing a 1Z,4Z-pentadiene motif, near their omega end, would be transformed into their 15-lipoxygenase metabolites. As a proof of concept, we investigated N-linoleoyl-ethanolamine (LAE). We successfully synthesized LEA and LEA-d4 as well as their 15-lipoxygenase-derived derivatives, namely 13-hydroxy-9Z,11E-octadecadienoyl-N-ethanolamine (13-HODE-EA) and 13-HODE-EA-d4, using Novozyme 435 immobilized on acrylic resin and soybean lipoxygenase respectively. We also show that both human 15-lipoxygenase-1 and -2 can biosynthesize 13-HODE-EA. Co-incubation of LEA and LA with either human 15-lipoxygenase led to the biosynthesis of 13-HODE-EA and 13-HODE in a ratio equal to or greater than 3:1, indicating that LEA is preferred to LA by these enzymes. Finally, we show that 13-HODE-EA is found in human saliva and skin and is a weak although selective TRPV1 agonist. The full biological importance of 13-HODE-EA remains to be explored.


Arachidonate 15-Lipoxygenase/metabolism , Ethanolamine/metabolism , Linoleic Acids/chemical synthesis , Saliva/metabolism , Skin/metabolism , Chemistry Techniques, Synthetic , Humans , Linoleic Acids/metabolism , Linoleic Acids/pharmacology , Molecular Targeted Therapy
4.
Cells ; 10(2)2021 02 20.
Article En | MEDLINE | ID: mdl-33672574

Palmitoylethanolamide (PEA) is an endogenous anti-inflammatory lipid mediator and a widely used nutraceutical. In this study, we designed, realized, and tested a drug-carrier conjugate between PEA (the active drug) and glucuronic acid (the carrier). The conjugate, named GLUPEA, was characterized for its capability of increasing PEA levels and exerting anti-inflammatory activity both in vitro and in vivo. GLUPEA treatment, compared to the same concentration of PEA, resulted in higher cellular amounts of PEA and the endocannabinoid 2-arachidonoyl glycerol (2-AG), and increased 2-AG-induced transient receptor potential vanilloid type 1 (TRPV1) channel desensitization to capsaicin. GLUPEA inhibited pro-inflammatory monocyte chemoattractant protein 2 (MCP-2) release from stimulated keratinocytes, and it was almost as efficacious as ultra-micronized PEA at reducing colitis in dinitrobenzene sulfonic acid (DNBS)-injected mice when using the same dose. GLUPEA is a novel pro-drug able to efficiently mimic the anti-inflammatory and endocannabinoid enhancing actions of PEA.


Amides/pharmacology , Drug Delivery Systems , Ethanolamines/pharmacology , Glucuronic Acid/pharmacology , Palmitic Acids/pharmacology , Amides/chemistry , Amides/therapeutic use , Animals , Arachidonic Acids/metabolism , Calcium/metabolism , Chemokine CCL8/metabolism , Colitis/chemically induced , Colitis/drug therapy , Colon/drug effects , Colon/pathology , Dinitrofluorobenzene/analogs & derivatives , Endocannabinoids/metabolism , Ethanolamines/chemistry , Ethanolamines/therapeutic use , Glucuronic Acid/chemistry , Glucuronic Acid/therapeutic use , Glycerides/metabolism , HEK293 Cells , HaCaT Cells , Humans , Ion Channel Gating/drug effects , Keratinocytes/drug effects , Keratinocytes/metabolism , Male , Mice, Inbred ICR , Models, Biological , Palmitic Acids/chemistry , Palmitic Acids/therapeutic use , Peroxidase/metabolism , Poly I-C/pharmacology , TRPV Cation Channels/metabolism
5.
Bioorg Chem ; 105: 104337, 2020 12.
Article En | MEDLINE | ID: mdl-33113408

CXCR4 chemokine receptor represents an attractive pharmacological target due to its key role in cancer metastasis and inflammatory diseases. Starting from our previously-developed pharmacophoric model, we applied a combined computational and experimental approach that led to the identification of the hydantoin alkaloids parazoanthines, isolated from the Mediterranean Sea anemone Parazoanthus axinellae, as novel CXCR4 antagonists. Parazoanthine analogues were then synthesized to evaluate the contribution of functional groups to the overall activity. Within the panel of synthesized natural and non-natural parazoanthines, parazoanthine-B was identified as the most potent CXCR4 antagonist with an IC50 value of 9.3 nM, even though all the investigated compounds were able to antagonize in vitro the down-stream effects of CXC12, albeit with variable potency and efficacy. The results of our study strongly support this class of small molecules as potent CXCR4 antagonists in tumoral pathologies characterized by an overexpression of this receptor. Furthermore, their structure-activity relationships allowed the optimization of our pharmacophoric model, useful for large-scale in silico screening.


Alkaloids/chemistry , Anthozoa/chemistry , Receptors, CXCR4/antagonists & inhibitors , Alkaloids/pharmacology , Animals , Anthozoa/metabolism , Cloning, Molecular , Clustered Regularly Interspaced Short Palindromic Repeats , Drug Discovery , Humans , Hydantoins , Molecular Docking Simulation , Rats , Signal Transduction , Structure-Activity Relationship
6.
J Nat Prod ; 83(7): 2060-2065, 2020 07 24.
Article En | MEDLINE | ID: mdl-32649196

A simple synthesis of the major oxidized metabolites in mammalian tissues of (-)-Δ9-tetrahydrocannabivarin (THCV) (1) has been accomplished by kinetic studies of allylic oxidation using SeO2 on botanically derived THCV with the aim to yield primary and secondary allylic alcohols concurrently. This synthetic approach led to the preparation of numerous THCV derivatives, including two new compounds, 8α-hydroxy-Δ9-tetrahydrocannabivarin (2) and 8ß-hydroxy-Δ9-tetrahydrocannabivarin (3), and the known compounds 11-hydroxy-Δ9-tetrahydrocannabivarin (4) and Δ9-tetrahydrocannabivarin-11-oic acid (5), without affecting the C-10a stereogenic center in the natural precursor and without formation of tricyclic dibenzopyran derivatives. This simple synthetic methodology could be useful to investigate the pharmacological role of THCV metabolites at, among others, the endocannabinoid CB1 and CB2 receptors for which THCV reportedly acts as respectively a neutral antagonist and partial agonist.


Cannabinoids/chemical synthesis , Mammals/metabolism , Animals , Cannabinoids/metabolism , Spectrum Analysis/methods
7.
Carbohydr Res ; 424: 21-3, 2016 Apr 07.
Article En | MEDLINE | ID: mdl-26921607

The investigation is related to the development of a general strategy for the synthesis of glycolipids including analogs bearing polyunsaturated fatty acids. In particular, here we report exceptionally mild and selective conditions to remove acetate protecting groups from glyceroglycolipids by hydrazinolysis. Synthetic 1,2-O-di-arachidonoyl-3-O-ß-galactosyl-glycerol was used as representative of polyunsaturated ß-galactosyl-di-acyl-glycerols due to its reactivity under the conditions usually employed in literature.


Fatty Acids, Unsaturated/chemical synthesis , Glycerol/chemical synthesis , Glycolipids/chemical synthesis , Diglycerides/chemistry , Fatty Acids, Unsaturated/chemistry , Glycerol/chemistry , Glycolipids/chemistry
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