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Martinez-Gardeazabal, J.

Publications and source records attributed to Martinez-Gardeazabal, J..

4 recordsLinked to original sources

Synthesis and pharmacological characterization of UVI3502, a novel cannabinoid receptor 1 (CB1) antagonist/inverse agonist

The endocannabinoid (eCB) system regulates several brain functions and is implicated in neurological disorders. The pharmacological blockade of cannabinoid receptors has a therapeutic potential for various cognitive deficits, but also produces severe psychiatric side effects. Hence, new cannabinoid compounds that potentiate therapeutic effects, while minimizing toxicity, are required. In this study, we synthesized and characterized a novel antagonist/inverse agonist of CB1 receptors. UVI3502 showed affinity for two [3H]CP55,940 binding sites (IC50Hi 0.47 {+/-} 1.94 nM and IC50Lo 1470 {+/-} 1.80 nM). Subsequent binding assays performed in CB1 and CB2 overexpressing membranes determined that the low affinity binding site corresponded to CB1, but the high-affinity binding site of UVI3502 did not correspond to CB2 and the possibility of it corresponding to GPR55 was analyzed. The affinity of UVI3502 for CB1 receptors was further confirmed with neuroanatomical specificity by autoradiography in key brain areas, in which functional [35S]GTP{gamma}S assays demonstrated that UVI3502 behaved as an antagonist/inverse agonist of CB1 receptors, blocking the stimulation evoked by potent cannabinoid receptor agonist CP55,940 and decreasing basal [35S]GTP{gamma}S binding. The in silico characterization of the binding to CB1 receptor through molecular docking and molecular dynamics suggests that this activity is explained by the planar and rigid structure of UVI3502, which is optimal for interactions with the inactive state of the receptor. These results indicate that UVI3502 is a novel antagonist/inverse agonist of CB1 receptors, making it a compelling candidate for pharmacologically blocking cannabinoid receptors in the central nervous system. Significance StatementUVI3502 is a novel antagonist/inverse agonist of CB1 receptors, with almost no affinity for CB2 receptors and an additional high-affinity binding site for a third, cannabinoid-like receptor, potentially GPR55. In relevant brain areas for learning and memory processes with a high expression of CB1, UVI3502 blocks the stimulation evoked by the cannabinoid receptor agonist CP55,940, rendering it as an interesting compound for the pharmacological blockade of cannabinoid receptors in the central nervous system.

pharmacology and toxicology↗

Cortical lipids containing choline mediate cannabinoid-induced cognitive improvement

Recent research connecting choline-containing lipids to basal forebrain cholinergic neurons (BFCN) degeneration in neuropathological states highlights a challenge for balancing lipid integrity with optimal acetylcholine (ACh) levels. Warranting an adequate choline source to maintain ACh levels in this pathway is crucial for preserving memory. The endocannabinoid (eCB) system plays a role in modulating learning and memory processes controlled by cholinergic neurotransmission. Consequently, we propose that activation of this system is neuroprotective against cholinergic degeneration. In the present study, we investigated the neuroprotective effect of a subchronic treatment with the CB1 cannabinoid agonist, WIN55,212-2, using both ex vivo and in vivo 192IgG-Saporin models of specific cholinergic damage. Degeneration of baso-cortical cholinergic pathways induced memory deficits and a downregulation of saturated and mono-unsaturated lysophosphatidylcholines (LPC) cortical levels. WIN55,212-2 not only restored memory deficits but also increased cortical ACh levels and modified cortical choline-containing lipids such as sphingomyelins (SM) and LPCs, which are essential for correct memory functioning, in lesioned animals. Given these results, we propose that WIN55,212-2 generates an alternative choline source through the breakdown of SMs, which is enough to increase cortical ACh levels and LPCs. These findings suggest that modification of choline-containing lipids by the activation of CB1 receptors is a promising therapy for dementia associated with cholinergic dysfunction, such as in Alzheimers disease (AD).

neuroscience↗

Cell lipotypes localization in brain by mass spectrometry imaging

The study investigates brain lipid super-specialisation by defining characteristic spectral lipotypic profiles for the five primary cerebral cell-types. Utilizing a computational approach, the research visualizes the anatomical distribution of these profiles with high spatial resolution in brain tissues. This method unveils cellular stereotypic lipidic signatures within the CNS, providing a new framework for exploring the physiological roles of lipids in diverse cell-types present in brain or in any other tissue.

neuroscience↗

Localization of S1P1 Receptor Signaling in the rat, mouse and human Central Nervous System

Some specific lipid molecules present in the brain are signaling molecules at the intracellular compartments or behaving as neurotransmitters or neuromodulators of other systems, binding to specific G protein-coupled receptors (GPCR) for neurolipids. One of these receptors is the sphingosine 1-phosphate receptor subtype 1, coupled to Gi/o-proteins and involved in cell proliferation, growth or neuroprotection. Thus, an interesting target for neurodegenerative diseases, such as Alzheimers. The present study compares the human cerebral distribution of the activity mediated by S1P1 receptor with the that in the brain of rodent experimental models, rat and mice by functional autoradiography, measuring the [35S]GTP{gamma}S binding stimulated by the S1P1 receptor selective agonist CYM-5442 to get the anatomy of the S1P1 receptor activity. The S1P1 receptor-mediated activity is, together with that of the CB1 cannabinoid receptor, one of the highest recorded for any GPCR in most of the grey matter areas of the brain, reaching up to 50%-500% over basal, depending on the agonist and brain area. The S1P1 receptor signaling is very relevant in those areas that regulate learning and memory processes, such as the basal forebrain, but also in others involved in control of motor processes or nociception e.g. basal ganglia. The results also reveal that the rat would be a preferable experimental model to extrapolate for the S1P1 receptor-mediated responses in human brain.

pharmacology and toxicology↗