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1.
Bioorg Med Chem ; 30: 115924, 2021 01 15.
Article in English | MEDLINE | ID: mdl-33333448

ABSTRACT

Histamine acts through four different receptors (H1R-H4R), the H3R and H4R being the most explored in the last years as drug targets. The H3R is a potential target to treat narcolepsy, Parkinson's disease, epilepsy, schizophrenia and several other CNS-related conditions, while H4R blockade leads to anti-inflammatory and immunomodulatory effects. Our group has been exploring the dihydrobenzofuranyl-piperazines (LINS01 series) as human H3R/H4R ligands as potential drug candidates. In the present study, a set of 12 compounds were synthesized from adequate (dihydro)benzofuran synthons through simple reactions with corresponding piperazines, giving moderate to high yields. Four compounds (1b, 1f, 1g and 1h) showed high hH3R affinity (pKi > 7), compound 1h being the most potent (pKi 8.4), and compound 1f showed the best efficiency (pKi 8.2, LE 0.53, LLE 5.85). BRET-based assays monitoring Gαi activity indicated that the compounds are potent antagonists. Only one compound (2c, pKi 7.1) presented high affinity for hH4R. In contrast to what was observed for hH3R, it showed partial agonist activity. Docking experiments indicated that bulky substituents occupy a hydrophobic pocket in hH3R, while the N-allyl group forms favorable interactions with hydrophobic residues in the TM2, 3 and 7, increasing the selectivity towards hH3R. Additionally, the importance of the indole NH in the interaction with Glu5.46 from hH4R was confirmed by the modeling results, explaining the affinity and agonistic activity of compound 2c. The data reported in this work represent important findings for the rational design of future compounds for hH3R and hH4R.


Subject(s)
Histamine Antagonists/pharmacology , Piperazines/pharmacology , Receptors, Histamine H3/metabolism , Receptors, Histamine H4/antagonists & inhibitors , Dose-Response Relationship, Drug , Histamine Antagonists/chemical synthesis , Histamine Antagonists/chemistry , Humans , Ligands , Models, Molecular , Molecular Structure , Piperazines/chemical synthesis , Piperazines/chemistry , Receptors, Histamine H4/metabolism , Structure-Activity Relationship
2.
Sci Rep ; 8(1): 12509, 2018 08 21.
Article in English | MEDLINE | ID: mdl-30131592

ABSTRACT

The dissociation behaviours of aripiprazole and cariprazine at the human D2 and D3 receptor are evaluated. A potential correlation between kinetics and in vivo profiles, especially cariprazine's action on negative symptoms in schizophrenia, is investigated. The binding kinetics of four ligands were indirectly evaluated. After the receptor preparations were pre-incubated with the unlabelled ligands, the dissociation was initiated with an excess of [3H]spiperone. Slow dissociation kinetics characterizes aripiprazole and cariprazine at the D2 receptor. At the D3 receptor, aripiprazole exhibits a slow monophasic dissociation, while cariprazine displays a rapid biphasic behaviour. Functional ß-arrestin assays and molecular dynamics simulations at the D3 receptor confirm a biphasic binding behaviour of cariprazine. This may influence its in vivo action, as the partial agonist could react rapidly to variations in the dopamine levels of schizophrenic patients and the ligand will not quantitatively dissociate from the receptor in one single step. With these findings novel agents may be developed that display rapid, biphasic dissociation from the D3R to further investigate this effect on in vivo profiles.


Subject(s)
Dopamine/pharmacology , Piperazines/pharmacology , Receptors, Dopamine D3/metabolism , Animals , Binding Sites , CHO Cells , Cricetulus , Dopamine/chemistry , Kinetics , Models, Molecular , Molecular Dynamics Simulation , Piperazines/chemistry , Protein Binding , Receptors, Dopamine D3/chemistry
3.
Chemosphere ; 193: 489-497, 2018 Feb.
Article in English | MEDLINE | ID: mdl-29156334

ABSTRACT

Presence of the antidepressant fluoxetine in different water bodies has raised significant concerns due to its detrimental effects on non-targeted organisms, especially on fish. When seeking for an appropriate technology able to remove fluoxetine residue from a complex water matrix, special attention needs to be paid to the elimination of the neurophysiological activity that eventually lies behind the noxious effects of the parent compound. Our aim was to probe the applicability of advanced oxidation techniques for this purpose using in situ generated free radical system based on OH-initiated peroxyl radical-mediated processes. By performing product analysis experiments along with quantum chemical calculations, the most probable reaction paths were analyzed including aromatic hydroxylation, defluorination, O-dealkylation and C-dealkylation. The candidates for neurophysiological activity were further investigated by molecular docking. The hydroxylated derivatives are well accommodated in the binding pocket of the corresponding protein, suggesting that these compounds may retain the activity of the parent compound. From a worst-case perspective, we suggest that prolonged treatment needs to be applied to further transform hydroxylated derivatives.


Subject(s)
Antidepressive Agents/chemistry , Fluoxetine/chemistry , Neurophysiological Monitoring , Animals , Humans , Hydroxylation , Molecular Docking Simulation , Oxidation-Reduction , Peroxides , Water/chemistry , Water Pollutants, Chemical
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