Keyword search (4,164 papers available)

"methylation" Keyword-tagged Publications:

Title Authors PubMed ID
1 Potential epigenetic mechanisms in psychotherapy: a pilot study on DNA methylation and mentalization change in borderline personality disorder Quevedo Y; Booij L; Herrera L; Hernández C; Jiménez JP; 36171872
PSYCHOLOGY
2 DNA methylation as a mediator in the association between prenatal maternal stress and child mental health outcomes: Current state of knowledge Azar N; Booij L; 36113690
PSYCHOLOGY
3 DNA methylation in people with Anorexia Nervosa: Epigenome-wide patterns in actively ill, long-term remitted, and healthy-eater women Steiger H; Booij L; Thaler L; St-Hilaire A; Israël M; Casey KF; Oliverio S; Crescenzi O; Lee V; Turecki G; Joober R; Szyf M; Breton É; 35703085
PSYCHOLOGY
4 Metabolism of anti-inflammatory OXE (oxoeicosanoid) receptor antagonists by nonhuman primates Cossette C; Chourey S; Ye Q; Reddy CN; Wang R; Poulet S; Slobodchikova I; Vuckovic D; Rokach J; Powell WS; 35158054
PERFORM
5 DNA methylation differences in stress-related genes, functional connectivity and gray matter volume in depressed and healthy adolescents. Chiarella J, Schumann L, Pomares FB, Frodl T, Tozzi L, Nemoda Z, Yu P, Szyf M, Khalid-Khan S, Booij L 32479312
PSYCHOLOGY
6 Eating Disorders, Heredity and Environmental Activation: Getting Epigenetic Concepts into Practice. Steiger H, Booij L 32375223
PSYCHOLOGY
7 Methylation of the OXTR gene in women with anorexia nervosa: Relationship to social behavior. Thaler L, Brassard S, Booij L, Kahan E, McGregor K, Labbe A, Israel M, Steiger H 31823473
PSYCHOLOGY
8 Peripheral DNA methylation of HPA axis-related genes in humans: Cross-tissue convergence, two-year stability and behavioural and neural correlates. Di Sante J, Ismaylova E, Nemoda Z, Gouin JP, Yu WJ, Caldwell W, Vitaro F, Szyf M, Tremblay RE, Booij L 30059826
PSYCHOLOGY
9 Serotonin transporter gene promoter methylation in peripheral cells in healthy adults: Neural correlates and tissue specificity. Ismaylova E, Di Sante J, Szyf M, Nemoda Z, Yu WJ, Pomares FB, Turecki G, Gobbi G, Vitaro F, Tremblay RE, Booij L 28774705
PSYCHOLOGY

 

Title:Metabolism of anti-inflammatory OXE (oxoeicosanoid) receptor antagonists by nonhuman primates
Authors:Cossette CChourey SYe QReddy CNWang RPoulet SSlobodchikova IVuckovic DRokach JPowell WS
Link:https://pubmed.ncbi.nlm.nih.gov/35158054/
DOI:10.1016/j.ejps.2022.106144
Publication:European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences
Keywords:5-Lipoxygenase products5-oxo-ETEEicosanoidsInflammationN-demethylationbenzylic hydroxylation
PMID:35158054 Category: Date Added:2022-02-15
Dept Affiliation: PERFORM
1 Meakins-Christie Laboratories, Centre for Translational Biology, McGill University Health Centre, 1001 Decarie Blvd, Montreal, QC H4A 3J1, Canada.
2 Claude Pepper Institute and Department of Chemistry, Florida Institute of Technology, 150 West University Boulevard, Melbourne, FL 32901-6982, USA.
3 Department of Chemistry and Biochemistry and PERFORM Centre, Concordia University, 7141 Sherbrooke St. W., Montréal, QC H4B 1R6, Canada.
4 Meakins-Christie Laboratories, Centre for Translational Biology, McGill University Health Centre, 1001 Decarie Blvd, Montreal, QC H4A 3J1, Canada. Electronic address: william.powell@mcgill.ca.

Description:

5-Oxo-6,8,11,14-eicosatetraenoic acid (5-oxo-ETE) is the only product of the proinflammatory 5-lipoxygenase pathway with potent chemoattractant effects for human eosinophils, suggesting an important role in eosinophilic diseases such as asthma. 5-Oxo-ETE, acting through its selective OXE receptor, induces dermal eosinophilia in both humans and monkeys. To block its effects, we designed selective indole-based OXE antagonists containing hexyl (S-230) or phenylhexyl (S-C025 and S-Y048) side chains, which inhibit allergen-induced dermal and pulmonary inflammation in monkeys, suggesting that they may be useful therapeutic agents in humans. In this study we identified two metabolic pathways for the phenylhexyl-containing antagonists in liver microsomes: benzylic and N-methyl hydroxylation, resulting in ?-hydroxy, ?-oxo, and NH-containing products with reduced potencies that were identified by mass spectrometry and comparison with synthetic standards. Products of both pathways were also identified in monkey plasma following oral administration of S-C025 and S-Y025, but were less abundant than the a-hydroxy metabolites that we previously identified. Interestingly, the a-hydroxy compounds were not detected in microsomal incubations, suggesting a different origin. The relative rates of metabolism of these antagonists were S-230 >> S-C025 > S-Y048, which may help to explain the differences in their plasma half-lives (S-230 < S-C025 < S-Y048). In conclusion, S-C025 and S-Y048 are metabolized by liver microsomes by benzylic and N-methyl hydroxylation but not by a-hydroxylation, whereas all three pathways exist in vivo. Addition of a phenyl group to the hexyl side chain of these antagonists dramatically reduced their rates of metabolism, which would explain their prolonged in vivo half-lives.





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