Literature DB >> 28299574

Physiological and Pathological Roles of 15-Deoxy-Δ12,14-Prostaglandin J2 in the Central Nervous System and Neurological Diseases.

Tatsurou Yagami1, Yasuhiro Yamamoto2, Hiromi Koma2.   

Abstract

Prostaglandins (PGs) are divided into conventional PGs, e.g., PGD2, and cyclopentenone-type PGs, e.g., 15-deoxy-Δ12,14 prostaglandin J2 (15d-PGJ2). PGD2 is non-enzymatically metabolized to PGJ2, Δ12-PGJ2, and 15d-PGJ2. In the central nervous system, 15d-PGJ2 differentiates embryonic midbrain cells into dopaminergic neuronal cells via its nuclear peroxysome proliferator-activated receptor-γ (PPARγ). 15d-PGJ2 exerts conflict actions: proinflammatory and anti-inflammatory activities. In the brain, 15d-PGJ2 possesses opposite functions as a neuroprotectant at low concentrations and a neurotoxicant at high concentrations in the brain. PPARγ contributes to the neuroprotective effect of 15d-PGJ2 but not to the neurotoxic effect. Its membrane receptor, chemoattractant receptor-homologous molecule expressed on T-helper type 2 cells (CRTH2), is not also involved in the neurotoxicity of 15d-PGJ2. 15d-PGJ2 induces neuronal apoptosis via inactivating ubiquitin proteasome pathway and activating caspase cascade. Alternatively, 15d-PGJ2 downregulates phosphoinositide 3-kinase (PI3K)-Akt pathway and suppresses neurite outgrowth. 15d-PGJ2 possesses α,β-unsaturated ketone moiety in its cyclopentenone ring and acts an endogenous electrophile. By the Michael addition reaction, 15d-PGJ2 is covalently bound to cellular nucleophiles, such as free cysteine residues of proteins that regulate intracellular signaling pathways. There are specific binding sites of [3H]15d-PGJ2 in the plasma membrane of cerebral cortices. Besides CRTH2, plasmalemmal glycolytic enzymes, respiratory chain enzymes, molecular chaperones, adaptor proteins and cytoskeletons are identified as membrane targets for 15d-PGJ2. In the present review, we provide evidences for pathophysiological roles of 15d-PGJ2 in the central nervous system and neurological diseases.

Entities:  

Keywords:  15-Deoxy-Δ12,14 prostaglandin J2; Neuronal membrane targets; Peroxysome proliferator-activated receptor-γ; Phosphoinositide 3-kinase; Ubiquitin proteasome pathway

Mesh:

Substances:

Year:  2017        PMID: 28299574     DOI: 10.1007/s12035-017-0435-4

Source DB:  PubMed          Journal:  Mol Neurobiol        ISSN: 0893-7648            Impact factor:   5.590


  10 in total

1.  Prostaglandin J2 promotes O-GlcNAcylation raising APP processing by α- and β-secretases: relevance to Alzheimer's disease.

Authors:  Teneka Jean-Louis; Patricia Rockwell; Maria E Figueiredo-Pereira
Journal:  Neurobiol Aging       Date:  2017-11-14       Impact factor: 4.673

Review 2.  15d-PGJ2 is a new hope for controlling tumor growth.

Authors:  Qingli Bie; Haixin Dong; Chengqiang Jin; Hao Zhang; Bin Zhang
Journal:  Am J Transl Res       Date:  2018-03-15       Impact factor: 4.060

3.  15-deoxy-Δ12,14-Prostaglandin J2 inhibits human soluble epoxide hydrolase by a dual orthosteric and allosteric mechanism.

Authors:  Giancarlo Abis; Rebecca L Charles; Jolanta Kopec; Wyatt W Yue; R Andrew Atkinson; Tam T T Bui; Steven Lynham; Simona Popova; Yin-Biao Sun; Franca Fraternali; Philip Eaton; Maria R Conte
Journal:  Commun Biol       Date:  2019-05-17

4.  Metabolomics Analysis of Laparoscopic Surgery Combined with Wuda Granule to Promote Rapid Recovery of Patients with Colorectal Cancer Using UPLC/Q-TOF-MS/MS.

Authors:  Tao Wang; Yihua Xu; Qicheng Chen; Weilin Zheng; Jie Wang; Haiping Zeng; Yuyan Wu; Lixing Cao; Zhiqiang Chen
Journal:  Evid Based Complement Alternat Med       Date:  2020-02-13       Impact factor: 2.629

5.  The Role of Intestinal Dysbacteriosis Induced Arachidonic Acid Metabolism Disorder in Inflammaging in Atherosclerosis.

Authors:  Yingxin Sun; Danbin Wu; Wenyun Zeng; Yefei Chen; Maojuan Guo; Bin Lu; Huhu Li; Chun Sun; Lin Yang; Xijuan Jiang; Qing Gao
Journal:  Front Cell Infect Microbiol       Date:  2021-03-18       Impact factor: 5.293

6.  Process optimization and characterization of arachidonic acid oil degumming using ultrasound-assisted enzymatic method.

Authors:  Tingting Guo; Chuyun Wan; Fenghong Huang; Chunlei Wei; Xia Xiang
Journal:  Ultrason Sonochem       Date:  2021-08-17       Impact factor: 7.491

7.  Multi-Omic Analysis in a Metabolic Syndrome Porcine Model Implicates Arachidonic Acid Metabolism Disorder as a Risk Factor for Atherosclerosis.

Authors:  Song-Song Xu; Xiu-Ling Zhang; Sha-Sha Liu; Shu-Tang Feng; Guang-Ming Xiang; Chang-Jiang Xu; Zi-Yao Fan; Kui Xu; Nan Wang; Yue Wang; Jing-Jing Che; Zhi-Guo Liu; Yu-Lian Mu; Kui Li
Journal:  Front Nutr       Date:  2022-02-23

Review 8.  Molecular mechanisms underlying the actions of arachidonic acid-derived prostaglandins on peripheral nociception.

Authors:  Yongwoo Jang; Minseok Kim; Sun Wook Hwang
Journal:  J Neuroinflammation       Date:  2020-01-22       Impact factor: 8.322

9.  A plausible involvement of plasmalemmal voltage-dependent anion channel 1 in the neurotoxicity of 15-deoxy-Δ12,14 -prostaglandin J2.

Authors:  Hiromi Koma; Yasuhiro Yamamoto; Noboru Okamura; Tatsurou Yagami
Journal:  Brain Behav       Date:  2020-11-16       Impact factor: 2.708

Review 10.  Cyclopentenone Prostaglandins: Biologically Active Lipid Mediators Targeting Inflammation.

Authors:  Bohae Rachel Lee; May Hnin Paing; Neelam Sharma-Walia
Journal:  Front Physiol       Date:  2021-07-15       Impact factor: 4.566

  10 in total

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