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Nonsteroidal Anti-Inflammatory Drugs and the Kidney.非甾体抗炎药与肾脏
Pharmaceuticals (Basel). 2010 Jul 21;3(7):2291-2321. doi: 10.3390/ph3072291.
2
Nitric Oxide Synthase and Cyclooxygenase Pathways: A Complex Interplay in Cellular Signaling.一氧化氮合酶与环氧化酶途径:细胞信号传导中的复杂相互作用
Curr Med Chem. 2016;23(24):2559-2578. doi: 10.2174/0929867323666160729105312.
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Physiology and pathophysiology of cyclooxygenase-2 and prostaglandin E2 in the kidney.环氧化酶-2 和前列腺素 E2 在肾脏中的生理学和病理生理学。
Kidney Res Clin Pract. 2015 Dec;34(4):194-200. doi: 10.1016/j.krcp.2015.10.004. Epub 2015 Nov 12.
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Cyclooxygenase-2 promotes tumor growth and suppresses tumor immunity.环氧化酶-2促进肿瘤生长并抑制肿瘤免疫。
Cancer Cell Int. 2015 Nov 5;15:106. doi: 10.1186/s12935-015-0260-7. eCollection 2015.
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Elucidation of novel 13-series resolvins that increase with atorvastatin and clear infections.阐明随阿托伐他汀增加并清除感染的新型13系列消退素。
Nat Med. 2015 Sep;21(9):1071-5. doi: 10.1038/nm.3911. Epub 2015 Aug 3.
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Relationship of the Topological Distances and Activities between mPGES-1 and COX-2 versus COX-1: Implications of the Different Post-Translational Endoplasmic Reticulum Organizations of COX-1 and COX-2.微粒体前列腺素E合酶-1(mPGES-1)与环氧化酶-2(COX-2)及环氧化酶-1(COX-1)之间拓扑距离与活性的关系:COX-1和COX-2不同翻译后内质网组织形式的意义
Biochemistry. 2015 Jun 16;54(23):3707-15. doi: 10.1021/acs.biochem.5b00339. Epub 2015 Jun 3.
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Down-regulation of cyclooxygenase-2 by the carboxyl tail of the angiotensin II type 1 receptor.血管紧张素 II 型 1 受体羧基末端下调环氧化酶-2。
J Biol Chem. 2014 Nov 7;289(45):31473-9. doi: 10.1074/jbc.M114.587576. Epub 2014 Sep 17.
8
β1-Adrenergic receptor downregulates the expression of cyclooxygenase-2.β1-肾上腺素能受体下调环氧化酶-2 的表达。
Biochem Biophys Res Commun. 2014 Aug 22;451(2):319-21. doi: 10.1016/j.bbrc.2014.07.123. Epub 2014 Aug 1.
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Post-translational regulation of COX2 activity by FYN in prostate cancer cells.FYN对前列腺癌细胞中COX2活性的翻译后调控。
Oncotarget. 2014 Jun 30;5(12):4232-43. doi: 10.18632/oncotarget.1983.
10
COX-2 mediates angiotensin II-induced (pro)renin receptor expression in the rat renal medulla.环氧化酶-2介导血管紧张素II诱导的大鼠肾髓质(前)肾素受体表达。
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环氧化酶 2:蛋白-蛋白相互作用和翻译后修饰。

Cyclooxygenase 2: protein-protein interactions and posttranslational modifications.

机构信息

Cardiovascular Center and Department of Medicine, Medical College of Wisconsin, Milwaukee, Wisconsin.

Cardiovascular Center and Department of Medicine, Medical College of Wisconsin, Milwaukee, Wisconsin

出版信息

Physiol Genomics. 2017 Nov 1;49(11):667-681. doi: 10.1152/physiolgenomics.00086.2017. Epub 2017 Sep 22.

DOI:10.1152/physiolgenomics.00086.2017
PMID:28939645
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5792139/
Abstract

Numerous studies implicate the cyclooxygenase 2 (COX2) enzyme and COX2-derived prostanoids in various human diseases, and thus, much effort has been made to uncover the regulatory mechanisms of this enzyme. COX2 has been shown to be regulated at both the transcriptional and posttranscriptional levels, leading to the development of nonsteroidal anti-inflammatory drugs (NSAIDs) and selective COX2 inhibitors (COXIBs), which inhibit the COX2 enzyme through direct targeting. Recently, evidence of posttranslational regulation of COX2 enzymatic activity by s-nitrosylation, glycosylation, and phosphorylation has also been presented. Additionally, posttranslational regulators that actively downregulate COX2 expression by facilitating increased proteasome degradation of this enzyme have also been reported. Moreover, recent data identified proteins, located in close proximity to COX2 enzyme, that serve as posttranslational modulators of COX2 function, upregulating its enzymatic activity. While the precise mechanisms of the protein-protein interaction between COX2 and these regulatory proteins still need to be addressed, it is likely these interactions could regulate COX2 activity either as a result of conformational changes of the enzyme or by impacting subcellular localization of COX2 and thus affecting its interactions with regulatory proteins, which further modulate its activity. It is possible that posttranslational regulation of COX2 enzyme by such proteins could contribute to manifestation of different diseases. The uncovering of posttranslational regulation of COX2 enzyme will promote the development of more efficient therapeutic strategies of indirectly targeting the COX2 enzyme, as well as provide the basis for the generation of novel diagnostic tools as biomarkers of disease.

摘要

大量研究表明环氧化酶 2(COX2)酶和 COX2 衍生的前列腺素在各种人类疾病中起作用,因此,人们做出了很多努力来揭示这种酶的调节机制。已经表明 COX2 可在转录和转录后水平受到调节,从而导致非甾体抗炎药(NSAIDs)和选择性 COX2 抑制剂(COXIBs)的发展,这些药物通过直接靶向抑制 COX2 酶。最近,还提出了 COX2 酶的活性通过 S-亚硝基化、糖基化和磷酸化的翻译后调节的证据。此外,还报道了通过促进这种酶的蛋白酶体降解来主动下调 COX2 表达的翻译后调节剂。此外,最近的数据确定了位于 COX2 酶附近的蛋白质,这些蛋白质作为 COX2 功能的翻译后调节剂,上调其酶活性。虽然 COX2 与这些调节蛋白之间的蛋白质-蛋白质相互作用的确切机制仍需要解决,但这些相互作用可能会调节 COX2 活性,或者由于酶的构象变化,或者通过影响 COX2 的亚细胞定位,从而影响其与调节蛋白的相互作用,进一步调节其活性。这些蛋白质对 COX2 酶的翻译后调节可能是导致不同疾病表现的原因之一。揭示 COX2 酶的翻译后调节将促进间接靶向 COX2 酶的更有效的治疗策略的发展,并为作为疾病生物标志物的新型诊断工具的产生提供基础。