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Lipid Sulfates and Sulfonates Are Allosteric Competitive Inhibitors of the N-Terminal Phosphatase Activity of the Mammalian Soluble Epoxide Hydrolase

机译:脂质硫酸盐和磺酸盐是哺乳动物可溶性环氧水解酶的N末端磷酸酶活性的变构竞争抑制剂。

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摘要

The EPXH2 gene encodes for the soluble epoxide hydrolase (sEH), a homodimeric enzyme with each monomer containing two domains with distinct activities. The C-terminal domain, containing the epoxide hydrolase activity (Cterm-EH), is involved in the metabolism of arachidonic acid epoxides, endogenous chemical mediators that play important roles in blood pressure regulation, cell growth, and inflammation. We recently demonstrated that the N-terminal domain contains a Mg2+-dependent lipid phosphate phosphatase activity (Nterm-phos). However, the biological role of this activity is unknown. The inability of known phosphatase inhibitors to inhibit the Nterm-phos constitutes a significant barrier to the elucidation of its function. We describe herein sulfate, sulfonate, and phosphonate lipids as novel potent inhibitors of Nterm-phos. These compounds are allosteric competitive inhibitors with KI in the hundred nanomolar range. These inhibitors may provide a valuable tool to investigate the biological role of the Nterm-phos. We found that polyisoprenyl phosphates are substrates of Nterm-phos, suggesting a possible role in sterol synthesis or inflammation. Furthermore, some of these compounds inhibit the C-terminal sEH activity through a noncompetitive inhibition mechanism involving a new binding site on the C-terminal domain. This novel site may play a role in the natural in vivo regulation of epoxide hydrolysis by sEH.
机译:EPXH2基因编码可溶性环氧化物水解酶(sEH),一种同型二聚酶,每个单体包含两个具有不同活性的结构域。包含环氧化物水解酶活性(Cterm-EH)的C末端结构域参与花生四烯酸环氧化物的代谢,花生四烯酸环氧化物是在血压调节,细胞生长和炎症中起重要作用的内源性化学介质。最近,我们证明了N末端域包含Mg 2 + 依赖性脂质磷酸磷酸酶活性(Nterm-phos)。但是,这种活性的生物学作用是未知的。已知的磷酸酶抑制剂不能抑制Nterm-phos成为阐明其功能的重要障碍。我们在本文中将硫酸盐,磺酸盐和膦酸盐脂质描述为Nterm-phos的新型有效抑制剂。这些化合物是变构竞争性抑制剂,KI的百纳摩尔范围内。这些抑制剂可能为研究Nterm-phos的生物学作用提供有价值的工具。我们发现,聚异戊二烯磷酸酯是Nterm-phos的底物,提示其可能在固醇合成或炎症中起作用。此外,这些化合物中的一些通过非竞争性抑制机制抑制C末端sEH活性,该机制涉及C末端域上的新结合位点。这个新位点可能在自然体内体内通过sEH调节环氧化物水解中起作用。

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