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人类可溶性环氧化物水解酶基因EPHX2中的多态性与缺血性损伤后的神经元存活有关。

Polymorphisms in the human soluble epoxide hydrolase gene EPHX2 linked to neuronal survival after ischemic injury.

作者信息

Koerner Ines P, Jacks Rachel, DeBarber Andrea E, Koop Dennis, Mao Peizhong, Grant David F, Alkayed Nabil J

机构信息

Department of Anesthesiology and Peri-Operative Medicine, Oregon Health & Science University, Portland, Oregon 97239-3098, USA.

出版信息

J Neurosci. 2007 Apr 25;27(17):4642-9. doi: 10.1523/JNEUROSCI.0056-07.2007.

Abstract

Single nucleotide polymorphisms (SNPs) in the human EPHX2 gene have recently been implicated in susceptibility to cardiovascular disease, including stroke. EPHX2 encodes for soluble epoxide hydrolase (sEH), an important enzyme in the metabolic breakdown of arachidonic acid-derived eicosanoids referred to as epoxyeicosatrienoic acids (EETs). We previously demonstrated that EETs are protective against ischemic cell death in culture. Therefore, we tested the hypothesis that polymorphisms in the human EPHX2 gene alter sEH enzyme activity and affect neuronal survival after ischemic injury in vitro. Human EPHX2 mutants were recreated by site-directed mutagenesis and fused downstream of TAT protein transduction domain. Western blot analysis and immunocytochemistry staining revealed high-transduction efficiency of human TAT-sEH variants in rat primary cultured cortical neurons, associated with increased metabolism of 14,15-EET to corresponding 14,15-dihydroxyeicosatrienoic acid. A human variant of sEH with Arg103Cys amino acid substitution, previously demonstrated to increase sEH enzymatic activity, was associated with increased cell death induced in cortical neurons by oxygen-glucose deprivation (OGD) and reoxygenation. In contrast, the Arg287Gln mutation was associated with reduced sEH activity and protection from OGD-induced neuronal cell death. We conclude that sequence variations in the human EPHX2 gene alter susceptibility to ischemic injury and neuronal survival in a manner linked to changes in the hydrolase activity of the enzyme. The findings suggest that human EPHX2 mutations may in part explain the genetic variability in sensitivity to ischemic brain injury and stroke outcome.

摘要

人类EPHX2基因中的单核苷酸多态性(SNP)最近被认为与包括中风在内的心血管疾病易感性有关。EPHX2编码可溶性环氧化物水解酶(sEH),它是花生四烯酸衍生的类二十烷酸(称为环氧二十碳三烯酸,EETs)代谢分解过程中的一种重要酶。我们之前证明EETs在培养中对缺血性细胞死亡具有保护作用。因此,我们检验了这样一个假设:人类EPHX2基因中的多态性会改变sEH酶活性,并影响体外缺血性损伤后的神经元存活。通过定点诱变重建人类EPHX2突变体,并将其融合到TAT蛋白转导结构域的下游。蛋白质印迹分析和免疫细胞化学染色显示,人类TAT-sEH变体在大鼠原代培养的皮质神经元中具有高转导效率,这与14,15-EET向相应的14,15-二羟基二十碳三烯酸的代谢增加有关。一种sEH的人类变体,其氨基酸发生了Arg103Cys取代,先前已证明该变体可增加sEH酶活性,它与氧糖剥夺(OGD)和复氧诱导的皮质神经元细胞死亡增加有关。相反,Arg287Gln突变与sEH活性降低以及对OGD诱导的神经元细胞死亡的保护作用有关。我们得出结论,人类EPHX2基因的序列变异以与该酶水解酶活性变化相关的方式改变了对缺血性损伤的易感性和神经元存活。这些发现表明,人类EPHX2突变可能部分解释了对缺血性脑损伤和中风预后敏感性的遗传变异性。

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