Human cytochrome P450 4F3: structure, functions, and prospects.

Laurent Corcos, Danièle Lucas, Catherine Le Jossic-Corcos, Yvonne Dréano, Brigitte Simon, Emmanuelle Plée-Gautier, Yolande Amet, Jean-Pierre Salaün
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引用次数: 26

Abstract

Cytochrome P450 4F3 (CYP4F3), originally identified as one of the leukotriene B4 ω-hydroxylases, belongs to a CYP gene family that comprises several members, which participate in the metabolism of various endobiotics, as well as some xenobiotics. The CYP4F gene family is clustered in a 0.5-Mb stretch of genomic DNA on the p13 region of chromosome 19. Apart from the ω-hydroxylation of leukotriene B4 and prostaglandins, CYP4F3 is the main catalyst in the oxidation of fatty acid epoxides. CYP4F3 expression results from the synthesis of two distinct enzymes, CYP4F3A and CYP4F3B, which originate from the alternative splicing of a single pre-mRNA precursor molecule. Remarkably, the selection of either isoform is part of a tissue-specific control through which CYP3F3A is mostly expressed in leukocytes and CYP4F3B mostly in the liver. Recently, CYP4F3 single nucleotide polymorphisms have been incriminated in the onset of pathologies, including celiac or Crohn's diseases. Although much has been discovered in the regulation and function of CYP4F2, the closest CYP4F subfamily member, analyses of CYP4F3 enzymes lag somewhat behind in the field of our knowledge. In this short review, emphasis will be placed on the regulation and the functional roles of human CYP4F3.

人细胞色素P450 4F3:结构、功能及前景。
细胞色素P450 4F3 (CYP4F3)最初被鉴定为白三烯B4 ω-羟化酶之一,属于CYP基因家族,该家族由多个成员组成,参与各种内源性以及一些外源性的代谢。CYP4F基因家族聚集在19号染色体p13区一个0.5 mb的基因组DNA中。除了白三烯B4和前列腺素的ω-羟基化外,CYP4F3是脂肪酸环氧化物氧化的主要催化剂。CYP4F3的表达源于两种不同的酶CYP4F3A和CYP4F3B的合成,这两种酶源于单个pre-mRNA前体分子的选择性剪接。值得注意的是,这两种异构体的选择都是组织特异性控制的一部分,CYP3F3A主要在白细胞中表达,而CYP4F3B主要在肝脏中表达。最近,CYP4F3单核苷酸多态性已被认为与包括乳糜泻或克罗恩病在内的病理发病有关。虽然在CYP4F2(最接近的CYP4F亚家族成员)的调控和功能方面已经发现了很多,但对CYP4F3酶的分析在我们的知识领域有些落后。在这篇简短的综述中,重点将放在人类CYP4F3的调控和功能作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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