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人类ALOX15天然存在的近无效变体催化无活性的分子基础。

Molecular basis for the catalytic inactivity of a naturally occurring near-null variant of human ALOX15.

作者信息

Horn Thomas, Ivanov Igor, Di Venere Almerinda, Kakularam Kumar Reddy, Reddanna Pallu, Conrad Melanie L, Richter Constanze, Scheerer Patrick, Kuhn Hartmut

机构信息

Institute of Biochemistry, University Medicine Berlin-Charité, Charitéplatz 1, D-10117 Berlin, Germany.

出版信息

Biochim Biophys Acta. 2013 Dec;1831(12):1702-13. doi: 10.1016/j.bbalip.2013.08.004. Epub 2013 Aug 16.

Abstract

Mammalian lipoxygenases belong to a family of lipid-peroxidizing enzymes, which have been implicated in cardiovascular, hyperproliferative and neurodegenerative diseases. Here we report that a naturally occurring mutation in the hALOX15 gene leads to expression of a catalytically near-null enzyme variant (hGly422Glu). The inactivity may be related to severe misfolding of the enzyme protein, which was concluded from CD-spectra as well as from thermal and chemical stability assays. In silico mutagenesis experiments suggest that most mutations at hGly422 have the potential to induce sterical clash, which might be considered a reason for protein misfolding. hGly422 is conserved among ALOX5, ALOX12 and ALOX15 isoforms and corresponding hALOX12 and hALOX5 mutants also exhibited a reduced catalytic activity. Interestingly, in the hALOX5 Gly429Glu mutants the reaction specificity of arachidonic acid oxygenation was shifted from 5S- to 8S- and 12R-H(p)ETE formation. Taken together, our data indicate that the conserved glycine is of functional importance for these enzyme variants and most mutants at this position lose catalytic activity.

摘要

哺乳动物脂氧合酶属于脂质过氧化酶家族,与心血管疾病、过度增殖性疾病和神经退行性疾病有关。在此我们报告,hALOX15基因中自然发生的突变导致一种催化活性近乎缺失的酶变体(hGly422Glu)的表达。这种无活性可能与酶蛋白的严重错误折叠有关,这是通过圆二色光谱以及热稳定性和化学稳定性分析得出的结论。计算机模拟诱变实验表明,hGly422处的大多数突变有可能引发空间冲突,这可能是蛋白质错误折叠的一个原因。hGly422在ALOX5、ALOX12和ALOX15同工型中是保守的,相应的hALOX12和hALOX5突变体也表现出催化活性降低。有趣的是,在hALOX5 Gly429Glu突变体中,花生四烯酸氧化的反应特异性从形成5S-转变为形成8S-和12R-H(p)ETE。综上所述,我们的数据表明,保守的甘氨酸对这些酶变体具有功能重要性,该位置的大多数突变会导致催化活性丧失。

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