首页> 外文期刊>The Biochemical Journal >Probing a novel potato lipoxygenase with dual positional specificity reveals primary determinants of substrate binding and requirements for a surface hydrophobic loop and has implications for the role of lipoxygenases in tubers.
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Probing a novel potato lipoxygenase with dual positional specificity reveals primary determinants of substrate binding and requirements for a surface hydrophobic loop and has implications for the role of lipoxygenases in tubers.

机译:探索具有双重位置特异性的新型马铃薯脂氧合酶揭示了底物结合的主要决定因素和对表面疏水环的需求,并暗示了脂氧合酶在块茎中的作用。

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A new potato tuber lipoxygenase full-length cDNA sequence (lox1:St:2) has been isolated from potato tubers and used to express in Escherichia coli and characterize a novel recombinant lipoxygenase (potato 13/9-lipoxygenase). Like most plant lipoxygenases it produced carbonyl compounds from linoleate (the preferred substrate) and was purified in the Fe(II) (ferrous) state. Typical of other potato tuber lipoxygenases, it produced 5-HPETE [5(S)-hydroperoxy-(6E, 8Z, 11Z, 14Z)-eicosatetraenoic acid] from arachidonate. In contrast to any other potato tuber lipoxygenase, it exhibited dual positional specificity and produced roughly equimolar amounts of 13- and 9-hydroperoxides (or only a slight molar excess of 9-hydroperoxides) from linoleate. We have used a homology model of pea 9/13-lipoxygenase to superimpose and compare the linoleate-binding pockets of different potato lipoxygenases of known positional specificity. We then tested this model by using site-directed mutagenesis to identify some primary determinants of linoleate binding to potato 13/9-lipoxygenase and concluded that the mechanism determining positional specificity described for a cucumber lipoxygenase does not apply to potato 13/9-lipoxygenase. This supports our previous studies on pea seed lipoxygenases for the role of pocket volume rather than inverse orientation as a determinant of dual positional specificity in plant lipoxygenases. We have also used deletion mutagenesis to identify a critical role in catalysis for a surface hydrophobic loop in potato 13/9-lipoxygenase and speculate that this may control substrate access. Although potato 13/9-lipoxygenase represents only a minor isoform in tubers, such evidence for a single lipoxygenase species with dual positional specificity in tubers has implications for the proposed role of potato lipoxygenases in the plant.
机译:从马铃薯块茎中分离出一种新的马铃薯块茎脂加氧酶全长cDNA序列(lox1:St:2),并用于在大肠杆菌中表达,并表征了一种新型的重组脂肪氧化酶(马铃薯13 / 9-脂加氧酶)。像大多数植物脂加氧酶一样,它从亚油酸酯(优选的底物)生产羰基化合物,并以Fe(II)(亚铁)状态纯化。它是典型的其他马铃薯块茎脂加氧酶,由花生四烯酸产生5-HPETE [5(S)-氢过氧-(6E,8Z,11Z,14Z)-二十碳四烯酸]。与任何其他马铃薯块茎脂加氧酶相比,它表现出双重位置特异性,并由亚油酸酯产生大约等摩尔量的13-和9-氢过氧化物(或仅略微摩尔过量的9-氢过氧化物)。我们已经使用了豌豆9 / 13-脂加氧酶的同源模型来叠加和比较已知位置特异性的不同马铃薯脂加氧酶的亚油酸结合口袋。然后,我们通过使用定点诱变来确定亚油酸与马铃薯13 / 9-脂氧合酶结合的一些主要决定因素,从而测试了该模型,并得出结论,确定黄瓜脂氧合酶描述的位置特异性的机制不适用于马铃薯13 / 9-脂氧合酶。这支持了我们以前对豌豆种子脂氧合酶的研究,其起着口袋体积而不是逆向作用的作用,它决定了植物脂氧合酶双重位置特异性。我们还使用缺失诱变来鉴定马铃薯13 / 9-脂加氧酶中表面疏水环催化的关键作用,并推测这可能控制底物的进入。尽管马铃薯13 / 9-脂氧合酶在块茎中仅代表较小的同工型,但这种马铃薯块茎具有双重位置特异性的单一脂氧合酶物种的证据也暗示了马铃薯脂氧合酶在植物中的作用。

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