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首页> 外文期刊>Biochimica et Biophysica Acta. Molecular and cell biology of Lipids >Divergent interactions involving the oxidosqualene cyclase and the steroid-3-ketoreductase in the sterol biosynthetic pathway of mammals and yeasts.
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Divergent interactions involving the oxidosqualene cyclase and the steroid-3-ketoreductase in the sterol biosynthetic pathway of mammals and yeasts.

机译:哺乳动物和酵母固醇生物合成途径中涉及氧化角鲨烯环化酶和甾体3-酮还原酶的不同相互作用。

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In mammals and yeasts, oxidosqualene cyclase (OSC) catalyzes the formation of lanosterol, the first cyclic intermediate in sterol biosynthesis. We used a murine myeloma cell line (NS0), deficient in the 17beta-hydroxysteroid dehydrogenase type 7 (HSD17B7), as a model to study the potential interaction of the HSD17B7 with the OSC in mammals. HSD17B7 is the orthologue of the yeast steroid-3-ketoreductase (ERG27), an enzyme of ergosterol biosynthesis that plays a protective role towards OSC. Tracer experiments with NS0 cells showed that OSC is fully active in these mammalian cells, suggesting that in mammals the ketosteroid reductase is not required for OSC activity. Mouse and human HSD17B7 were overexpressed in ERG27-deletant yeast cells, and recombinant strains were tested for (i) the ability to grow on different media, (ii) steroid-3-ketoreductase activity, and (iii) OSC activity. Recombinant strains grew more slowly than the control yeast ERG27-overexpressing strain on sterol-deficient media, whereas the growth rate was normal on media supplemented with a 3-ketoreductase substrate. The full enzymatic functionality of mammalian steroid-3-ketoreductase expressed in yeast along with the lack of (yeast) OSC activity point to an inability of the mammalian reductase to assist yeast OSC. Results demonstrate that in mammals, unlike in yeast, OSC and steroid-3-ketoreductase are non-interacting proteins.
机译:在哺乳动物和酵母中,氧化角鲨烯环化酶(OSC)催化羊毛甾醇的形成,羊毛甾醇是固醇生物合成中的第一个环状中间体。我们使用缺乏17β-羟基类固醇脱氢酶7型(HSD17B7)的鼠类骨髓瘤细胞系(NS0)作为模型来研究HSD17B7与OSC在哺乳动物中的潜在相互作用。 HSD17B7是酵母甾体3-酮还原酶(ERG27)的直系同源物,该酶是一种麦角固醇生物合成酶,对OSC起保护作用。用NS0细胞进行的示踪剂实验显示OSC在这些哺乳动物细胞中具有完全活性,这表明在哺乳动物中OSC活性不需要酮类固醇还原酶。小鼠和人类HSD17B7在缺失ERG27的酵母细胞中过表达,并测试了重组菌株的(i)在不同培养基上生长的能力,(ii)甾体3-酮还原酶活性和(iii)OSC活性。在固醇缺乏的培养基上,重组菌株的生长比对照酵母ERG27过表达菌株的生长慢,而在补充有3-酮还原酶底物的培养基上,生长速率正常。酵母中表达的哺乳动物类固醇-3-酮还原酶的完整酶功能以及缺乏(酵母)OSC活性表明哺乳动物还原酶无法协助酵母OSC。结果表明,在哺乳动物中,与酵母不同,OSC和类固醇-3-酮还原酶是非相互作用蛋白。

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