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酵母甾醇生物合成中甾醇-C4-甲基氧化酶的酶学性质

Enzymological properties of sterol-C4-methyl-oxidase of yeast sterol biosynthesis.

作者信息

Darnet Sylvain, Rahier Alain

机构信息

Centre National de la Recherche Scientifique, Institut de Botanique, Institut de Biologie Moléculaire des Plantes, UPR-CNRS 2357, 28 rue Goethe, 67083 Strasbourg Cedex, France.

出版信息

Biochim Biophys Acta. 2003 Jul 21;1633(2):106-17. doi: 10.1016/s1388-1981(03)00093-3.

Abstract

Despite genes of the sterol methyl-oxidase component (SMO) of the sterol-C4-demethylation multienzymatic complex have been identified in a variety of organisms and the key role played by SMO in yeast sterol biosynthesis, the enzymological properties of yeast SMO have not been investigated. An enzymatic assay for measuring specifically sterol 4alpha-methyl-oxidase activity in Saccharomyces cerevisiae has been developed for the first time by using [14C]-4,4-dimethyl-zymosterol as substrate. It allowed enzymatically formed C4 mono- and di-demethylated products to be characterized as well as two novel C4-hydroxymethyl-zymosterol derivatives to be identified as immediate oxidative metabolites by the yeast 4,4-dimethyl-zymosterol 4alpha-methyl-oxidase (ScSMO). The properties of microsomal ScSMO have been established with respect to cofactor requirements and kinetics and the substrate selectivity examined with a number of 4,4-dimethyl- and 4alpha-methyl-sterols. Remarkably, ScSMO showed very low activity with 24-methylene-24-dihydrocycloartenol, the natural substrate of maize 4,4-dimethyl-sterol-C4-methyl-oxidase. Conversely, maize sterol-C4-methyl-oxidases showed extremely reduced activity with the natural substrate of ScSMO. The previously described antifungal agent, 6-amino-2-n-pentylbenzothiazole was shown to directly inhibit the microsomal ScSMO activity in vitro. The yeast system was more than 500 times more sensitive to this derivative than the maize systems. These distinct substrate specificities and inhibitor sensitivities between yeast and plant sterol-4alpha-methyl-oxidases probably reflect diversity in the structure of their active sites in relation to the distinct sterol biosynthetic pathways.

摘要

尽管在多种生物体中已鉴定出甾醇 - C4 - 去甲基化多酶复合物的甾醇甲基氧化酶组分(SMO)的基因,且SMO在酵母甾醇生物合成中发挥关键作用,但酵母SMO的酶学性质尚未得到研究。首次通过使用[14C] - 4,4 - 二甲基酵母甾醇作为底物,开发了一种用于测量酿酒酵母中甾醇4α - 甲基氧化酶活性的酶促测定法。它能够对酶促形成的C4单去甲基化和双去甲基化产物进行表征,同时鉴定出两种新型的C4 - 羟甲基酵母甾醇衍生物作为酵母4,4 - 二甲基酵母甾醇4α - 甲基氧化酶(ScSMO)的直接氧化代谢产物。已确定微粒体ScSMO在辅因子需求和动力学方面的性质,并使用多种4,4 - 二甲基和4α - 甲基甾醇检测了底物选择性。值得注意的是,ScSMO对玉米4,4 - 二甲基甾醇 - C4 - 甲基氧化酶的天然底物24 - 亚甲基 - 24 - 二氢环阿屯醇的活性非常低。相反,玉米甾醇 - C4 - 甲基氧化酶对ScSMO的天然底物的活性极低。先前描述的抗真菌剂6 - 氨基 - 2 - 正戊基苯并噻唑在体外显示出直接抑制微粒体ScSMO活性。酵母系统对该衍生物的敏感性比玉米系统高500倍以上。酵母和植物甾醇 - 4α - 甲基氧化酶之间这些不同的底物特异性和抑制剂敏感性可能反映了它们活性位点结构相对于不同甾醇生物合成途径的多样性。

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