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拟南芥生物素合酶反应的生化特性。线粒体在生物素合成中的重要性。

Biochemical characterization of the Arabidopsis biotin synthase reaction. The importance of mitochondria in biotin synthesis.

作者信息

Picciocchi A, Douce R, Alban C

机构信息

Unité Mixte de Recherche 1932 Associée au Centre National de la Recherche Scientifique, Aventis CropScience, 14-20 rue Pierre Baizet, 69263 Lyon cedex 9, France.

出版信息

Plant Physiol. 2001 Nov;127(3):1224-33.

Abstract

Biotin synthase, encoded by the bio2 gene in Arabidopsis, catalyzes the final step in the biotin biosynthetic pathway. The development of radiochemical and biological detection methods allowed the first detection and accurate quantification of a plant biotin synthase activity, using protein extracts from bacteria overexpressing the Arabidopsis Bio2 protein. Under optimized conditions, the turnover number of the reaction was >2 h(-1) with this in vitro system. Purified Bio2 protein was not efficient by itself in supporting biotin synthesis. However, heterologous interactions between the plant Bio2 protein and bacterial accessory proteins yielded a functional biotin synthase complex. Biotin synthase in this heterologous system obeyed Michaelis-Menten kinetics with respect to dethiobiotin (K(m) = 30 microM) and exhibited a kinetic cooperativity with respect to S-adenosyl-methionine (Hill coefficient = 1.9; K(0.5) = 39 microM), an obligatory cofactor of the reaction. In vitro inhibition of biotin synthase activity by acidomycin, a structural analog of biotin, showed that biotin synthase reaction was the specific target of this inhibitor of biotin synthesis. It is important that combination experiments using purified Bio2 protein and extracts from pea (Pisum sativum) leaf or potato (Solanum tuberosum) organelles showed that only mitochondrial fractions could elicit biotin formation in the plant-reconstituted system. Our data demonstrated that one or more unidentified factors from mitochondrial matrix (pea and potato) and from mitochondrial membranes (pea), in addition to the Bio2 protein, are obligatory for the conversion of dethiobiotin to biotin, highlighting the importance of mitochondria in plant biotin synthesis.

摘要

生物素合酶由拟南芥中的bio2基因编码,催化生物素生物合成途径的最后一步。放射化学和生物学检测方法的发展使得能够首次检测并准确量化植物生物素合酶的活性,这是通过使用过表达拟南芥Bio2蛋白的细菌的蛋白质提取物来实现的。在优化条件下,该体外系统中反应的周转数>2 h(-1)。纯化的Bio2蛋白本身在支持生物素合成方面效率不高。然而,植物Bio2蛋白与细菌辅助蛋白之间的异源相互作用产生了功能性的生物素合酶复合物。在这个异源系统中,生物素合酶对脱硫生物素符合米氏动力学(K(m)=30 microM),并且对反应的必需辅因子S-腺苷甲硫氨酸表现出动力学协同性(希尔系数=1.9;K(0.5)=39 microM)。生物素的结构类似物acidomycin对生物素合酶活性的体外抑制表明,生物素合酶反应是这种生物素合成抑制剂的特定靶点。重要的是,使用纯化的Bio2蛋白和豌豆(Pisum sativum)叶片或马铃薯(Solanum tuberosum)细胞器提取物进行的组合实验表明,在植物重组系统中只有线粒体部分能够引发生物素的形成。我们的数据表明,除了Bio2蛋白外,线粒体基质(豌豆和马铃薯)和线粒体外膜(豌豆)中的一种或多种未鉴定因子对于将脱硫生物素转化为生物素是必需的,这突出了线粒体在植物生物素合成中的重要性。

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