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Cloning and functional characterization of carotenoid cleavage dioxygenase 4 genes

机译:类胡萝卜素裂解双加氧酶4基因的克隆与功能鉴定

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摘要

Although a number of plant carotenoid cleavage dioxygenase (CCD) genes have been functionally characterized in different plant species, little is known about the biochemical role and enzymatic activities of members of the subclass 4 (CCD4). To gain insight into their biological function, CCD4 genes were isolated from apple (Malus×domestica, MdCCD4), chrysanthemum (Chrysanthemum×morifolium, CmCCD4a), rose (Rosa×damascena, RdCCD4), and osmanthus (Osmanthus fragrans, OfCCD4), and were expressed, together with AtCCD4, in Escherichia coli. In vivo assays showed that CmCCD4a and MdCCD4 cleaved β-carotene well to yield β-ionone, while OfCCD4, RdCCD4, and AtCCD4 were almost inactive towards this substrate. No cleavage products were found for any of the five CCD4 genes when they were co-expressed in E. coli strains that accumulated cis-ζ-carotene and lycopene. In vitro assays, however, demonstrated the breakdown of 8′-apo-β-caroten-8′-al by AtCCD4 and RdCCD4 to β-ionone, while this apocarotenal was almost not degraded by OfCCD4, CmCCD4a, and MdCCD4. Sequence analysis of genomic clones of CCD4 genes revealed that RdCCD4, like AtCCD4, contains no intron, while MdCCD, OfCCD4, and CmCCD4a contain introns. These results indicate that plants produce at least two different forms of CCD4 proteins. Although CCD4 enzymes cleave their substrates at the same position (9,10 and 9′,10′), they might have different biochemical functions as they accept different (apo)-carotenoid substrates, show various expression patterns, and are genomically differently organized.
机译:尽管许多植物类胡萝卜素裂解双加氧酶(CCD)基因已在不同植物物种中进行了功能鉴定,但对亚类4(CCD4)成员的生化作用和酶活性知之甚少。为了深入了解其生物学功能,从苹果(Malus×domestica,MdCCD4),菊花(Chrysanthemum×morifolium,CmCCD4a),玫瑰(Rosa×damascena,RdCCD4)和桂花(Osmanthus fragrans,OfCCD4)中分离了CCD4基因,与AtCCD4一起在大肠杆菌中表达。体内试验表明,CmCCD4a和MdCCD4很好地裂解了β-胡萝卜素,生成β-紫罗兰酮,而OfCCD4,RdCCD4和AtCCD4几乎对这种底物没有活性。当五个CCD4基因在表达顺式-β-胡萝卜素和番茄红素的大肠杆菌菌株中共表达时,没有发现裂解产物。然而,体外分析表明,AtCCD4和RdCCD4将8'-apo-β-胡萝卜素-8'-al分解为β-紫罗兰酮,而该apo-胡萝卜素几乎没有被OfCCD4,CmCCD4a和MdCCD4降解。 CCD4基因的基因克隆的序列分析表明, RdCCD4 AtCCD4 一样,不包含内含子,而 MdCCD OfCCD4 >和 CmCCD4a 包含内含子。这些结果表明植物产生至少两种不同形式的CCD4蛋白。尽管CCD4酶在相同位置(9,10和9',10')切割其底物,但它们可能具有不同的生化功能,因为它们接受不同的(apo)-类胡萝卜素底物,表现出多种表达模式,并且在基因组学上有不同的组织。

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