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Enhancement of folates in plants through metabolic engineering

机译:通过代谢工程增强植物中的叶酸

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Humans depend on plants as a major source of dietary folates. Inadequate dietary levels of the vitamin folate can lead to megaloblastic anemia, birth defects, impaired cognitive development, and increased risk of cardiovascular disease and cancer. The biofortification of folate levels in food crops is a target for metabolic engineering. Folates are synthesized de novo from pterins and para-amino benzoic acid, which are subsequently combined to form dihydropteroate, the direct precursor to clihydrofolate. We postulated that GTP cyclohydrolase-1, which catalyzes the first committed step in pterin biosynthesis, was a rate-limiting step in pterin synthesis in plants and, therefore, in folate synthesis. On this basis, we proposed that the expression of an unregulated bacterial GTP cyclohydrolase-1 in plants would increase pterin biosynthesis with a concomitant enhancement of folate levels. The folE gene encoding GTP cyclohydrolase-1 was cloned from Escherichia coli and introduced into Arabidopsis thaliana through plant transformation. The expression of bacterial GTP cyclohydrolase-1 in transgenic Arabidopsis resulted in a 1,250-fold and 2- to 4-fold enhancement of piterins and folates, respectively. These results helped to identify other potential factors regulating folate synthesis, suggesting ways to further enhance folate levels in food crops.
机译:人类依赖植物作为饮食中叶酸的主要来源。饮食中维生素叶酸水平不足会导致巨幼细胞性贫血,先天缺陷,认知发育受损以及心血管疾病和癌症的风险增加。粮食作物中叶酸水平的生物强化是代谢工程的目标。叶酸是由蝶呤和对氨基苯甲酸从头合成的,然后将它们合并形成二氢蝶呤,这是氢氢叶酸的直接前体。我们推测,GTP环水解酶-1催化蝶呤生物合成的第一个重要步骤,是植物蝶呤合成的限速步骤,因此也是叶酸合成的限速步骤。在此基础上,我们提出在植物中表达不受调控的细菌GTP环水解酶-1会增加蝶呤的生物合成,同时增加叶酸水平。从大肠杆菌克隆了编码GTP环水解酶-1的folE基因,并通过植物转化将其导入拟南芥。细菌GTP环水解酶-1在转基因拟南芥中的表达分别导致piterins和叶酸的增强1,250倍和2至4倍。这些结果有助于确定调节叶酸合成的其他潜在因素,从而提出了进一步提高粮食作物叶酸水平的方法。

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