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A small-scale proteomic approach reveals a survival strategy including a reduction in alkaloid biosynthesis in Hyoscyamus albus roots subjected to iron deficiency

机译:一种小规模的蛋白质组学方法揭示了在遭受铁缺乏的扁豆根中的生存策略包括减少生物碱的生物合成。

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摘要

Hyoscyamus albus is a well-known source of the tropane alkaloids, hyoscyamine and scopolamine, which are biosynthesized in the roots. To assess the major biochemical adaptations that occur in the roots of this plant in response to iron deficiency, we used a small-scale proteomic approach in which 100 mg of root tips were treated with and without Fe, respectively, for 5 days. Two-dimensional mini gels showed that 48 spots were differentially accumulated between the two conditions of Fe availability and a further 36 proteins were identified from these spots using MALDI-QIT-TOF mass spectrometry. The proteins that showed elevated levels in the roots lacking Fe were found to be associated variously with carbohydrate metabolism, cell differentiation, secondary metabolism, and oxidative defense. Most of the proteins involved in carbohydrate metabolism were increased in abundance, but mitochondrial NAD-dependent malate dehydrogenase was decreased, possibly resulting in malate secretion. Otherwise, all the proteins showing diminished levels in the roots were identified as either Fe-containing or ATP-requiring. For example, a significant decrease was observed in the levels of hyoscyamine 6β-hydroxylase (H6H), which requires Fe and is involved in the conversion of hyoscyamine to scopolamine. To investigate the effects of Fe deficiency on alkaloid biosynthesis, gene expression studies were undertaken both for H6H and for another Fe-dependent protein, Cyp80F1, which is involved in the final stage of hyoscyamine biosynthesis. In addition, tropane alkaloid contents were determined. Reduced gene expression was observed in the case of both of these proteins and was accompanied by a decrease in the content of both hyoscyamine and scopolamine. Finally, we have discussed energetic and Fe-conservation strategies that might be adopted by the roots of H. albus to maintain iron homeostasis under Fe-limiting conditions.
机译:os丝是根系生物合成的托烷生物碱、,丝胺和东pol碱的众所周知来源。为了评估因缺铁而在植物根部发生的主要生化适应性变化,我们使用了一种小规模的蛋白质组学方法,其中分别在100 mg的根尖中加入或不加入Fe,处理5天。二维微型凝胶显示,在两种可用铁条件下,差异累积了48个斑点,并使用MALDI-QIT-TOF质谱从这些斑点中鉴定出另外36种蛋白质。在缺乏铁的根中显示出升高水平的蛋白质被发现与碳水化合物代谢,细胞分化,次生代谢和氧化防御有不同的联系。参与碳水化合物代谢的大多数蛋白质都大量增加,但线粒体NAD依赖性苹果酸脱氢酶减少,可能导致苹果酸分泌。否则,所有在根中显示水平降低的蛋白质都被鉴定为含铁或需要ATP。例如,观察到hysocyamine6β-羟化酶(H6H)的水平显着下降,这需要Fe,并且参与hysocyamine到东pol碱的转化。为了研究铁缺乏对生物碱生物合成的影响,对H6H和另一种铁依赖性蛋白Cyp80F1进行了基因表达研究,该蛋白参与了hyscyamine生物合成的最后阶段。另外,测定了托烷生物碱含量。在这两种蛋白质中均观察到基因表达降低,并伴有丝胺和东pol碱含量的降低。最后,我们讨论了H. albus的根可能采用的能量和铁保护策略,以在铁限制条件下维持铁稳态。

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