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特殊甘薯(红薯)贮藏根表型的碳分配和质体下造粉体结构变化

Changes in carbon allocation and subplastidal amyloplast structures of specialised Ipomoea batatas (sweet potato) storage root phenotypes.

作者信息

Drapal Margit, Gerrish Christopher, Fraser Paul D

机构信息

School of Biological Sciences, Royal Holloway University of London, Egham, TW200EX, United Kingdom.

School of Biological Sciences, Royal Holloway University of London, Egham, TW200EX, United Kingdom.

出版信息

Phytochemistry. 2022 Nov;203:113409. doi: 10.1016/j.phytochem.2022.113409. Epub 2022 Aug 29.

Abstract

Vitamin A deficiency (VAD) in Low and Medium Income countries remains a major health concern. Ipomoea batatas, orange sweet potato (OSP), is one of the biofortification solutions being implemented by the World Health Organisation (WHO) to combat VAD. However, high provitamin A (β-carotene) content has been associated with a reduction in dry matter, reducing calorific value and having adverse effects on consumer traits. Both starch and carotenoid formation are located in amyloplasts and could potentially compete for the same precursors. Hence, five different sweet potato storage root phenotypes were characterized through spatial metabolomics and proteomics at the sub-plastidal level. The metabolite data suggested an indirect correlation of starch and carotenoids through the TCA cycle and pentose phosphate pathway. Furthermore, a change in lipid composition was observed to accommodate the storage of carotenoids in the hydrophilic environment of the amyloplast. The data suggests an alteration of cellular ultra-structures and perturbation of metabolism in high β-carotene producing sweet potato roots. This corroborates with previous gene expression analysis through biochemical analysis of sweet potato root tissue.

摘要

低收入和中等收入国家的维生素A缺乏症(VAD)仍然是一个主要的健康问题。甘薯,即橙色红薯(OSP),是世界卫生组织(WHO)为对抗VAD而实施的生物强化解决方案之一。然而,高含量的维生素原A(β-胡萝卜素)与干物质减少、热值降低以及对消费者特性产生不利影响有关。淀粉和类胡萝卜素的形成都位于造粉体中,并且可能会争夺相同的前体。因此,通过亚质体水平的空间代谢组学和蛋白质组学对五种不同的甘薯贮藏根表型进行了表征。代谢物数据表明,淀粉和类胡萝卜素通过三羧酸循环和磷酸戊糖途径存在间接相关性。此外,观察到脂质组成发生变化,以适应类胡萝卜素在造粉体亲水环境中的储存。数据表明,高β-胡萝卜素含量的甘薯根中细胞超微结构发生改变,代谢受到干扰。这与之前通过甘薯根组织生化分析进行的基因表达分析结果一致。

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