综合代谢和转录分析揭示了类胡萝卜素裂解双加氧酶4 (IbCCD4)在甘薯块根类胡萝卜素积累中的作用。

Jie Zhang, Liheng He, Jingjing Dong, Cailiang Zhao, Yujie Wang, Ruimin Tang, Wenbin Wang, Zhixian Ji, Qinghe Cao, Hong'e Xie, Zongxin Wu, Runzhi Li, Ling Yuan, Xiaoyun Jia
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引用次数: 3

摘要

背景:植物类胡萝卜素对人类健康至关重要,在膳食补充剂、食用色素、动物饲料添加剂和化妆品中有着广泛的用途。随着人们对天然类胡萝卜素需求的增加,植物类胡萝卜素在世界范围内的学术和工业研究中引起了极大的兴趣。富含类胡萝卜素的橙皮甘薯(Ipomoea batatas)是生产天然类胡萝卜素的理想原料。然而,关于甘薯块根中类胡萝卜素代谢的分子机制的信息有限。结果:本研究对3个不同肉色甘薯品种的6个块根发育阶段的类胡萝卜素代谢谱和基因表达进行了分析。类胡萝卜素代谢基因表达与类胡萝卜素水平的相关性表明,类胡萝卜素裂解双加氧酶4 (IbCCD4)和9-顺式环氧类胡萝卜素裂解双加氧酶3 (IbNCED3)在甘薯类胡萝卜素含量调控中起重要作用。转基因实验证实,过表达ibccd4的甘薯块根中总类胡萝卜素含量降低。此外,IbCCD4可能受到两个与应激相关的转录因子IbWRKY20和IbCBF2的调控,这意味着甘薯中类胡萝卜素的积累可能是对应激信号的精细调节。结论:在甘薯类胡萝卜素积累过程中发现了一组关键基因,其中IbCCD4发挥了关键作用。这些发现为甘薯块根类胡萝卜素代谢提供了新的见解,并暗示IbCCD4可能是开发高类胡萝卜素产量甘薯新品种的靶基因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Integrated metabolic and transcriptional analysis reveals the role of carotenoid cleavage dioxygenase 4 (IbCCD4) in carotenoid accumulation in sweetpotato tuberous roots.

Background: Plant carotenoids are essential for human health, having wide uses in dietary supplements, food colorants, animal feed additives, and cosmetics. With the increasing demand for natural carotenoids, plant carotenoids have gained great interest in both academic and industry research worldwide. Orange-fleshed sweetpotato (Ipomoea batatas) enriched with carotenoids is an ideal feedstock for producing natural carotenoids. However, limited information is available regarding the molecular mechanism responsible for carotenoid metabolism in sweetpotato tuberous roots.

Results: In this study, metabolic profiling of carotenoids and gene expression analysis were conducted at six tuberous root developmental stages of three sweetpotato varieties with different flesh colors. The correlations between the expression of carotenoid metabolic genes and carotenoid levels suggested that the carotenoid cleavage dioxygenase 4 (IbCCD4) and 9-cis-epoxycarotenoid cleavage dioxygenases 3 (IbNCED3) play important roles in the regulation of carotenoid contents in sweetpotato. Transgenic experiments confirmed that the total carotenoid content decreased in the tuberous roots of IbCCD4-overexpressing sweetpotato. In addition, IbCCD4 may be regulated by two stress-related transcription factors, IbWRKY20 and IbCBF2, implying that the carotenoid accumulation in sweeetpotato is possibly fine-tuned in responses to stress signals.

Conclusions: A set of key genes were revealed to be responsible for carotenoid accumulation in sweetpotato, with IbCCD4 acts as a crucial player. Our findings provided new insights into carotenoid metabolism in sweetpotato tuberous roots and insinuated IbCCD4 to be a target gene in the development of new sweetpotato varieties with high carotenoid production.

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