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番茄 ZDS 的操作揭示了类胡萝卜素和 ABA 对果实发育和成熟的特异性影响。

Manipulation of ZDS in tomato exposes carotenoid- and ABA-specific effects on fruit development and ripening.

机构信息

Department of Plant Biology, Cornell University, Ithaca, NY, USA.

Boyce Thompson Institute for Plant Research, Cornell University, Ithaca, NY, USA.

出版信息

Plant Biotechnol J. 2020 Nov;18(11):2210-2224. doi: 10.1111/pbi.13377. Epub 2020 Apr 20.

Abstract

Spontaneous mutations in fruit-specific carotenoid biosynthetic genes of tomato (Solanum lycopersicum) have led to improved understanding of ripening-associated carotenogenesis. Here, we confirm that ZDS is encoded by a single gene in tomato transcriptionally regulated by ripening transcription factors RIN, NOR and ethylene. Manipulation of ZDS was achieved through transgenic repression and heterologous over-expression in tomato. CaMV 35S-driven RNAi repression inhibited carotenoid biosynthesis in all aerial tissues examined resulting in elevated levels of ζ-carotene isomers and upstream carotenoids, while downstream all trans-lycopene and subsequent photoprotective carotenes and xanthophylls were diminished. Consequently, immature fruit displayed photo-bleaching consistent with reduced levels of the photoprotective carotenes and developmental phenotypes related to a reduction in the carotenoid-derived phytohormone abscisic acid (ABA). ZDS-repressed ripe fruit was devoid of the characteristic red carotenoid, all trans-lycopene and displayed brilliant yellow pigmentation due to elevated 9,9' di-cis-ζ-carotene. Over-expression of the Arabidopsis thaliana ZDS (AtZDS) gene bypassed endogenous co-suppression and revealed ZDS as an additional bottleneck in ripening-associated carotenogenesis of tomato. Quantitation of carotenoids in addition to multiple ripening parameters in ZDS-altered lines and ABA-deficient fruit-specific carotenoid mutants was used to separate phenotypic consequences of ABA from other effects of ZDS manipulation and reveal a unique and dynamic ζ-carotene isomer profile in ripe fruit.

摘要

番茄(Solanum lycopersicum)中与果实特异性类胡萝卜素生物合成相关的基因发生自发突变,有助于深入了解与成熟相关的类胡萝卜素生物合成。本研究证实,番茄 ZDS 基因由单一基因编码,转录调控受成熟相关转录因子 RIN、NOR 和乙烯的调控。通过在番茄中进行转基因抑制和异源过表达,实现了对 ZDS 的操作。CaMV 35S 驱动的 RNAi 抑制导致所有检测到的气生组织中的类胡萝卜素生物合成受到抑制,导致 ζ-胡萝卜素异构体和上游类胡萝卜素水平升高,而下游全反式番茄红素和随后的光保护类胡萝卜素和叶黄素减少。因此,未成熟果实表现出光漂白现象,与光保护类胡萝卜素水平降低以及与类胡萝卜素衍生植物激素脱落酸(ABA)减少相关的发育表型一致。ZDS 抑制的成熟果实缺乏特征性的红色类胡萝卜素全反式番茄红素,并因 9,9' 双顺式 ζ-胡萝卜素的升高而呈现出鲜艳的黄色色素沉着。拟南芥 ZDS(AtZDS)基因的过表达绕过了内源性共抑制,并揭示 ZDS 是番茄成熟相关类胡萝卜素生物合成的另一个瓶颈。对 ZDS 改变的系和 ABA 缺陷型果实特异性类胡萝卜素突变体中的类胡萝卜素和多个成熟参数进行定量分析,可将 ABA 的表型后果与 ZDS 操作的其他影响区分开来,并揭示成熟果实中独特而动态的 ζ-胡萝卜素异构体图谱。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cca3/11386879/f34ba081f4e3/PBI-18-2210-g002.jpg

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