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在果实发育过程中,类黄酮 3'-羟化酶的差异表达决定了草莓和野草莓中类黄酮 B 环羟化模式的不同。

Differential expression of flavonoid 3'-hydroxylase during fruit development establishes the different B-ring hydroxylation patterns of flavonoids in Fragaria × ananassa and Fragaria vesca.

机构信息

Technische Universität Wien, Institut für Verfahrenstechnik, Umwelttechnik und Technische Biowissenschaften, Getreidemarkt 9/1665, A-1060 Wien, Austria.

出版信息

Plant Physiol Biochem. 2013 Nov;72:72-8. doi: 10.1016/j.plaphy.2013.03.019. Epub 2013 Apr 8.

DOI:10.1016/j.plaphy.2013.03.019
PMID:23623754
Abstract

Flavonoid 3'-hydroxylase (F3'H) was studied for the first time in different Fragaria species. The cDNA clones isolated from unripe and ripe fruits of Fragaria x ananassa (garden strawberry) and Fragaria vesca (wild strawberry) showed high similarity (99% at the amino acid level) to the publically available F. vesca genome sequence and no significant differences could be identified between species and developmental stages of the fruits. In contrast, the genomic F3'H clones showed differences in the non-coding regions and 5'-flanking elements. The recombinant F3'Hs were functionally active and showed high specificity for naringenin, dihydrokaempferol, and kaempferol, whereas apigenin was only a minor substrate. During fruit development, a clear difference in the F3'H expression was observed between F. × ananassa and F. vesca. While a drastic decline of F3'H expression occurred during fruit ripening in F. × ananassa, F3'H in F. vesca was highly expressed in all stages. This was reflected by the anthocyanin composition, which showed a prevalence of pelargonidin in ripe fruits of F. × ananassa, whereas F. vesca had a high content of cyanidin. Screening of 17 berry species for their anthocyanin and flavonol composition showed that the prevalence of monohydroxylated anthocyanins makes garden strawberry unique among all other fruit species indicating that selection of bright red color during strawberry breeding, which consumers typically associate with freshness and ripeness, has selected phenotypes with a special biochemical background.

摘要

首次在不同的草莓属物种中研究了类黄酮 3'-羟化酶 (F3'H)。从未成熟和成熟的草莓(garden strawberry)和野生草莓(wild strawberry)果实中分离出的 cDNA 克隆与公开的 F. vesca 基因组序列具有高度相似性(氨基酸水平为 99%),并且在物种和果实发育阶段之间没有发现显著差异。相比之下,基因组 F3'H 克隆在非编码区和 5'侧翼元件存在差异。重组 F3'H 具有功能活性,对柚皮素、二氢山奈酚和山奈酚具有高特异性,而芹菜素只是次要底物。在果实发育过程中,草莓(garden strawberry)和草莓(wild strawberry)之间的 F3'H 表达存在明显差异。虽然在草莓(garden strawberry)果实成熟过程中 F3'H 表达急剧下降,但草莓(wild strawberry)中的 F3'H 在所有阶段都高度表达。这反映在花色苷组成上,草莓(garden strawberry)成熟果实中 pelargonidin 占优势,而草莓(wild strawberry)则含有高浓度的 cyanidin。对 17 种浆果物种的花色苷和类黄酮组成进行筛选表明,单羟基化花色苷的流行使 garden strawberry 在所有其他水果物种中独具特色,这表明在草莓育种过程中选择鲜艳的红色,消费者通常将其与新鲜度和成熟度联系在一起,已经选择了具有特殊生化背景的表型。

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