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是一个调控草莓营养生长和生殖生长的重要基因。

is an important gene that regulates both vegetative growth and reproductive growth in strawberry.

作者信息

Chen Yating, Liu Liping, Feng Qianqian, Liu Chuang, Bao Yujuan, Zhang Nan, Sun Ronghui, Yin Zhaonan, Zhong Chuanfei, Wang Yuanhua, Li Qian, Li Bingbing

机构信息

Department of Pomology, College of Horticulture, China Agricultural University, Beijing, 10093, China.

Beijing Engineering Research Center for Strawberry, Institute of Forestry and Pomology, Beijing Academy of Agriculture and Forestry Sciences, Beijing, 100093, China.

出版信息

Hortic Res. 2023 May 31;10(7):uhad115. doi: 10.1093/hr/uhad115. eCollection 2023 Jul.

Abstract

The WRKY transcription factors play important roles in plant growth and resistance, but only a few members have been identified in strawberry. Here we identified a WRKY transcription factor, FvWRKY50, in diploid strawberry which played essential roles in strawberry vegetative growth, and reproductive growth. Knocking out by genome editing accelerated flowering time and leaf senescence but delayed anthocyanin accumulation in fruit. Further analysis showed that FvWRKY50 acted as a transcriptional repressor to negatively regulate the expression of flowering- and leaf senescence-related genes, including , , , and . Notably, FvWRKY50 directly upregulated the expression of and by binding their promoter under normal conditions, but at low temperature FvWRKY50 was phosphorylated by FvMAPK3 and then induced protein degradation by ubiquitination, delaying anthocyanin accumulation. In addition, the homozygous mutant of was smaller while the biallelic mutant showed normal size. These new findings provide important clues for us to further reveal the regulatory mechanisms of strawberry growth and fruit ripening.

摘要

WRKY转录因子在植物生长和抗性中发挥重要作用,但在草莓中仅鉴定出少数成员。在此,我们在二倍体草莓中鉴定出一个WRKY转录因子FvWRKY50,其在草莓营养生长和生殖生长中起关键作用。通过基因组编辑敲除该因子可加速开花时间和叶片衰老,但延迟果实中花青素的积累。进一步分析表明,FvWRKY50作为转录抑制因子负调控开花和叶片衰老相关基因的表达,包括 、 、 和 。值得注意的是,在正常条件下,FvWRKY50通过结合其启动子直接上调 和 的表达,但在低温下,FvWRKY50被FvMAPK3磷酸化,然后通过泛素化诱导蛋白质降解,从而延迟花青素积累。此外, 的纯合突变体较小,而双等位突变体大小正常。这些新发现为我们进一步揭示草莓生长和果实成熟的调控机制提供了重要线索。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/511d/10419500/a8c6b1646ce4/uhad115f1.jpg

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