ALA上调PpWRKY18,提高油桃雌蕊的抗冻能力

IF 5.7 1区 农林科学 Q1 HORTICULTURE Horticultural Plant Journal Pub Date : 2024-12-27 DOI:10.1016/j.hpj.2024.09.004
Zhouyu Yuan, Jianting Zhang, Longbo Liu, Liuzi Zhang, Xing Gan, Yan Zhong, Liangju Wang
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引用次数: 0

摘要

5-氨基乙酰丙酸(ALA)是促进植物抗冻性的天然植物生长调节剂。WRKY家族由与非生物胁迫反应相关的植物特异性转录因子(TFs)组成。到目前为止,WRKYs是否参与ala诱导的植物抗冻性及其机制尚不清楚。本研究发现,当花枝在−3°C环境下胁迫6 h时,提前1周处理50 mg·L−1 ALA可显著提高油桃雌蕊的抗冻性,并提高其抗氧化酶活性和渗透溶质。ALA还可提高PpWRKY18、PpCBF1、PpCOR1以及一些编码抗氧化酶(如超氧化物歧化酶、过氧化物酶、过氧化氢酶等)基因的表达。过氧化氢酶)和吡咯-5-羧酸合成酶(P5CS)。当PpWRKY18在烟草中过表达时,转基因植株表现出更强的抗冻能力,外源ALA进一步促进了抗冻能力的增强。Y2H、Pull-down、BiFC和LCI分析显示PpWRKY18与PpCBF1相互作用,促进后者的转录活性。此外,Y1H实验表明PpWRKY18直接结合PpPOD41的启动子,PpCBF1结合PpP5CS1和PpCOR1的启动子,激活靶基因表达。此外,我们以PpWRKY18启动子为诱饵,建立酵母文库,筛选上游调控因子。通过文库筛选、Y1H、DLR和EMSA,我们发现锌指蛋白PpC3H37对低温和ALA处理有响应,并且作为转录因子,它通过直接结合启动子激活PpWRKY18的表达。综上所述,我们揭示了一个ALA诱导PpC3H37表达上调的调控网络,其正向调节PpWRKY18的表达。随后,调控途径分化为两个分支。第一种是cbf依赖性的,其中PpCBF1与PpWRKY18相互作用,结合PpP5CS1和PpCOR1的启动子。第二种是不依赖cbf的,PpWRKY18直接结合PpPOD41的启动子上调基因表达,提高抗氧化酶活性和抗冻能力。这些发现为ALA调控油桃雌蕊抗寒性的机制提供了新的视角。
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ALA up-regulated PpWRKY18 to enhance freezing tolerance of nectarine pistils
5-Aminolevulinic acid (ALA) is a natural plant growth regulator that promotes plant freezing tolerance. The WRKY family consists of plant-specific transcription factors (TFs) associated with abiotic stress responses. Up to now, whether WRKYs are involved in ALA-induced plant freezing tolerance and the underlying mechanism is not clear. In this study, we found that pretreatment with 50 mg·L−1 ALA one week earlier significantly increased the freezing tolerance of nectarine (Prunus persica var. nectarina) pistils with higher antioxidant enzyme activity and osmotic solutes when the floral twigs were stressed by −3 °C for 6 h. ALA also enhanced the expression of PpWRKY18, PpCBF1, PpCOR1, and several genes encoding antioxidant enzymes (such as superoxide dismutase, peroxidase, and catalase) and pyrroline-5-carboxylate synthase (P5CS). When PpWRKY18 was overexpressed in tobacco, the transgenic plants exhibited greater freezing tolerance, which was further promoted by exogenous ALA. Y2H, Pull-down, BiFC, and LCI analyses revealed that PpWRKY18 interacts with PpCBF1, promoting the latter transcriptional activity. Additionally, Y1H experiments showed that PpWRKY18 directly binds to the promoter of PpPOD41 while PpCBF1 binds to the promoters of PpP5CS1 and PpCOR1, activating the target gene expressions. Furthermore, we established a yeast library using the promoter of PpWRKY18 as the bait to screen the upstream regulatory factors. By library screening, Y1H, DLR, and EMSA, we found that PpC3H37, a zinc finger protein, was responsive to chilling and ALA treatment, and as a transcription factor, it activated PpWRKY18 expression by directly binding to the promoter. Taken together, we reveal a regulatory network where ALA induces upregulation of PpC3H37 expression, which positively regulates PpWRKY18 expression. Subsequently, the regulatory pathway diverges into two branches. The first is CBF-dependent, where PpCBF1 interacts with PpWRKY18, binding the promoters of PpP5CS1 and PpCOR1. The second is CBF-independent, where PpWRKY18 directly binds the promoter of PpPOD41 to upregulate the gene expression and increase the antioxidant enzyme activity and freezing tolerance. These findings provide a novel insight of the mechanism of ALA in regulating the cold hardiness of nectarine pistil.
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来源期刊
Horticultural Plant Journal
Horticultural Plant Journal Environmental Science-Ecology
CiteScore
9.60
自引率
14.00%
发文量
293
审稿时长
33 weeks
期刊介绍: Horticultural Plant Journal (HPJ) is an OPEN ACCESS international journal. HPJ publishes research related to all horticultural plants, including fruits, vegetables, ornamental plants, tea plants, and medicinal plants, etc. The journal covers all aspects of horticultural crop sciences, including germplasm resources, genetics and breeding, tillage and cultivation, physiology and biochemistry, ecology, genomics, biotechnology, plant protection, postharvest processing, etc. Article types include Original research papers, Reviews, and Short communications.
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