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首页> 外文期刊>Scientific reports. >Overexpression of the brassinosteroid biosynthetic gene DWF4 in Brassica napus simultaneously increases seed yield and stress tolerance
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Overexpression of the brassinosteroid biosynthetic gene DWF4 in Brassica napus simultaneously increases seed yield and stress tolerance

机译:芸苔类化芸苔类化合物的过表达芸苔豆腐中的DWF4同时增加种子产量和应力耐受性

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As a resource allocation strategy, plant growth and defense responses are generally mutually antagonistic. Brassinosteroid (BR) regulates many aspects of plant development and stress responses, however, genetic evidence of its integrated effects on plant growth and stress tolerance is lacking. We overexpressed the Arabidopsis BR biosynthetic gene AtDWF4 in the oilseed plant Brassica napus and scored growth and stress response phenotypes. The transgenic B. napus plants, in comparison to wild type, displayed increased seed yield leading to increased overall oil content per plant, higher root biomass and root length, significantly better tolerance to dehydration and heat stress, and enhanced resistance to necrotrophic fungal pathogens Leptosphaeria maculans and Sclerotinia sclerotiorum. Transcriptome analysis supported the integrated effects of BR on growth and stress responses; in addition to BR responses associated with growth, a predominant plant defense signature, likely mediated by BES1/BZR1, was evident in the transgenic plants. These results establish that BR can interactively and simultaneously enhance abiotic and biotic stress tolerance and plant productivity. The ability to confer pleiotropic beneficial effects that are associated with different agronomic traits suggests that BR-related genes may be important targets for simultaneously increasing plant productivity and performance under stress conditions.
机译:作为资源分配策略,植物生长和防御反应通常是相互拮抗的。芸苔类固醇(BR)调节植物发育和应力反应的许多方面,然而,缺乏其对植物生长和胁迫耐受性的综合影响的遗传证据。我们过表达拟南芥BR生物合成基因ATDWF4在油籽植物甘蓝型插口中,并均得分生长和应激响应表型。与野生型的转基因B. Napus植物显示出种子产量增加,导致每个植物的总体油含量增加,较高的根生物质和根长,明显更好地耐受脱水和热应激,并增强对病症的抗病性真菌病原体瘦性病原体瘦性病原体maculans和sclerotinia sclerotiorum。转录组分析支持BR对生长和压力反应的综合影响;除了与生长相关的BR反应之外,在转基因植物中,可能在BES1 / BZR1介导的主要植物防御签名。这些结果建立了BR可以互动,同时增强非生物和生物应激耐受性和植物生产率。赋予与不同农艺性特征相关的热熵有益效果的能力表明,BR相关基因可能是同时增加植物生产率和在压力条件下的性能的重要目标。

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