首页> 外文OA文献 >Expression of a Bifunctional Fusion of the Escherichia coli Genes for Trehalose-6-Phosphate Synthase and Trehalose-6-Phosphate Phosphatase in Transgenic Rice Plants Increases Trehalose Accumulation and Abiotic Stress Tolerance without Stunting Growth1
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Expression of a Bifunctional Fusion of the Escherichia coli Genes for Trehalose-6-Phosphate Synthase and Trehalose-6-Phosphate Phosphatase in Transgenic Rice Plants Increases Trehalose Accumulation and Abiotic Stress Tolerance without Stunting Growth1

机译:在转基因水稻植物中表达海藻糖6-磷酸合酶和海藻糖-6-磷酸酶的大肠杆菌基因双功能融合蛋白可增加海藻糖积累和非生物胁迫耐受性,且不会阻碍生长1

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摘要

Trehalose plays an important role in stress tolerance in plants. Trehalose-producing, transgenic rice (Oryza sativa) plants were generated by the introduction of a gene encoding a bifunctional fusion (TPSP) of the trehalose-6-phosphate (T-6-P) synthase (TPS) and T-6-P phosphatase (TPP) of Escherichia coli, under the control of the maize (Zea mays) ubiquitin promoter (Ubi1). The high catalytic efficiency (Seo et al., 2000) of the fusion enzyme and the single-gene engineering strategy make this an attractive candidate for high-level production of trehalose; it has the added advantage of reducing the accumulation of potentially deleterious T-6-P. The trehalose levels in leaf and seed extracts from Ubi1::TPSP plants were increased up to 1.076 mg g fresh weight−1. This level was 200-fold higher than that of transgenic tobacco (Nicotiana tabacum) plants transformed independently with either TPS or TPP expression cassettes. The carbohydrate profiles were significantly altered in the seeds, but not in the leaves, of Ubi1::TPSP plants. It has been reported that transgenic plants with E. coli TPS and/or TPP were severely stunted and root morphology was altered. Interestingly, our Ubi1::TPSP plants showed no growth inhibition or visible phenotypic alterations despite the high-level production of trehalose. Moreover, trehalose accumulation in Ubi1::TPSP plants resulted in increased tolerance to drought, salt, and cold, as shown by chlorophyll fluorescence and growth inhibition analyses. Thus, our results suggest that trehalose acts as a global protectant against abiotic stress, and that rice is more tolerant to trehalose synthesis than dicots.
机译:海藻糖在植物抗逆性中起重要作用。通过引入编码海藻糖-6-磷酸(T-6-P)合酶(TPS)和T-6-P的双功能融合(TPSP)的基因,产生了产生海藻糖的转基因水稻(Oryza sativa)植物。在玉米(Zea mays)泛素启动子(Ubi1)的控制下,大肠杆菌的磷酸酶(TPP)。融合酶的高催化效率(Seo等,2000)和单基因工程策略使其成为高产量海藻糖的诱人候选物。它具有减少潜在有害T-6-P积累的额外优势。 Ubi1 :: TPSP植物的叶和种子提取物中的海藻糖水平增加到1.076 mg g新鲜体重-1。该水平比用TPS或TPP表达盒独立转化的转基因烟草(Nicotiana tabacum)植物高200倍。在Ubi1 :: TPSP植物的种子中,而不是在叶片中,碳水化合物的分布发生了显着变化。据报道,带有大肠杆菌TPS和/或TPP的转基因植物严重发育不良,根系形态发生了改变。有趣的是,尽管海藻糖的大量产生,我们的Ubi1 :: TPSP植物没有显示出生长抑制或可见的表型改变。此外,如叶绿素荧光和生长抑制分析所示,Ubi1 :: TPSP植物中海藻糖的积累导致对干旱,盐和寒冷的耐受性增强。因此,我们的研究结果表明,海藻糖可作为抵抗非生物胁迫的全球保护剂,与双子叶植物相比,水稻对海藻糖合成的耐受性更高。

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