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The Salt-Stress Response of the Transgenic Plum Line J8-1 and Its Interaction with the Salicylic Acid Biosynthetic Pathway from Mandelonitrile

机译:转基因李子系J8-1的盐胁迫响应及其与水杨酸腈水杨酸生物合成途径的相互作用

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摘要

Salinity is considered as one of the most important abiotic challenges that affect crop productivity. Plant hormones, including salicylic acid (SA), are key factors in the defence signalling output triggered during plant responses against environmental stresses. We have previously reported in peach a new SA biosynthetic pathway from mandelonitrile (MD), the molecule at the hub of the cyanogenic glucoside turnover in Prunus sp. In this work, we have studied whether this new SA biosynthetic pathway is also present in plum and the possible role this pathway plays in plant plasticity under salinity, focusing on the transgenic plum line J8-1, which displays stress tolerance via an enhanced antioxidant capacity. The SA biosynthesis from MD in non-transgenic and J8-1 micropropagated plum shoots was studied by metabolomics. Then the response of J8-1 to salt stress in presence of MD or Phe (MD precursor) was assayed by measuring: chlorophyll content and fluorescence parameters, stress related hormones, levels of non-enzymatic antioxidants, the expression of two genes coding redox-related proteins, and the content of soluble nutrients. The results from in vitro assays suggest that the SA synthesis from the MD pathway demonstrated in peach is not clearly present in plum, at least under the tested conditions. Nevertheless, in J8-1 NaCl-stressed seedlings, an increase in SA was recorded as a result of the MD treatment, suggesting that MD could be involved in the SA biosynthesis under NaCl stress conditions in plum plants. We have also shown that the plum line J8-1 was tolerant to NaCl under greenhouse conditions, and this response was quite similar in MD-treated plants. Nevertheless, the MD treatment produced an increase in SA, jasmonic acid (JA) and reduced ascorbate (ASC) contents, as well as in the coefficient of non-photochemical quenching (qN) and the gene expression of Non-Expressor of Pathogenesis-Related 1 (NPR1) and thioredoxin H (TrxH) under salinity conditions. This response suggested a crosstalk between different signalling pathways (NPR1/Trx and SA/JA) leading to salinity tolerance in the transgenic plum line J8-1.
机译:盐分被认为是影响作物生产力的最重要的非生物挑战之一。植物激素(包括水杨酸(SA))是植物应对环境胁迫期间触发的防御信号输出中的关键因素。我们以前曾在桃子中报道过一种新的SA合成途径,该途径是由Mandelonitrile(MD)(李属种中生氰苷交换中心的分子)形成的。在这项工作中,我们研究了这种新的SA生物合成途径是否也存在于李子中,以及该途径在盐分下对植物可塑性的可能作用,重点研究了转基因李子系J8-1,其通过增强的抗氧化能力表现出胁迫耐受性。通过代谢组学研究了在非转基因和J8-1微繁李子芽中MD的SA生物合成。然后通过以下方法测定J8-1对MD或Phe(MD前体)存在下的盐胁迫的响应:测量叶绿素含量和荧光参数,胁迫相关激素,非酶类抗氧化剂的水平,两个编码氧化还原酶的基因的表达相关蛋白质,以及可溶性营养素的含量。体外试验的结果表明,至少在测试条件下,桃子中从MD途径证明的SA合成并没有明显存在于李子中。然而,在J8-1 NaCl胁迫的幼苗中,由于MD处理而记录到SA的增加,这表明在NaCl胁迫条件下李子植物中MD可能参与SA的生物合成。我们还显示了李子线J8-1在温室条件下对NaCl耐受,并且这种反应在MD处理的植物中非常相似。然而,MD处理导致SA,茉莉酸(JA)含量增加和抗坏血酸(ASC)含量降低,以及非光化学猝灭系数(qN)和与病程相关的非表达子的基因表达1(NPR1)和硫氧还蛋白H(TrxH)在盐度条件下。这种反应表明,不同信号传导途径(NPR1 / Trx和SA / JA)之间存在串扰,导致转基因李子系J8-1的耐盐性。

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