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Transcriptional and physiological analyses of short-term Iron deficiency response in apple seedlings provide insight into the regulation involved in photosynthesis

机译:对苹果幼苗短期铁缺乏反应的转录和生理分析为了解光合作用的调控提供了见识

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Iron (Fe) is an essential micronutrient for plants. Utilization of Fe deficiency-tolerant rootstock is an effective strategy to prevent Fe deficiency problems in fruit trees production. Malus halliana is an apple rootstock that is resistant to Fe deficiency; however, few molecular studies have been conducted on M. halliana. To evaluate short-term molecular response of M. halliana leaves under Fe deficiency condition, RNA sequencing (RNA-Seq) analyses were conducted at 0 (T1), 0.5 (T2) and 3 d (T3) after Fe-deficiency stress, and the timepoints were determined with a preliminary physiological experiment. In all, 6907, 5328, and 3593 differentially expressed genes (DEGs) were identified in pairs of T2 vs. T1, T3 vs. T1, and T3 vs. T2. Several of the enriched DEGs were related to heme binding, Fe ion binding, thylakoid membranes, photosystem II, photosynthesis-antenna protein, porphyrin and chlorophyll metabolism and carotenoid biosynthesis under Fe deficiency, which suggests that Fe deficiency mainly affects the photosynthesis of M. halliana. Additionally, we found that Fe deficiency induced significant down-regulation in genes involved in photosynthesis at T2 when seedlings were treated with Fe-deficient solution for 0.5 d, indicating that there was a rapid response of M. halliana to Fe deficiency. A strong up-regulation of photosynthesis genes was detected at T3, which suggested that M. halliana was able to recover photosynthesis after prolonged Fe starvation. A similar expression pattern was found in pigment regulation, including genes for coding chlorophyllide a oxygenase (CAO), β-carotene hydroxylase (β-OHase), zeaxanthin epoxidase (ZEP) and 9-cis-epoxycarotenoid dioxygenase (NCED). Our results suggest that pigment regulation plays an important role in the Fe deficiency response. In addition, we verified sixteen genes related to photosynthesis-antenna protein, porphyrin and chlorophyll metabolism and carotenoid biosynthesis pathways using quantitative real-time PCR (qRT-PCR) to ensure the accuracy of transcriptome data. Photosynthetic parameters, Chl fluorescence parameters and the activity of Chlase were also determined. This study broadly characterizes a molecular mechanism in which pigment and photosynthesis-related regulations play indispensable roles in the response of M. halliana to short-term Fe deficiency and provides a basis for future analyses of the key genes involved in the tolerance of Fe deficiency.
机译:铁(Fe)是植物必需的微量营养素。利用耐铁缺乏的砧木是预防果树生产中铁缺乏问题的有效策略。海棠属苹果是一种耐缺铁的苹果砧木。然而,很少有关于哈氏沼虾的分子研究。为了评估在缺铁条件下哈氏沼虾叶片的短期分子响应,在缺铁胁迫后的0(T1),0.5(T2)和3 d(T3)进行了RNA测序(RNA-Seq)分析,并且时间点是通过初步的生理实验确定的。总共在T2对T1,T3对T1和T3对T2对中鉴定了6907、5328和3593个差异表达基因(DEG)。富集的几种DEGs与血红素结合,铁离子结合,类囊体膜,光系统II,光合-触角蛋白,卟啉和叶绿素代谢以及铁缺乏下的类胡萝卜素生物合成有关,这表明铁缺乏主要影响哈氏沼虾的光合作用。 。此外,我们发现,当用缺铁溶液处理幼苗0.5 d时,缺铁会诱导T2处光合作用的基因显着下调,这表明哈氏沼虾对缺铁有快速反应。在T3检测到强烈的光合作用基因上调,这表明哈氏沼虾能够在长时间的Fe饥饿后恢复光合作用。在色素调节中发现了类似的表达模式,包括编码叶绿素加氧酶(CAO),β-胡萝卜素羟化酶(β-OHase),玉米黄质环氧酶(ZEP)和9-顺式环氧类胡萝卜素双加氧酶(NCED)的基因。我们的结果表明,色素调节在铁缺乏反应中起重要作用。此外,我们使用定量实时PCR(qRT-PCR)验证了与光合作用天线蛋白,卟啉和叶绿素代谢以及类胡萝卜素生物合成途径相关的16个基因,以确保转录组数据的准确性。还测定了光合参数,Chl荧光参数和Chlase活性。这项研究广泛地表征了一种分子机制,其中色素和光合作用相关的调节在海盐分枝杆菌对短期铁缺乏的响应中起着不可或缺的作用,并为今后分析与铁缺乏耐受性有关的关键基因提供了基础。

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