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铅暴露下萝卜根蛋白质组图谱的功能与整合分析

Functional and Integrative Analysis of the Proteomic Profile of Radish Root under Pb Exposure.

作者信息

Wang Yan, Xu Liang, Tang Mingjia, Jiang Haiyan, Chen Wei, Zhang Wei, Wang Ronghua, Liu Liwang

机构信息

National Key Laboratory of Crop Genetics and Germplasm Enhancement, College of Horticulture, Nanjing Agricultural University Nanjing, China.

出版信息

Front Plant Sci. 2016 Dec 15;7:1871. doi: 10.3389/fpls.2016.01871. eCollection 2016.

Abstract

Lead (Pb) is one of the most abundant heavy metal (HM) pollutants, which can penetrate the plant through the root and then enter the food chain causing potential health risks for human beings. Radish is an important root vegetable crop worldwide. To investigate the mechanism underlying plant response to Pb stress in radish, the protein profile changes of radish roots respectively upon Pb(NO) at 500 mg L(Pb500) and 1000 mg L(Pb1000), were comprehensively analyzed using iTRAQ (Isobaric Tag for Relative and Absolute Quantification). A total of 3898 protein species were successfully detected and 2141 were quantified. Among them, a subset of 721 protein species were differentially accumulated upon at least one Pb treatment, and 135 ones showed significantly abundance changes under both two Pb-stressed conditions. Many critical protein species related to protein translation, processing, and degradation, reactive oxygen species (ROS) scavenging, photosynthesis, and respiration and carbon metabolism were successfully identified. Gene Ontology (GO) and pathway enrichment analysis of the 135 differential abundance protein species (DAPS) revealed that the overrepresented GO terms included "cell wall," "apoplast," "response to metal ion," "vacuole," and "peroxidase activity," and the critical enriched pathways were involved in "citric acid (TCA) cycle and respiratory electron transport," "pyruvate metabolism," "phenylalanine metabolism," "phenylpropanoid biosynthesis," and "carbon metabolism." Furthermore, the integrative analysis of transcriptomic, miRNA, degradome, metabolomics and proteomic data provided a strengthened understanding of radish response to Pb stress at multiple levels. Under Pb stress, many key enzymes (i.e., ATP citrate lyase, Isocitrate dehydrogenase, fumarate hydratase and malate dehydrogenase) involved in the glycolysis and TCA cycle were severely affected, which ultimately cause alteration of some metabolites including glucose, citrate and malate. Meanwhile, a series of other defense responses including ascorbate (ASA)-glutathione (GSH) cycle for ROS scavenging and Pb-defense protein species (glutaredoxin, aldose 1-epimerase malate dehydrogenase and thioredoxin), were triggered to cope with Pb-induced injuries. These results would be helpful for further dissecting molecular mechanism underlying plant response to HM stresses, and facilitate effective management of HM contamination in vegetable crops by genetic manipulation.

摘要

铅(Pb)是最常见的重金属(HM)污染物之一,它可通过根部进入植物,进而进入食物链,对人类健康构成潜在风险。萝卜是全球重要的根菜类作物。为探究萝卜对铅胁迫的响应机制,利用iTRAQ(相对和绝对定量等压标签)技术全面分析了萝卜根在500 mg/L(Pb500)和1000 mg/L(Pb1000)硝酸铅处理下的蛋白质谱变化。共成功检测到3898种蛋白质,其中2141种得到定量。其中,721种蛋白质在至少一种铅处理下差异积累,135种在两种铅胁迫条件下均表现出显著的丰度变化。成功鉴定出许多与蛋白质翻译、加工和降解、活性氧(ROS)清除、光合作用、呼吸作用和碳代谢相关的关键蛋白质。对135种差异丰度蛋白质(DAPS)进行基因本体(GO)和通路富集分析表明,富集的GO术语包括“细胞壁”“质外体”“对金属离子的响应”“液泡”和“过氧化物酶活性”,关键的富集通路涉及“柠檬酸(TCA)循环和呼吸电子传递”“丙酮酸代谢”“苯丙氨酸代谢”“苯丙烷生物合成”和“碳代谢”。此外,转录组学、miRNA、降解组学、代谢组学和蛋白质组学数据的综合分析加深了对萝卜在多个水平上对铅胁迫响应的理解。在铅胁迫下,糖酵解和TCA循环中涉及的许多关键酶(如ATP柠檬酸裂解酶、异柠檬酸脱氢酶、富马酸水合酶和苹果酸脱氢酶)受到严重影响,最终导致包括葡萄糖、柠檬酸和苹果酸在内的一些代谢物发生改变。同时,还触发了一系列其他防御反应,包括用于ROS清除的抗坏血酸(ASA)-谷胱甘肽(GSH)循环以及铅防御蛋白(谷氧还蛋白、醛糖1-表异构酶苹果酸脱氢酶和硫氧还蛋白),以应对铅诱导的损伤。这些结果将有助于进一步剖析植物对重金属胁迫响应的分子机制,并通过基因操作促进蔬菜作物中重金属污染的有效管理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3e64/5156831/21485e1b9575/fpls-07-01871-g0001.jpg

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