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iTRAQ-Based Comparative Proteomic Analysis of Seedling Leaves of Two Upland Cotton Genotypes Differing in Salt Tolerance

机译:基于iTRAQ的两个耐盐性不同的陆地棉基因型幼苗叶片的比较蛋白质组学分析

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摘要

Cotton yields are greatly reduced under high salinity stress conditions, although cotton is considered a moderately salt-tolerant crop. Understanding at the molecular level how cotton responds to salt stress will help in developing salt tolerant varieties. Here, we combined physiological analysis with isobaric tags for relative and absolute quantitation (iTRAQ)-based proteomics of seedling leaves of 2 genotypes differing in salinity tolerance to 200 mM (18.3 dS/m) NaCl stress. Salt stress produced significant stress symptoms in the sensitive genotype Nan Dan Ba Di Da Hua (N), including lower relative water and chlorophyll contents and higher relative electrolyte leakage and Na+/K+ ratio in leaf samples, compared with those in the tolerant genotype Earlistaple 7 (Z). A total of 58 differentially abundant salt-responsive proteins were identified. Asp-Glu-Ala-Asp (DEAD)-box ATP-dependent RNA helicase 3 and protochlorophyllide reductase were markedly suppressed after salt treatment, whereas the phosphate-related differentially abundant proteins (DAPs) phosphoethanolamine N-methyltransferase 1 and 14-3-3-like protein E were induced, and all these proteins may play significant roles in salt stress. Twenty-nine salt-responsive proteins were also genotype specific, and 62.1 and 27.6% of these were related to chloroplast and defense responses, respectively. Based on the Arabidopsis thaliana protein interaction database, orthologs of 25 proteins showed interactions in Arabidopsis, and among these, a calmodulin protein was predicted to have 212 functional partners. In addition, the Golgi apparatus and calcium may be important for salt secretion in cotton. Through integrative proteome and transcriptome analysis, 16 DAPs were matched to differentially expressed genes and verified using qRT-PCR. On the basis of these findings, we proposed that some proteins related to chloroplast, ATP, ribosomal, and phosphate metabolism as well as to the Golgi apparatus and calcium may play key roles in the short-term salt stress response of cotton seedling leaves.
机译:在高盐度胁迫条件下,尽管棉花被认为是中等耐盐作物,但棉花单产却大大降低。在分子水平上了解棉花对盐胁迫的反应将有助于开发耐盐品种。在这里,我们将生理分析与同量异位标记相结合,以相对和绝对定量(iTRAQ)为基础的蛋白质组学的2种基因型的盐度对200 mM(18.3 dS / m)NaCl胁迫的耐盐性不同。盐胁迫在敏感基因型南单巴第大华(N)中产生明显的胁迫症状,包括相对较低的水和叶绿素含量以及较高的相对电解质渗漏和Na + / K + 比率。总共鉴定出58种差异丰富的盐反应蛋白。盐处理后,Asp-Glu-Ala-Asp(DEAD)-box ATP依赖性RNA解旋酶3和原叶绿素还原酶明显受到抑制,而磷酸盐相关的差异丰富蛋白(DAP)磷酸乙醇胺N-甲基转移酶1和14-3-3样蛋白E被诱导,所有这些蛋白可能在盐胁迫中起重要作用。 29个盐反应蛋白也是基因型特异性的,其中62.1和27.6%分别与叶绿体和防御反应有关。根据拟南芥蛋白质相互作用数据库,有25种蛋白质的直系同源物显示出在拟南芥中的相互作用,其中钙调蛋白蛋白预计具有212个功能伙伴。另外,高尔基体和钙对于棉花中盐的分泌可能很重要。通过整合蛋白质组和转录组分析,将16个DAP与差异表达的基因进行匹配,并使用qRT-PCR进行验证。根据这些发现,我们提出一些与叶绿体,ATP,核糖体和磷酸盐代谢以及高尔基体和钙有关的蛋白质可能在棉花幼苗叶片的短期盐胁迫响应中起关键作用。

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