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Proteomic analysis of heat stress resistance of cucumber leaves when grafted onto Momordica rootstock

机译:苦瓜嫁接黄瓜叶片耐热胁迫的蛋白质组学分析

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摘要

Various biotic and abiotic stresses threaten the cultivation of future agricultural crops. Among these stresses, heat stress is a major abiotic stress that substantially reduces agricultural productivity. Many strategies to enhance heat stress tolerance of crops have been developed, among which is grafting. Here, we show that Momordica-grafted cucumber scions have intrinsically enhanced chlorophyll content, leaf area, and net photosynthetic rate under heat stress compared to plants grafted onto cucumber rootstock. To investigate the mechanisms by which Momordica rootstock enhanced cucumber scions heat stress tolerance, comparative proteomic analysis of cucumber leaves in response to rootstock-grafting and/or heat stress was conducted. Seventy-seven differentially accumulated proteins involved in diverse biological processes were identified by two-dimensional electrophoresis (2-DE) in conjunction with matrix-assisted laser desorption/ionization time-of-flight/time-of-flight mass spectrometry (MALDI-TOF/TOF MS). The following four main categories of proteins were involved: photosynthesis (42.8%), energy and metabolism (18.2%), defense response (14.3%), and protein and nucleic acid biosynthesis (11.7%). Proteomic analysis revealed that scions grafted onto Momordica rootstocks upregulated more proteins involved in photosynthesis compared to scions grafted onto cucumber rootstocks under heat stress and indicated enhanced photosynthetic capacity when seedlings were exposed to heat stress. Furthermore, the expression of photosynthesis-related genes in plants grafted onto Momordica rootstocks significantly increased in response to heat stress. In addition, increased high-temperature tolerance of plants grafted onto Momordica rootstock was associated with the accumulation of ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) and oxygen-evolving enhancer protein 1 (OEE1). Taken together, the data indicated that Momordica rootstock might alleviate growth inhibition caused by heat stress by improving photosynthesis, providing valuable insight into enhancing heat stress tolerance in the global warming epoch.
机译:各种生物和非生物胁迫都威胁着未来农作物的种植。在这些胁迫中,热胁迫是主要的非生物胁迫,其大大降低了农业生产率。已经开发出许多增强农作物对热胁迫的耐受性的策略,其中包括嫁接。在这里,我们表明,与嫁接到黄瓜砧木上的植物相比,苦瓜移植的黄瓜接穗在热胁迫下具有内在增强的叶绿素含量,叶面积和净光合速​​率。为了研究苦瓜砧木增强黄瓜接穗耐热胁迫的机制,对黄瓜叶片响应砧木嫁接和/或热胁迫进行了比较蛋白质组学分析。通过二维电泳(2-DE)结合基质辅助激光解吸/电离飞行时间/飞行时间质谱(MALDI-TOF)鉴定了涉及多种生物过程的77种差异积累的蛋白质/ TOF MS)。涉及以下四个主要类别的蛋白质:光合作用(42.8%),能量和代谢(18.2%),防御反应(14.3%)以及蛋白质和核酸生物合成(11.7%)。蛋白质组学分析表明,与在高温胁迫下嫁接到黄瓜砧木上的接穗相比,嫁接到苦瓜砧木上的接穗上调了更多的光合作用蛋白,并表明幼苗在热胁迫下的光合能力增强。此外,响应热应激,嫁接在苦瓜根茎上的植物中与光合作用相关的基因表达显着增加。此外,嫁接在苦瓜根茎上的植物对高温的耐受性与核糖-1,5-双磷酸羧化酶/加氧酶(Rubisco)和释氧增强蛋白1(OEE1)的积累有关。综上所述,数据表明,苦瓜砧木可能通过改善光合作用减轻热胁迫引起的生长抑制,为增强全球变暖时期的热胁迫耐受性提供了宝贵的见识。

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