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Proteomic Analysis Reveals the Positive Roles of the Plant-Growth-Promoting Rhizobacterium NSY50 in the Response of Cucumber Roots to Fusarium oxysporum f. sp. cucumerinum Inoculation

机译:蛋白质组学分析揭示了促进植物生长的根瘤菌NSY50在黄瓜根对尖孢镰刀菌(Fusarium oxysporum f)应答中的积极作用。 sp。黄瓜接种

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摘要

Plant-growth-promoting rhizobacteria (PGPR) can both improve plant growth and enhance plant resistance against a variety of environmental stresses. To investigate the mechanisms that PGPR use to protect plants under pathogenic attack, transmission electron microscopy analysis and a proteomic approach were designed to test the effects of the new potential PGPR strain Paenibacillus polymyxa NSY50 on cucumber seedling roots after they were inoculated with the destructive phytopathogen Fusarium oxysporum f. sp. cucumerinum (FOC). NSY50 could apparently mitigate the injury caused by the FOC infection and maintain the stability of cell structures. The two-dimensional electrophoresis (2-DE) approach in conjunction with MALDI-TOF/TOF analysis revealed a total of 56 proteins that were differentially expressed in response to NSY50 and/or FOC. The application of NSY50 up-regulated most of the identified proteins that were involved in carbohydrate metabolism and amino acid metabolism under normal conditions, which implied that both energy generation and the production of amino acids were enhanced, thereby ensuring an adequate supply of amino acids for the synthesis of new proteins in cucumber seedlings to promote plant growth. Inoculation with FOC inhibited most of the proteins related to carbohydrate and energy metabolism and to protein metabolism. The combined inoculation treatment (NSY50+FOC) accumulated abundant proteins involved in defense mechanisms against oxidation and detoxification as well as carbohydrate metabolism, which might play important roles in preventing pathogens from attacking. Meanwhile, western blotting was used to analyze the accumulation of enolase (ENO) and S-adenosylmethionine synthase (SAMs). NSY50 further increased the expression of ENO and SAMs under FOC stress. In addition, NSY50 adjusted the transcription levels of genes related to those proteins. Taken together, these results suggest that P. polymyxa NSY50 may promote plant growth and alleviate FOC-induced damage by improving the metabolism and activation of defense-related proteins in cucumber roots.
机译:促进植物生长的根际细菌(PGPR)既可以改善植物的生长,又可以增强植物对各种环境胁迫的抗性。为了研究PGPR用于保护植物免受致病性侵害的机制,设计了透射电子显微镜分析和蛋白质组学方法,以测试新的潜在PGPR菌株多粘性芽孢杆菌NSY50对黄瓜幼苗根部接种破坏性植物病原性镰刀菌后的作用。 oxysporum f。 sp。黄瓜(FOC)。 NSY50显然可以减轻FOC感染引起的损伤并维持细胞结构的稳定性。二维电泳(2-DE)方法与MALDI-TOF / TOF分析相结合,揭示了总共56种蛋白质响应NSY50和/或FOC差异表达。 NSY50的应用上调了正常条件下糖代谢和氨基酸代谢中涉及的大多数已鉴定蛋白,这意味着能量的产生和氨基酸的产生均得到增强,从而确保了氨基酸的充足供应。黄瓜幼苗中新蛋白质的合成以促进植物生长。接种FOC可以抑制大多数与碳水化合物和能量代谢以及蛋白质代谢有关的蛋白质。联合接种处理(NSY50 + FOC)积累了丰富的蛋白质,这些蛋白质参与了抗氧化和解毒以及碳水化合物代谢的防御机制,这可能在防止病原体侵袭中起重要作用。同时,利用蛋白质印迹法分析了烯醇化酶(ENO)和S-腺苷甲硫氨酸合酶(SAMs)的积累。 NSY50进一步增加了FOC胁迫下ENO和SAMs的表达。另外,NSY50调节了与那些蛋白质相关的基因的转录水平。综上所述,这些结果表明,多粘多糖NSY50可以通过改善黄瓜根部防御相关蛋白的代谢和活化来促进植物生长并减轻FOC诱导的伤害。

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