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Improved heat stress tolerance of wheat seedlings by bacterial seed treatment

机译:通过细菌种子处理提高小麦幼苗的耐热性

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摘要

To investigate if rhizosphere bacteria can improve heat tolerance of wheat. Wheat (Triticum aestivum) seeds of the cultivars Olivin and Sids1 were treated with Bacillus amyloliquefaciens UCMB5113 or Azospirillum brasilense NO40 and young seedlings tested for management of short term heat stress. Bacterial treatment improved heat stress management of wheat. Olivin showed higher heat tolerance than Sids1 both with non-inoculated and inoculated seeds. Heat increased transcript levels of several stress related genes in the leaves, while expression was lower in inoculated plants but elevated compared with the control. Enzymes of the ascorbate-glutathione redox cycle were activated in leaves after heat challenge but showed a lower response in inoculated plants. Metabolite profiling distinguished different treatments dependent on analysis technique with respect to primary and secondary metabolites. Analysis of some plant stress regulatory genes showed that bacterial treatment increased transcript levels while effects of heat treatment varied. The improvement of heat tolerance by bacteria seems associated with reduced generation of reactive oxygen species (and consequently less cell damage), small changes in the metabolome while preactivation of certain heat shock transcription factors seems important. Seed inoculation with beneficial bacteria seems a promising strategy to improve heat tolerance of wheat.
机译:调查根际细菌是否可以提高小麦的耐热性。用解淀粉芽孢杆菌UCMB5113或巴西固氮螺旋藻(Azospirillum brasilense NO40)处理了Olivin和Sids1品种的小麦(Triticum aestivum)种子,并测试了幼苗对短期热胁迫的处理。细菌处理改善了小麦的热应激管理。无论是未接种种子还是已接种种子,奥利文都比Sids1表现出更高的耐热性。加热增加了叶片中几个胁迫相关基因的转录水平,而接种植物中的表达较低,但与对照相比升高。热挑战后,抗坏血酸-谷胱甘肽氧化还原循环的酶在叶片中被激活,但在接种植物中显示出较低的响应。代谢物分析根据主要和次要代谢物的分析技术区分了不同的处理方法。对一些植物胁迫调控基因的分析表明,细菌处理增加了转录水平,而热处理效果却有所不同。细菌对耐热性的改善似乎与减少活性氧的产生有关(因此对细胞的损害较小),代谢组的细微变化,而某些热休克转录因子的预激活似乎很重要。用有益细菌接种种子似乎可以改善小麦的耐热性。

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