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首页> 外文期刊>BMC Plant Biology >Temporal transcriptome profiling reveals expression partitioning of homeologous genes contributing to heat and drought acclimation in wheat ( Triticum aestivum L.)
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Temporal transcriptome profiling reveals expression partitioning of homeologous genes contributing to heat and drought acclimation in wheat ( Triticum aestivum L.)

机译:时间转录组谱分析揭示了同源基因的表达分区,这有助于小麦的高温和干旱适应(Triticum aestivum L.)

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摘要

Hexaploid wheat (Triticum aestivum) is a globally important crop. Heat, drought and their combination dramatically reduce wheat yield and quality, but the molecular mechanisms underlying wheat tolerance to extreme environments, especially stress combination, are largely unknown. As an allohexaploid, wheat consists of three closely related subgenomes (A, B, and D), and was reported to show improved tolerance to stress conditions compared to tetraploid. But so far very little is known about how wheat coordinates the expression of homeologous genes to cope with various environmental constraints on the whole-genome level. To explore the transcriptional response of wheat to the individual and combined stress, we performed high-throughput transcriptome sequencing of seedlings under normal condition and subjected to drought stress (DS), heat stress (HS) and their combination (HD) for 1?h and 6?h, and presented global gene expression reprograms in response to these three stresses. Gene Ontology (GO) enrichment analysis of DS, HS and HD responsive genes revealed an overlap and complexity of functional pathways between each other. Moreover, 4,375 wheat transcription factors were identified on a whole-genome scale based on the released scaffold information by IWGSC, and 1,328 were responsive to stress treatments. Then, the regulatory network analysis of HSFs and DREBs implicated they were both involved in the regulation of DS, HS and HD response and indicated a cross-talk between heat and drought stress. Finally, approximately 68.4?% of homeologous genes were found to exhibit expression partitioning in response to DS, HS or HD, which was further confirmed by using quantitative RT-PCR and Nullisomic-Tetrasomic lines. A large proportion of wheat homeologs exhibited expression partitioning under normal and abiotic stresses, which possibly contributes to the wide adaptability and distribution of hexaploid wheat in response to various environmental constraints.
机译:六倍体小麦(Triticum aestivum)是全球重要的农作物。高温,干旱及其结合会大大降低小麦的产量和品质,但小麦对极端环境的耐受性(尤其是胁迫组合)的分子机制尚不清楚。作为异源六倍体,小麦由三个密切相关的亚基因组(A,B和D)组成,据报道,与四倍体相比,小麦对胁迫条件的耐受性提高。但是到目前为止,关于小麦如何协调同源基因的表达以应对全基因组水平的各种环境限制的了解还很少。为了探索小麦对单个胁迫和复合胁迫的转录反应,我们在正常条件下对幼苗进行了高通量转录组测序,并对其进行干旱胁迫(DS),热胁迫(HS)及其组合(HD)持续1?h和6?h,并提出了针对这三个压力的全局基因表达重编程。 DS,HS和HD响应基因的基因本体论(GO)富集分析揭示了彼此之间功能途径的重叠和复杂性。此外,根据IWGSC发布的支架信息,在全基因组范围内鉴定了4,375个小麦转录因子,其中1,328个对胁迫处理有反应。然后,HSF和DREB的调控网络分析表明它们都参与了DS,HS和HD反应的调控,并表明了高温和干旱胁迫之间的相互影响。最后,发现约68.4%的同源基因表现出响应DS,HS或HD的表达分配,这通过使用定量RT-PCR和Nullisomic-Tetrasomic品系进​​一步证实。大部分小麦同源物在正常和非生物胁迫下均表现出表达分区,这可能有助于六倍体小麦在各种环境约束下的广泛适应性和分布。

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