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首页> 外文期刊>The Biochemical Journal >Comparative transcriptome analysis of nodules of two Mesorhizobium-chickpea associations with differential symbiotic efficiency under phosphate deficiency
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Comparative transcriptome analysis of nodules of two Mesorhizobium-chickpea associations with differential symbiotic efficiency under phosphate deficiency

机译:磷酸盐缺乏下鉴别共生效率的两种中丘脑 - 鹰嘴豆术结节的比较转录体分析

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摘要

Phosphate (Pi) deficiency is known to be a major limitation for symbiotic nitrogen fixation (SNF), and hence legume crop productivity globally. However, very little information is available on the adaptive mechanisms, particularly in the important legume crop chickpea (Cicer arietinum L.), which enable nodules to respond to low-Pi availability. Thus, to elucidate these mechanisms in chickpea nodules at molecular level, we used an RNA sequencing approach to investigate transcriptomes of the nodules in Mesorhizobium mediterraneum SWRI9-(MmSWRI9)-chickpea and M. ciceri CP-31-(McCP-31)-chickpea associations under Pi-sufficient and Pi-deficient conditions, of which the McCP-31-chickpea association has a better SNF capacity than the MmSWRI9-chickpea association during Pi starvation. Our investigation revealed that more genes showed altered expression patterns in MmSWRI9-induced nodules than in McCP-31-induced nodules (540 vs. 225) under Pi deficiency, suggesting that the Pi-starvation-more-sensitive MmSWRI9-induced nodules required expression change in a larger number of genes to cope with low-Pi stress than the Pi-starvation-less-sensitive McCP-31-induced nodules. The functional classification of differentially expressed genes (DEGs) was examined to gain an understanding of how chickpea nodules respond to Pi starvation, caused by soil Pi deficiency. As a result, more DEGs involved in nodulation, detoxification, nutrient/ion transport, transcriptional factors, key metabolic pathways, Pi remobilization and signalling were found in Pi-starved MmSWRI9-induced nodules than in Pi-starved McCP-31-induced nodules. Our findings have enabled the identification of molecular processes that play important roles in the acclimation of nodules to Pi deficiency, ultimately leading to the development of Pi-efficient chickpea symbiotic associations suitable for Pi-deficient soils.
机译:已知磷酸盐(PI)缺乏是共生氮固定(SNF)的主要限制,因此在全球范围内豆类作物生产率。然而,非常少的信息可在适应性机制上获得,特别是在重要的豆科作物鹰嘴豆(Cicer Arietinum L)中,这使得结节能够响应低PI可用性。因此,为了在分子水平下阐明鹰嘴豆结节中的这些机制,我们使用了RNA测序方法来研究中霉素中MESORANEUM SWRI9-(MMSWRI9)-CHICKPEA和M.CICERI CP-31-(MCCP-31) - CCOCKPEA中结节的转录om PI足限和PI缺乏条件下的关联,其中MCCP-31-CHICKPEA关联在PI饥饿期间比MMSWRI9-CHICKPEA关联具有更好的SNF容量。我们的研究表明,MMSWRI9诱导结节中的更多基因显示出的表达模式而不是PI缺乏的MCCP-31诱导的结节(540 vs.225),表明PI-饥饿 - 更敏感的MMSWRI9诱导的结节所需的表达变化在更大量的基因中,以应对低PI应激而不是PI-饥饿的敏感性敏感的MCCP-31诱导的结节。研究了差异表达基因(DEGS)的功能分类,以了解鹰嘴豆结节如何应对PI饥饿,由土壤PI缺乏引起的。结果,在Pi饥饿的MMSWRI9诱导的结节中发现了比在PI-饥饿的MCCP-31诱导的结节中的结节中存在更多参与染色,排毒,营养/离子传输,转录因子,关键代谢途径,PI重复化和信号传导。我们的研究结果使鉴定在将结节适应到PI缺乏的分子过程中起着重要作用,最终导致PI效率的鹰嘴豆共生关联的开发适用于PI缺陷的土壤。

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