首页> 外文期刊>Gene: An International Journal Focusing on Gene Cloning and Gene Structure and Function >Genome-wide identification and expression analysis of the polyamine oxidase gene family in sweet orange (Citrus sinensis)
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Genome-wide identification and expression analysis of the polyamine oxidase gene family in sweet orange (Citrus sinensis)

机译:甜橙(柑橘)中多胺氧化酶基因家族的全基因组鉴定和表达分析

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Polyamine oxidases (PAOs) are FAD-dependent enzymes associated with polyamine catabolism. In plants, increasing evidences support that PAO genes play essential roles in abiotic and biotic stresses response. In this study, six putative PAD genes (CsPAO1-CsPAO6) were unraveled in sweet orange (Citrus sinensis) using the released citrus genome sequences. A total of 203 putative cis-regulatory elements involved in hormone and stress response were predicted in 1.5-kb promoter regions at the upstream of CsPAOs. The CsPAOs can be divided into four major groups, with similar organizations with their counterparts of Arabidopsis thaliana. Transcripts of CsPAOs were detected in leaf, stem, cotyledon, and root, with the highest levels detected in the roots. The CsPAOs displayed various responses to exogenous treatments with polyamines and ABA and were differentially altered by abiotic stresses, including cold, salt, and mannitol. Overexpression of CsPAO3 in tobacco demonstrated that spermidine and spermine were decreased in the transgenic line, while putrescine was significantly enhanced, implying a potential role of this gene in polyamine back conversion. These data provide valuable knowledge for understanding the roles of the PAD genes in the future. (C) 2014 Elsevier B.V. All rights reserved.
机译:多胺氧化酶(PAO)是与多胺分解代谢相关的FAD依赖性酶。在植物中,越来越多的证据支持PAO基因在非生物和生物胁迫响应中起重要作用。在这项研究中,使用释放的柑橘基因组序列,在甜橙(Citrus sinensis)中解开了六个推定的PAD基因(CsPAO1-CsPAO6)。在CsPAOs上游的1.5-kb启动子区域中,预计共有203种涉及激素和应激反应的顺式调控元件。 CsPAOs可以分为四个主要类别,与拟南芥的对应组织相似。在叶,茎,子叶和根中检测到CsPAO的转录本,在根中检测到最高水平。 CsPAO对多胺和ABA的外源处理表现出各种反应,并且受非生物胁迫(包括冷,盐和甘露醇)的影响而有所不同。烟草中CsPAO3的过度表达表明,转基因品系中的亚精胺和亚精胺减少,而腐胺则显着增强,表明该基因在多胺逆转中的潜在作用。这些数据为将来了解PAD基因的作用提供了宝贵的知识。 (C)2014 Elsevier B.V.保留所有权利。

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