首页> 外文期刊>BMC Plant Biology >Genome-wide identification and expression profiling reveal tissue-specific expression and differentially-regulated genes involved in gibberellin metabolism between Williams banana and its dwarf mutant
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Genome-wide identification and expression profiling reveal tissue-specific expression and differentially-regulated genes involved in gibberellin metabolism between Williams banana and its dwarf mutant

机译:全基因组范围内的鉴定和表达谱揭示了威廉斯香蕉与其矮突变体之间赤霉素代谢的组织特异性表达和差异调控基因

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Background Dwarfism is one of the most valuable traits in banana breeding because semi-dwarf cultivars show good resistance to damage by wind and rain. Moreover, these cultivars present advantages of convenient cultivation, management, and so on. We obtained a dwarf mutant ‘8818-1’ through EMS (ethyl methane sulphonate) mutagenesis of Williams banana 8818 ( Musa spp. AAA group). Our research have shown that gibberellins (GAs) content in 8818-1 false stems was significantly lower than that in its parent 8818 and the dwarf type of 8818-1 could be restored by application of exogenous GA3. Although GA exerts important impacts on the 8818-1 dwarf type, our understanding of the regulation of GA metabolism during banana dwarf mutant development remains limited. Results Genome-wide screening revealed 36 candidate GA metabolism genes were systematically identified for the first time; these genes included 3 MaCPS , 2 MaKS , 1 MaKO , 2 MaKAO , 10 MaGA20ox , 4 MaGA3ox , and 14 MaGA2ox genes. Phylogenetic tree and conserved protein domain analyses showed sequence conservation and divergence. GA metabolism genes exhibited tissue-specific expression patterns. Early GA biosynthesis genes were constitutively expressed but presented differential regulation in different tissues in Williams banana. GA oxidase family genes were mainly transcribed in young fruits, thus suggesting that young fruits were the most active tissue involved in GA metabolism, followed by leaves, bracts, and finally approximately mature fruits. Expression patterns between 8818 and 8818-1 revealed that MaGA20ox4 , MaGA20ox5 , and MaGA20ox7 of the MaGA20ox gene family and MaGA2ox7 , MaGA2ox12 , and MaGA2ox14 of the MaGA2ox gene family exhibited significant differential expression and high-expression levels in false stems. These genes are likely to be responsible for the regulation of GAs content in 8818-1 false stems. Conclusion Overall, phylogenetic evolution, tissue specificity and differential expression analyses of GA metabolism genes can provide a better understanding of GA-regulated development in banana. The present results revealed that MaGA20ox4 , MaGA20ox5 , MaGA20ox7 , MaGA2ox7 , MaGA2ox12 , and MaGA2ox14 were the main genes regulating GA content difference between 8818 and 8818-1. All of these genes may perform important functions in the developmental processes of banana, but each gene may perform different functions in different tissues or during different developmental stages.
机译:背景技术矮化是香蕉育种中最有价值的特征之一,因为半矮化品种对风和雨的损害表现出良好的抵抗力。此外,这些栽培品种还具有方便栽培,管理等优点。我们通过对威廉姆斯香蕉8818(穆萨属AAA组)的EMS(甲烷磺酸乙酯)诱变获得了矮化突变体“ 8818-1”。我们的研究表明,8818-1假茎中的赤霉素含量明显低于其父本8818,并且可以通过应用外源GA 3 恢复矮化型8818-1。尽管GA对8818-1矮型产生重要影响,但我们对香蕉矮突变体发育过程中GA代谢调控的理解仍然有限。结果全基因组筛选首次发现了36​​个候选GA代谢基因。这些基因包括3个MaCPS,2个MaKS,1个MaKO,2个MaKAO,10个MaGA20ox,4个MaGA3ox和14个MaGA2ox基因。系统进化树和保守的蛋白质结构域分析表明序列保守和分歧。 GA代谢基因表现出组织特异性表达模式。早期GA生物合成基因被组成型表达,但在威廉姆斯香蕉的不同组织中表现出不同的调控。 GA氧化酶家族基因主要在幼果中转录,因此表明幼果是参与GA代谢的最活跃组织,其次是叶片,片,最后是成熟果实。 8818和8818-1之间的表达模式表明,MaGA20ox基因家族的MaGA20ox4,MaGA20ox5和MaGA20ox7和MaGA2ox基因家族的MaGA2ox7,MaGA2ox12和MaGA2ox14在假茎中显示出显着的差异表达和高表达水平。这些基因可能负责8818-1假茎中GA含量的调节。结论总的来说,GA代谢基因的系统进化,组织特异性和差异表达分析可以更好地了解GA调控香蕉的发育。目前的结果表明,MaGA20ox4,MaGA20ox5,MaGA20ox7,MaGA2ox7,MaGA2ox12和MaGA2ox14是调节8818和8818-1之间GA含量差异的主要基因。所有这些基因可能在香蕉的发育过程中发挥重要作用,但是每个基因在不同的组织中或在不同的发育阶段都可能发挥不同的功能。

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