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Characteristics of the nuclear (18S 5.8S 28S and 5S) and mitochondrial (12S and 16S) rRNA genes of Apis mellifera (Insecta: Hymenoptera): structure organization and retrotransposable elements

机译:蜜蜂(Insecta:Hymenoptera)的核(18S5.8S28S和5S)和线粒体(12S和16S)rRNA基因的特征:结构组织和逆转座因子

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摘要

As an accompanying manuscript to the release of the honey bee genome, we report the entire sequence of the nuclear (18S, 5.8S, 28S and 5S) and mitochondrial (12S and 16S) ribosomal RNA (rRNA)-encoding gene sequences (rDNA) and related internally and externally transcribed spacer regions of Apis mellifera (Insecta: Hymenoptera: Apocrita). Additionally, we predict secondary structures for the mature rRNA molecules based on comparative sequence analyses with other arthropod taxa and reference to recently published crystal structures of the ribosome. In general, the structures of honey bee rRNAs are in agreement with previously predicted rRNA models from other arthropods in core regions of the rRNA, with little additional expansion in non-conserved regions. Our multiple sequence alignments are made available on several public databases and provide a preliminary establishment of a global structural model of all rRNAs from the insects. Additionally, we provide conserved stretches of sequences flanking the rDNA cistrons that comprise the externally transcribed spacer regions (ETS) and part of the intergenic spacer region (IGS), including several repetitive motifs. Finally, we report the occurrence of retrotransposition in the nuclear large subunit rDNA, as R2 elements are present in the usual insertion points found in other arthropods. Interestingly, functional R1 elements usually present in the genomes of insects were not detected in the honey bee rRNA genes. The reverse transcriptase products of the R2 elements are deduced from their putative open reading frames and structurally aligned with those from another hymenopteran insect, the jewel wasp Nasonia (Pteromalidae). Stretches of conserved amino acids shared between Apis and Nasonia are illustrated and serve as potential sites for primer design, as target amplicons within these R2 elements may serve as novel phylogenetic markers for Hymenoptera. Given the impending completion of the sequencing of the Nasonia genome, we expect our report eventually to shed light on the evolution of the hymenopteran genome within higher insects, particularly regarding the relative maintenance of conserved rDNA genes, related variable spacer regions and retrotransposable elements.
机译:作为蜜蜂基因组释放的随附手稿,我们报告了核(18S,5.8S,28S和5S)和线粒体(12S和16S)核糖体RNA(rRNA)编码基因序列(rDNA)的完整序列和相关的内部和外部转录的蜜蜂的间隔区(昆虫:膜翅目:假单胞菌)。此外,我们根据与其他节肢动物类群的比较序列分析,并参考最近公布的核糖体晶体结构,预测了成熟rRNA分子的二级结构。通常,蜜蜂rRNA的结构与先前预测的rRNA核心区域中其他节肢动物的rRNA模型一致,在非保守区域几乎没有其他扩展。我们的多个序列比对可在数个公共数据库中获得,并为昆虫所有rRNA的全局结构模型提供了初步的建立。此外,我们提供了rDNA顺反子侧翼的保守序列,该序列包括外部转录的间隔区(ETS)和部分基因间隔区(IGS),包括几个重复的基序。最后,我们报告了在核大亚基rDNA中发生逆转座,因为在其他节肢动物的常见插入点中存在R2元素。有趣的是,在蜜蜂rRNA基因中未检测到通常存在于昆虫基因组中的功能性R1元件。 R2元件的逆转录酶产物是由其推定的开放阅读框推导出的,并与另一种膜翅目昆虫昆虫黄蜂Nasonia(Pteromalidae)的结构保持一致。图解说明了Apis和Nasonia之间共有的保守氨基酸序列,它们可作为引物设计的潜在位点,因为这些R2元件内的靶标扩增子可作为膜翅目的新系统发育标记。考虑到Nasonia基因组测序的即将完成,我们希望我们的报告最终阐明高等昆虫中膜翅目基因组的进化,特别是关于保守rDNA基因,相关可变间隔区和逆转座因子的相对维持。

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