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首页> 外文期刊>BMC Genomics >A dual-genome microarray for the pea aphid, Acyrthosiphon pisum, and its obligate bacterial symbiont, Buchnera aphidicola
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A dual-genome microarray for the pea aphid, Acyrthosiphon pisum, and its obligate bacterial symbiont, Buchnera aphidicola

机译:豌豆蚜虫,蚜虫和其专性细菌共生菌蚜虫双基因组双基因芯片

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Background The best studied insect-symbiont system is that of aphids and their primary bacterial endosymbiont Buchnera aphidicola. Buchnera inhabits specialized host cells called bacteriocytes, provides nutrients to the aphid and has co-speciated with its aphid hosts for the past 150 million years. We have used a single microarray to examine gene expression in the pea aphid, Acyrthosiphon pisum, and its resident Buchnera. Very little is known of gene expression in aphids, few studies have examined gene expression in Buchnera, and no study has examined simultaneously the expression profiles of a host and its symbiont. Expression profiling of aphids, in studies such as this, will be critical for assigning newly discovered A. pisum genes to functional roles. In particular, because aphids possess many genes that are absent from Drosophila and other holometabolous insect taxa, aphid genome annotation efforts cannot rely entirely on homology to the best-studied insect systems. Development of this dual-genome array represents a first attempt to characterize gene expression in this emerging model system. Results We chose to examine heat shock response because it has been well characterized both in Buchnera and in other insect species. Our results from the Buchnera of A. pisum show responses for the same gene set as an earlier study of heat shock response in Buchnera for the host aphid Schizaphis graminum. Additionally, analyses of aphid transcripts showed the expected response for homologs of known heat shock genes as well as responses for several genes with unknown functional roles. Conclusion We examined gene expression under heat shock of an insect and its bacterial symbiont in a single assay using a dual-genome microarray. Further, our results indicate that microarrays are a useful tool for inferring functional roles of genes in A. pisum and other insects and suggest that the pea aphid genome may contain many gene paralogs that are differentially regulated.
机译:背景技术研究最深入的昆虫共生系统是蚜虫及其主要细菌内共生细菌Buchnera aphidicola。布氏杆菌栖息在称为细菌细胞的专门宿主细胞中,为蚜虫提供营养,并且在过去的1.5亿年中与其蚜虫宿主共同鉴定。我们已经使用单个微阵列检查了豌豆蚜虫,蚜虫Acyrthosiphon pisum及其居民Buchnera中的基因表达。关于蚜虫中基因表达的了解甚少,很少有研究检查布氏杆菌中的基因表达,也没有研究同时检查宿主及其共生体的表达情况。在这样的研​​究中,蚜虫的表达谱对于将新发现的豌豆曲霉基因分配给功能角色至关重要。特别是,由于蚜虫拥有果蝇和其他全脂类昆虫分类中缺少的许多基因,因此蚜虫基因​​组注释工作不能完全依赖与研究最深入的昆虫系统的同源性。这种双基因组阵列的开发代表了表征这种新兴模型系统中基因表达的首次尝试。结果我们选择检查热休克反应,因为在布氏杆菌和其他昆虫物种中热休克反应均具有良好的特征。我们从Pisum A. pisum的Buchnera中获得的结果显示,与早期对宿主蚜虫Schizaphis graminum的Buchnera中热休克反应的研究相同,该基因组的响应也有所不同。此外,对蚜虫转录本的分析显示了对已知热激基因同源物的预期响应,以及对几种功能未知的基因的响应。结论我们使用双基因组微阵列芯片在单一试验中检测了昆虫及其细菌共生体热激下的基因表达。此外,我们的结果表明,微阵列是推断豌豆和其他昆虫中基因功能作用的有用工具,并且表明豌豆蚜虫基因组可能包含许多差异调控的基因旁系同源物。

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